WO2008141299A1 - Integrated power plant that utilizes renewable and alternative energy sources - Google Patents

Integrated power plant that utilizes renewable and alternative energy sources Download PDF

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Publication number
WO2008141299A1
WO2008141299A1 PCT/US2008/063457 US2008063457W WO2008141299A1 WO 2008141299 A1 WO2008141299 A1 WO 2008141299A1 US 2008063457 W US2008063457 W US 2008063457W WO 2008141299 A1 WO2008141299 A1 WO 2008141299A1
Authority
WO
WIPO (PCT)
Prior art keywords
wind
water
power plant
hydrogen
wind turbine
Prior art date
Application number
PCT/US2008/063457
Other languages
French (fr)
Inventor
Ronald J. Taylor
Scott J. Taylor
Original Assignee
Terra Moya Aqua, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Terra Moya Aqua, Inc. filed Critical Terra Moya Aqua, Inc.
Publication of WO2008141299A1 publication Critical patent/WO2008141299A1/en

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D1/00Wind motors with rotation axis substantially parallel to the air flow entering the rotor 
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D3/00Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor 
    • F03D3/04Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor  having stationary wind-guiding means, e.g. with shrouds or channels
    • F03D3/0427Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor  having stationary wind-guiding means, e.g. with shrouds or channels with converging inlets, i.e. the guiding means intercepting an area greater than the effective rotor area
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D1/00Evaporating
    • B01D1/28Evaporating with vapour compression
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/02Treatment of water, waste water, or sewage by heating
    • C02F1/04Treatment of water, waste water, or sewage by heating by distillation or evaporation
    • C02F1/14Treatment of water, waste water, or sewage by heating by distillation or evaporation using solar energy
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01DNON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
    • F01D1/00Non-positive-displacement machines or engines, e.g. steam turbines
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D9/00Adaptations of wind motors for special use; Combinations of wind motors with apparatus driven thereby; Wind motors specially adapted for installation in particular locations
    • F03D9/007Adaptations of wind motors for special use; Combinations of wind motors with apparatus driven thereby; Wind motors specially adapted for installation in particular locations the wind motor being combined with means for converting solar radiation into useful energy
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D9/00Adaptations of wind motors for special use; Combinations of wind motors with apparatus driven thereby; Wind motors specially adapted for installation in particular locations
    • F03D9/10Combinations of wind motors with apparatus storing energy
    • F03D9/11Combinations of wind motors with apparatus storing energy storing electrical energy
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D9/00Adaptations of wind motors for special use; Combinations of wind motors with apparatus driven thereby; Wind motors specially adapted for installation in particular locations
    • F03D9/20Wind motors characterised by the driven apparatus
    • F03D9/25Wind motors characterised by the driven apparatus the apparatus being an electrical generator
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D9/00Adaptations of wind motors for special use; Combinations of wind motors with apparatus driven thereby; Wind motors specially adapted for installation in particular locations
    • F03D9/20Wind motors characterised by the driven apparatus
    • F03D9/28Wind motors characterised by the driven apparatus the apparatus being a pump or a compressor
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/42Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
    • H01M10/46Accumulators structurally combined with charging apparatus
    • H01M10/465Accumulators structurally combined with charging apparatus with solar battery as charging system
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M8/00Fuel cells; Manufacture thereof
    • H01M8/06Combination of fuel cells with means for production of reactants or for treatment of residues
    • H01M8/0606Combination of fuel cells with means for production of reactants or for treatment of residues with means for production of gaseous reactants
    • H01M8/0656Combination of fuel cells with means for production of reactants or for treatment of residues with means for production of gaseous reactants by electrochemical means
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02SGENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
    • H02S10/00PV power plants; Combinations of PV energy systems with other systems for the generation of electric power
    • H02S10/10PV power plants; Combinations of PV energy systems with other systems for the generation of electric power including a supplementary source of electric power, e.g. hybrid diesel-PV energy systems
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02SGENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
    • H02S10/00PV power plants; Combinations of PV energy systems with other systems for the generation of electric power
    • H02S10/10PV power plants; Combinations of PV energy systems with other systems for the generation of electric power including a supplementary source of electric power, e.g. hybrid diesel-PV energy systems
    • H02S10/12Hybrid wind-PV energy systems
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05BINDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
    • F05B2210/00Working fluid
    • F05B2210/18Air and water being simultaneously used as working fluid
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05BINDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
    • F05B2220/00Application
    • F05B2220/62Application for desalination
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05BINDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
    • F05B2220/00Application
    • F05B2220/70Application in combination with
    • F05B2220/708Photoelectric means, i.e. photovoltaic or solar cells
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05BINDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
    • F05B2240/00Components
    • F05B2240/20Rotors
    • F05B2240/21Rotors for wind turbines
    • F05B2240/211Rotors for wind turbines with vertical axis
    • F05B2240/217Rotors for wind turbines with vertical axis of the crossflow- or "Banki"- or "double action" type
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M2250/00Fuel cells for particular applications; Specific features of fuel cell system
    • H01M2250/40Combination of fuel cells with other energy production systems
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02SGENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
    • H02S20/00Supporting structures for PV modules
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A20/00Water conservation; Efficient water supply; Efficient water use
    • Y02A20/124Water desalination
    • Y02A20/138Water desalination using renewable energy
    • Y02A20/141Wind power
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A20/00Water conservation; Efficient water supply; Efficient water use
    • Y02A20/124Water desalination
    • Y02A20/138Water desalination using renewable energy
    • Y02A20/142Solar thermal; Photovoltaics
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/50Photovoltaic [PV] energy
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/70Wind energy
    • Y02E10/72Wind turbines with rotation axis in wind direction
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/70Wind energy
    • Y02E10/74Wind turbines with rotation axis perpendicular to the wind direction
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/16Mechanical energy storage, e.g. flywheels or pressurised fluids
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/30Hydrogen technology
    • Y02E60/36Hydrogen production from non-carbon containing sources, e.g. by water electrolysis
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/30Hydrogen technology
    • Y02E60/50Fuel cells
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E70/00Other energy conversion or management systems reducing GHG emissions
    • Y02E70/30Systems combining energy storage with energy generation of non-fossil origin
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P20/00Technologies relating to chemical industry
    • Y02P20/10Process efficiency
    • Y02P20/133Renewable energy sources, e.g. sunlight
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02WCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO WASTEWATER TREATMENT OR WASTE MANAGEMENT
    • Y02W10/00Technologies for wastewater treatment
    • Y02W10/30Wastewater or sewage treatment systems using renewable energies
    • Y02W10/33Wastewater or sewage treatment systems using renewable energies using wind energy
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02WCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO WASTEWATER TREATMENT OR WASTE MANAGEMENT
    • Y02W10/00Technologies for wastewater treatment
    • Y02W10/30Wastewater or sewage treatment systems using renewable energies
    • Y02W10/37Wastewater or sewage treatment systems using renewable energies using solar energy

Definitions

  • renewable and alternative energy sources are playing a greater role in reducing the dependence on oil as a primary energy source. Wind energy has played a significant role in generating electrical power that is applied to the electrical grid. In addition, the use of solar energy in this same fashion has increased substantially over the past few years. The use of these and other alternative energy sources will play an increasingly important role in the future with respect to the sourcing and distributing of energy.
  • Embodiments of the present invention may therefore comprise a method of providing and storing energy and water using a renewable energy integrated power plant comprising: providing a cross-flow wind turbine that has an airfoil stator and that generates electrical power and mechanical power in response to wind energy; providing solar cells that are mounted on the airfoil stator that generate electrical power; using the electrical power in local electrical devices; using the electrical power to desalinate and purify water so as to provide a source of purified drinking water; and storing the purified drinking water in a tank in the airfoil stator.
  • the present invention may further comprise a renewable energy integrated power plant that provides electrical energy and that generates and stores purified water comprising: a cross-flow wind turbine that uses an airfoil stator and generates electrical power; solar cells mounted on the cross-flow wind turbine that generate electrical power; a desalinator that desalinates and purifies saltwater and brackish water and generates purified drinking water in response to the electrical power; and a water storage tank formed in the airfoil stator that stores the purified drinking water.
  • a renewable energy integrated power plant that provides electrical energy and that generates and stores purified water
  • a cross-flow wind turbine that uses an airfoil stator and generates electrical power
  • solar cells mounted on the cross-flow wind turbine that generate electrical power
  • a desalinator that desalinates and purifies saltwater and brackish water and generates purified drinking water in response to the electrical power
  • a water storage tank formed in the airfoil stator that stores the purified drinking water.
  • Figure IA is a top schematic view of one embodiment of the invention.
  • Figure IB provides typical dimensions of the embodiment of Figure IA.
  • Figure 2 is a schematic illustration of another embodiment of the invention.
  • Figure 3 is an efficiency graph illustrating efficiencies of the embodiment of
  • Figure 4 A is an illustration of pressure gradients that are produced by the embodiment of Figure IA as calculated from computer simulations using computational fluid dynamics.
  • Figure 4B is an efficiency graph of the embodiment of Figure 4A.
  • Figure 5 is a wind velocity and directional flow diagram of the embodiment of
  • Figure 6A is an illustration of pressure gradients that are produced by the embodiment of Figure 6 A as calculated from computer simulations using computational fluid dynamics.
  • Figure 6B is an efficiency graph of the embodiment of Figure 6A.
  • Figure 7 is a wind velocity and directional flow diagram of the embodiment of
  • Figure 8A is an illustration of pressure gradients that are produced by the embodiment of Figure 8 A as calculated from computer simulations using computational fluid dynamics.
  • Figure 8B is an efficiency graph of the embodiment of Figure 8A.
  • Figure 9 is a wind velocity and directional flow diagram of the embodiment of
  • Figure 1 OA is an illustration of pressure gradients that are produced by the embodiment of Figure 1OA as calculated from computer simulations using computational fluid dynamics.
  • Figure 1OB is an efficiency graph of the embodiment of Figure 1OA.
  • Figure 11 is a wind velocity and directional flow diagram of the embodiment in Figure 1 OA.
  • Figure 12A is an illustration of pressure gradients that are produced by the embodiment of Figure 12A as calculated from computer simulations using computational fluid dynamics.
  • Figure 12B is an efficiency graph of the embodiment of Figure 12 A.
  • Figure 13 is a wind velocity and directional flow diagram of the embodiment of Figure 12 A.
  • Figure 14A is an illustration of pressure gradients that are produced by the embodiment of Figure 14A as calculated from computer simulations using computational fluid dynamics.
  • Figure 14B is an efficiency graph of the device of Figure 14A.
  • Figure 15 is a wind velocity and directional flow diagram of the embodiment of Figure 14 A.
  • Figure 16A is an illustration of pressure gradients that are produced by the embodiment of Figure 16A as calculated from computer simulations using computational fluid dynamics.
  • Figure 16B is an efficiency graph of the embodiment of Figure 16 A.
  • Figure 17 is a wind velocity and directional flow diagram of the device of
  • Figure 18 A is an illustration of pressure gradients that are produced by the embodiment of Figure 18A as calculated from computer simulations using computational fluid dynamics.
  • Figure 18B is an efficiency graph of the embodiment illustrated in Figure 18A.
  • Figure 19 is a wind velocity and directional flow diagram of the embodiment illustrated in Figure 18A.
  • Figure 2OA is an illustration of pressure gradients that are produced by the embodiment of Figure 2OA as calculated from computer simulations using computational fluid dynamics.
  • Figure 2OB is an efficiency graph of the embodiment illustrated in Figure 2OA.
  • Figure 21 is a wind velocity and directional flow diagram of the embodiment illustrated in Figure 2OA.
  • Figure 22 A is an illustration of pressure gradients that are produced by the embodiment of Figure 22 A as calculated from computer simulations using computational fluid dynamics.
  • Figure 22B is an efficiency graph of the embodiment of Figure 22 A.
  • Figure 23 is a wind velocity and directional flow diagram of the embodiment of Figure 22A.
  • Figure 24 is a schematic illustration of the manner in which the embodiment of Figure IA can be constructed.
  • Figure 25 is an isometric view of the embodiment of Figure IA.
  • Figure 26 is an isometric view of the embodiment of Figure IA viewed from a different orientation.
  • Figure 27 is an isometric view of the rotor of the embodiment of Figure IA.
  • Figure 28 is a schematic illustration that shows one manner of coupling the shaft of the rotor to a generator.
  • Figure 29 is a schematic illustration that shows another manner of coupling the shaft to the generator.
  • Figure 30A is a pictorial representation of one embodiment of a cross- flow wind turbine.
  • Figure 30B is a schematic illustration of the cross-flow wind turbine of Figure
  • Figure 3 IA is a schematic diagram of an embodiment of a cross-flow wind turbine showing the use of tanks in the stators.
  • Figure 31 B is a top view of the embodiment of Figure 31 A.
  • Figure 32 is a schematic block diagram illustrating operating components of one embodiment of an integrated power system.
  • Figure 33 is a schematic illustration of a cross-flow wind turbine with a rotating stator assembly guided by a wind vane.
  • Figure 34 is a top view of the embodiment illustrated in Figure 33.
  • Figure 35 is a schematic illustration of a cross-flow wind turbine with a rotating stator assembly that is controlled by a wind direction control motor.
  • Figure 36 is a schematic illustration of a cross-flow wind turbine that uses a structural support.
  • Figure 37 is an illustration of a cross-flow wind turbine having two stators.
  • Figure 38 is an illustration of a cross-flow wind turbine that uses flat stators.
  • Figure 39 is a top schematic illustration of a cross-flow wind turbine that uses airfoil stators.
  • Figure 40 is an illustration of a cross-flow wind turbine that uses two airfoil stators and a flat stator.
  • Figure IA is an illustration of one embodiment of a cross-flow wind turbine 100.
  • the cross-flow wind turbine includes an airfoil stator 102 that is fixed, stator 104 that is fixed and stator 106 that is also fixed.
  • the rotor 108 rotates in response to forces created by wind.
  • Rotor 108 includes rotor blade 110, rotor blade 112 and a rotating shaft 114.
  • the cross-flow wind turbine 100 illustrated in Figure IA, is designed for maximum efficiency for wind flowing in a primary direction 116 which may be aligned with the prevailing wind at a specific geographical location.
  • the cross wind flow turbine 100 also produces high efficiencies for winds flowing from other directions, as described in more detail below with respect to Figure 3.
  • FIG. IA the angular positions of the stators are shown with respect to the primary wind flow direction 116.
  • the cross-flow wind turbine 100 that is illustrated in Figure IA shows each of the elements generally in their relative proportional sizes with respect to each other. It is believed that scaling of the cross-flow wind turbine 100 will not change the relative proportional sizes of the various elements or their location with respect to each other. It is anticipated that as the cross-flow wind turbine 100 is scaled to larger sizes that Reynolds numbers and differences in flow characteristics on larger scales will result in higher efficiencies as compared to wind tunnel testing of the cross-flow wind turbine 100.
  • Rotor blade 110 and rotor blade 112 are attached to the shaft 114 so that as the rotor blades 110, 112 are moved by the wind, shaft 114 rotates.
  • Rotor blades 110, 112, as illustrated in Figure IA have shapes that are circular arcs of 120°. These arcs can vary between approximately 120° and 135° without significantly reducing efficiency. Empirical data gathered from both wind tunnel testing and computational fluid dynamics indicate that the 120° circular arc shape of rotor blades provides the highest efficiency.
  • the airfoil stator 102 that is shown in Figure IA has a cambered profile that acts like an airplane wing so that air flowing across surface 118 of airfoil stator 102 is accelerated.
  • the accelerated flow of air across surface 118 creates a low pressure region on the leading face 120 of rotor blade 110 which helps to pull the rotor blade 110 through its power stroke. Because the wind flowing in the primary wind flow direction 116 is pushing on the trailing face 122 of rotor blade 110, a large pressure differential exists between the trailing face 122 and the leading face 120 of rotor blade 110. This large pressure differential assists the rotor blade 110 in moving in a counterclockwise direction around the shaft 114.
  • the pressure gradients created are disclosed in more detail in Figure 4A.
  • Stator 104 is positioned to block wind, flowing from the primary wind flow direction 116, from impinging upon the leading face of the rotor blades during the return cycle, which is illustrated by the position of the rotor blade 112 in Figure IA. Stator 104 not only blocks wind from hitting the rotor blades during the return cycle, but also redirects the wind flowing from direction 116 to impinge upon the trailing face 122 of the rotor blade 110.
  • Stator 106 of Figure IA functions to guide the air flow on the downwind side of the rotor 108 away from the cross-flow wind turbine 100.
  • Stator 106 also provides a third leg of a tripod structure to add structural rigidity to the system.
  • Stator 106 also can perform other valuable functions.
  • Wind flow studies for many geographical locations have provided data that the prevailing wind flows from a predominant direction during the windy season, which may, for example, be Winter season at many geographical sites.
  • the opposite season such as Summer, the wind typically comes from a substantially opposite direction.
  • the wind flow in the off-season may be only a fraction of the wind flow from the primary season, it still may be advantageous to capture the off-season wind with some degree of efficiency and convert it to mechanical energy.
  • stator 106 can assist in redirecting wind into rotor blade 112 when the wind is from a direction 130 that is opposite to the primary wind flow direction 1 16.
  • the primary purpose of the stator 106 is to provide structural rigidity and to assist the flow of wind in exiting the turbine without creating back pressure that would impede the performance of the cross-flow wind turbine 100.
  • stator 106 could be replaced with simply a structural member. Depending on the wind studies of a particular area, replacement of stator 106 with a structural member may make sense if the wind flow direction is almost exclusively from direction 116. Wind flow from direction 132 would allow stator 106 to function in a manner similar to stator 104, i.e., stator 106 would block wind from direction 132 during the return cycle of the rotor blades and redirect the wind to the trailing face of the rotor blades during the power stroke. Hence, if off-season wind comes from direction 132, as shown in Figure IA, stator 106 may provide advantageous properties for the cross-flow wind turbine 100.
  • the system of Figure IA is optimized for wind coming from the quadrant of the prevailing wind such that the primary flow direction 116 is aligned with the prevailing wind flow direction when the cross-flow wind turbine is installed at a site.
  • the system shown in Figure IA is an omni-directional system which has optimized efficiencies for a primary wind flow direction 116 and reduced efficiencies when the wind flows from a direction other than the primary wind flow direction 116. Again, however, the largest overall efficiency and the best return on investment comes from optimization of a system that captures wind from the prevailing wind direction for most geographical sites.
  • Figure IA has produced the highest efficiencies of the various embodiments disclosed herein for wind tunnel testing.
  • Computer simulations using computational fluid dynamics have shown that the embodiment of Figure 2 provides the highest efficiencies.
  • Empirical data collected from live testing of full scale systems will provide the best data as to which embodiment provides the highest efficiencies.
  • Figure IB provides a list of dimensions for both a 25 kilowatt cross-flow wind turbine having a total height of 33 feet and 1000 kilowatt turbine having a total height of 230 feet for the embodiment of Figure IA. Again, it is believed that the dimensions of these devices scale linearly with size.
  • FIG. 2 illustrates another embodiment 200 of a cross-flow wind turbine.
  • the embodiment of Figure 2 utilizes a stationary shaft 202.
  • the shaft 202 remains stationary as the rotor blades 204, 206 rotate around the shaft 202.
  • stationary shaft 202 has a recessed portion which causes a gap 208 to form between the end of the rotor blade 206 adjacent to the shaft and the recessed portion of the shaft.
  • a gap opens up between the inside end of the rotor and the shaft during certain portions of the cycle which causes deventing of the wind captured by the rotor blades during the power stroke.
  • the wind that is vented through the gap 208 is directed towards rotor blade 206 to assist rotor blade 206 in moving through the return cycle.
  • Figure 3 is a graph illustrating efficiencies of the cross-flow wind turbine 100 that is illustrated in Figure IA, versus the direction of wind flow. As can be seen from Figure 3, the highest efficiencies are obtained from wind flowing from directions of approximately 10° to 335°. In these directions, efficiencies of 40% to 45% are achieved. When the wind flows from the directions of approximately 210° to 240°, efficiencies range from 35% to 37%.
  • Figure 4A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for cross-flow wind turbine 100.
  • the scale 102 shows positive pressures as lighter shades and negative pressures as darker shades.
  • large negative pressures are created on the leading face 120 of rotor blade 110 as rotor blade 110 passes by airfoil stator 102 during the power stroke.
  • the large negative pressures created on the leading face 120 of rotor blade 110 result from the accelerated air flow across the surface of airfoil stator 102.
  • These negative pressures function to pull the rotor blade 110 in a counterclockwise direction around the shaft.
  • Positive pressure indicated by lighter shades is created on the trailing face 122 of the rotor blade 110.
  • the large differential in pressure created between the trailing face 122 and the leading face 120 of the rotor blade 110 creates a large amount of force on rotor blade 110 to cause the rotor blade 110 to rotate in a counterclockwise direction around the shaft 114. This large amount of force created during the power stroke of the cross-flow wind turbine 100 results in higher efficiencies.
  • Figure 4B is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment of Figure IA. As can be seen from Figure 4B, the average efficiency illustrated by plot 402 ranges between 28% and 32%.
  • the plot 404 is the instantaneous calculated efficiency for the leading face 120 of rotor blade 110 of the embodiment illustrated in Figure IA.
  • a half second window shows all of the cyclical force patterns as the patterns repeat over the next half revolution with the forces on the blades reversed.
  • Non- dimensional pressure coefficients are measured at each time step as the blades rotate through this half cycle. The pressure on the blades is a function of the pressure coefficient and the reference flow head,
  • the turbine power can also be calculated by:
  • Figure 5 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity As is illustrated in Figure 5, the wind accelerates in the gap between the airfoil stator 102 and rotor blade 110 as a result of the air flow characteristics of the airfoil stator 102 that causes the wind to accelerate on the surface 118 of airfoil stator 102.
  • the length of the arrows in Figure 5 illustrate the magnitude of the speed of the wind
  • large wind velocities are created along the leading face of the rotor blade 120 which are directed to the trailing face of rotor 112 The large
  • stator 104 directs the wind so that it impinges upon the trailing face of rotor blade 110
  • Figure 6A illustrates pressure gradients calculated by computer simulations using
  • Scale 602 shows positive pressures as lighter shades and negative pressures as darker shades.
  • large negative pressures are created on the leading face of rotor blade 204 as the rotor blade 204 passes by the airfoil stator 214 during the power stroke.
  • the large negative pressures created on the leading face of rotor blade 204 result from the accelerated air flow across the surface of airfoil stator 214.
  • These negative pressures function to pull the rotor blade 204 in a counter-clockwise direction around the shaft 202.
  • Positive pressure indicated by lighter shades is created on the trailing face of the rotor blade 204.
  • the large differential pressure created between the leading face and the trailing face of the rotor blade 204 creates a large amount of force on the rotor blade 204 to cause the rotor blade 204 to rotate in a counter-clockwise direction around the shaft 202.
  • This large amount of force created during the power stroke of the cross-flow wind turbine 200 results in higher efficiencies.
  • the gap 208 functions to devent the trailing face of the rotor blade 204, as described above. Wind flows through the gap 208 an impinges upon the trailing face of rotor blade 206. This helps to increase the pressure on the trailing face of rotor blade 206 and minimize the effect of any negative pressures on the trailing face of rotor blade 206 during the return cycle of the rotor blades.
  • Figure 6B is an illustration of the instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment of Figure 2. As can be seen from Figure 6B the average efficiency illustrated by plot 602 ranges between 33% and 35%.
  • Plot 604 is the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 2, while plot 606 illustrates the instantaneous efficiency of the trailing face of the rotor blades of the embodiment of Figure 2.
  • Figure 7 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment of Figure 2.
  • the wind accelerates in the gap between the airfoil stator 214 and the rotor blade 204 as a result of the flow characteristics of the airfoil stator 214 that cause the wind to accelerate on the surface of the airfoil stator 214.
  • the length of the arrows in Figure 7 illustrate the magnitude of the speed of the wind.
  • large wind velocities are created along the leading face of the rotor blade 204 that are directed to the trailing face of rotor blade 206.
  • wind flowing through the gap 208 also impinges on the trailing face of rotor blade 206.
  • Figure 7 provides a good visual impression of the wind flow characteristics of the embodiment of Figure 2.
  • Figure 8A illustrates the pressure gradients calculated by computer simulations using computational fluid dynamics for the embodiment of the cross-flow wind turbine that is illustrated in Figure 8 A.
  • the embodiment of the cross-flow wind turbine illustrated in Figure 8A is very similar to the embodiment illustrated in Figure 2, with the exception that the stationary shaft 802 is somewhat larger, thereby creating a larger gap during certain portions of the cycle of rotation.
  • the rotors are slightly shorter.
  • the wind flow patterns create a vortex 804 on the trailing face of rotator blade 806 during the return cycle. This vortex is not created in the embodiment of Figure 2, as shown in Figure 6 A.
  • the efficiencies of the embodiment of Figure 8 A are not quite as high as the efficiencies of the embodiment of Figure 2, as illustrated with more specificity in Figure 8B.
  • Figure 8B is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 8A. As can be seen from Figure 8B, the average efficiency illustrated by plot 808 ranges between 27% and 33%. Plot 810 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 8 A, while plot 812 illustrates the instantaneous efficiency of the trailing face of the rotor blades of the embodiment of Figure 8 A. [0078] Figure 9 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment of Figure 8 A.
  • Figure 9 illustrates the manner in which large negative pressures are created on the leading face of the rotor blade as a result of the accelerated air flow on the airfoil.
  • Figure 9 also illustrates the manner in which the vortex is formed from wind flowing between the gap caused by the recessed portion of the shaft 802 and the rotor blade, as well as the accelerated wind from the airfoil.
  • Figure 1OA illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for the cross-flow wind turbine embodiment illustrated in Figure 1OA.
  • the embodiment illustrated in Figure 1OA is similar to the embodiment of Figure 8 A but includes a stationary shaft 1002 that is larger than the stationary shaft 802 of Figure 8 A.
  • a larger gap 1004 is formed between the rotor blades in the stationary shaft 1002 during certain portions of the cycle of rotation.
  • a vortex 1006 is also created by the embodiment of Figure 1OA.
  • Figure 1OB is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment of Figure 1OA. As can be seen from Figure 1OB, the average efficiency illustrated by plot 1008 ranges between 29% and 33%.
  • Plot 1010 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 1OA.
  • Plot 1012 illustrates the instantaneous efficiency of the trailing face of the rotor blades. Average efficiencies are calculated in the manner described above.
  • Figure 11 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment of Figure 1OA. Figure 1 1 provides a good visual manner of disclosing the operation of the embodiment of Figure 1OA.
  • FIG 12A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for the embodiment of the cross-flow wind turbine that is illustrated in Figure 12 A.
  • Stationary shaft 1202 is a kidney bean shaped stationary shaft that forms a large gap during certain portions of the rotational cycle of the rotor blades around the stationary shaft 1202. As can be seen from Figure 12 A, a fairly large low pressure vortex is formed on the trailing face of the rotors during the return cycle.
  • Figure 12B is an illustration of the instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 12A.
  • the average efficiency that is illustrated by plot 1206 ranges between 28% and 30%.
  • the instantaneous efficiency of the leading face of the rotor blades is illustrated by plot 1208.
  • the instantaneous efficiency of the trailing face of the rotor blades is illustrated by plot 1210.
  • the average efficiency illustrated by plot 1206 is calculated in the manner described above.
  • Figure 13 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment illustrated in Figure 12 A.
  • the diagram of Figure 13 illustrates the manner in which the vortex 1202 is formed.
  • Figure 14A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for the embodiment of a cross-flow wind turbine illustrated in Figure 14 A.
  • the embodiment of Figure 14A uses a kidney shaped stationary shaft 1402 that is similar to the kidney shaped stationary shaft 1202 of the embodiment of Figure 12 A, but stationary shaft 1402 is positioned so that a gap is formed during a different portion of the rotational cycle.
  • a vortex 1404 is formed near the trailing face of the rotor blades during the return cycle.
  • Figure 14B is a illustration of the instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 14A. As can be seen from Figure 14B, the average efficiency illustrated by plot 1406 ranges between 27% and 32%.
  • Plot 1408 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 14A.
  • Plot 1410 illustrates the instantaneous efficiency of the trailing face of the rotor blades.
  • Figure 15 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment of Figure 14 A.
  • Figure 15 illustrates the flow patterns and intensities that allows a visual interpretation of the manner of operation of the cross-flow wind turbine illustrated in Figure 14A.
  • Figure 16A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for an embodiment of a cross-flow wind turbine that is illustrated in Figure 16 A.
  • Figure 16A is similar to the embodiment of Figure 12A, except that Figure 16A uses a kidney bean shaped stationary shaft 1602 that is larger than stationary shaft 1202 of Figure 12 A.
  • the larger shaft reduces the size of the rotor blades and provides a larger gap between the shaft and the rotor blades.
  • the result is a large vortex 1604 that creates a large negative pressure area on the trailing face of the rotor blades during the return portion of the rotational cycle.
  • Figure 16B is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 16 A. As can be seen from Figure 16B, the average efficiency, illustrated by plot 1606, ranges between 24% and 26%.
  • Plot 1608 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment illustrated in Figure 16 A.
  • Plot 1610 illustrates the instantaneous efficiency of the trailing face of the rotor blades.
  • Figure 17 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment illustrated in Figure 16A.
  • Figure 17 provides a good visual interpretation of the operation of the embodiment of Figure 16A.
  • Figure 18A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for the embodiment of a cross-flow wind turbine that is illustrated in Figure 18 A.
  • the rotor blades illustrated in Figure 18 A have a J-shaped pattern rather than the semi-circular 120° arc pattern used in other embodiments disclosed herein.
  • Shaft 1802 is a rotating shaft that is connected to the rotor blades of the embodiment illustrated in Figure 18 A.
  • Figure 18B is an illustration of the instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 18 A. As can be seen from Figure 18B, the average efficiency illustrated by plot 1804 ranges between 27% and 34%. Plot 1806 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 18 A. Plot 1808 illustrates the instantaneous efficiency that is calculated for the trailing face of the rotor blades using the methods described above. [0093] Figure 19 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment illustrated in Figure 18 A. Figure 19 provides a good visual interpretation of the operation of the embodiment of the cross-flow wind turbine illustrated in Figure 18A.
  • Figure 2OA illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for the embodiment of a cross-flow wind turbine that is illustrated in Figure 2OA.
  • the rotor blades are arranged in a reverse offset configuration so that a gap is formed between the rotor blades.
  • This simulation shows the creation of a vortex 2002 that is located more centrally on the trailing face of the rotor blades during the return cycle.
  • the negative pressure area 2004 formed between the rotor blade and the airfoil during the power stroke is much smaller than the negative pressure areas in other embodiments disclosed herein.
  • Figure 2OB is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 2OA.
  • the average efficiency illustrated by plot 2006 ranges between 25% and 26%.
  • Plot 2008 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 2OA.
  • Plot 2010 illustrates the instantaneous efficiency of the trailing face of the rotor blades.
  • the smaller negative pressure area during the power stroke results in much lower efficiencies in the embodiment of Figure 2OA.
  • Figure 21 is a wind velocity and directional flow diagram that illustrate the direction and flow of the wind and its intensity for the embodiment of Figure 2OA.
  • Figure 21 provides a good visual indication of the operation of the embodiment of Figure 2OA.
  • Figure 22A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for an embodiment of the cross-flow wind turbine that is illustrated in Figure 22A.
  • the embodiment of Figure 22A uses a split rotor blade and a small rotating shaft.
  • Figure 22B is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment of Figure 22 A. As can be seen from Figure 22B, the average efficiency illustrated by plot 2202 ranges between 23% and 24%. Plot 2204 illustrates the calculated instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 22 A. Plot 2206 illustrates the instantaneous efficiency calculated for the trailing face of the rotor blades. Efficiencies are calculated in the manner described above.
  • Figure 23 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment of Figure 22A.
  • Figure 23 provides a good visual interpretation of the manner of operation of the embodiment illustrated in Figure 22A.
  • FIG 24 is a schematic illustration of the manner in which the embodiment of Figure IA can be constructed.
  • Airfoil stator 102 can be formed by using pipes 140, 142 and 144 to provide structural support.
  • a braced framework 146 can be formed between pipe 142 and 144 to add further structural rigidity.
  • the skin 148 of the airfoil stator 102 can be formed from sheet metal, or any other desired material and can be laser cut to the desired shape shown in Figure 24. Sheet metal having thicknesses of 14 gauge or 16 gauge, such as used in car fenders, can be employed to provide the desired shape. Other materials can also be used such as light weight laminates.
  • stator 104 can be formed by pipes 150 and 152 with standard braced framework that is covered with a sheet metal skin.
  • Stator 106 can include pipes 154, 156 to form a structural member in the same manner as described above.
  • Stators 102, 104, 106 may also be constructed from pre-cast concrete forms, or cast in place concrete forms, or any other construction technique known in the art.
  • Figure 25 is an isometric view of the embodiment illustrated in Figure 24 without a top lid.
  • a low base member 2502 may be provided to direct ground winds into the device. This low base member is not a required element of the embodiment illustrated in Figure 25 and can be replaced with simply a flat base plate.
  • Figure 26 is an isometric view of the embodiment of Figure 25 that is viewed from a different direction. Again, the embodiment of Figure 26 is shown without a top plate.
  • Figure 27 is an isometric view of the manner in which the rotor blades can be constructed. As shown in Figure 27, ribs 2702, 2704, 2706 and 2708 provide structural rigidity and the desired shape of each of the rotor blades. A braced framework (not shown) can be provided between each of the ribs 2702-2708. Skin 2710 is then applied to the surface of the braced framework to form the leading and trailing faces of the rotor blades. Rotating shaft 2712 is connected to each of the ribs 2702 - 2708 and to the skin 2710. The skin 2710 may be constructed from metal, aluminum, composites, or any other material known in the art.
  • Figure 28 is a schematic illustration of one embodiment of a power generation plant that can be used with any of the embodiments disclosed herein.
  • a rotating shaft 2712 is connected to a right-angle gear box 2702. Rotational energy is transferred in a horizontal direction to the variable speed gear box 2804.
  • Generator 2806 then generates electrical energy from the mechanical energy of the variable speed gear box 2804.
  • Figure 29 illustrates the manner in which the generator 2806 can be connected directly to the rotating shaft 2712. This direct connection in a vertical manner eliminates mechanical losses resulting from the right angle gear box 2802 and the variable speed gear box 2804.
  • the rotating shaft 2712 may also be directly connected to a direct drive generator. This configuration eliminates any mechanical losses from the gearbox by eliminating the gearbox altogether.
  • Various electrical techniques known in the art, can be used to generate a 60-cycle signal that can be applied to the electrical grid.
  • Figure 30A is a schematic block diagram of an embodiment of an integrated power plant 3000.
  • the integrated power plant 3000 may use information generated by a wind vane/anemometer 3004 that provides data relating to wind direction and wind speed.
  • the integrated power plant 3000 and related embodiments are described in more detail below.
  • FIG 30B is a schematic illustration of the embodiment of the integrated power plant illustrated in Figure 30A.
  • the integrated power plant 3000 includes a rotor 3002 and three stators 3006, 3010 and 3014.
  • housing 3004 for housing the various equipment that performs the various tasks of the integrated power plant 3000.
  • solar cells 3008 are attached to a south facing surface of the stator/tank 3006.
  • solar cells 3012 are attached to the south facing surface of the airfoil stator/tank 3010.
  • Solar cells 3009 are attached to a south facing surface of the housing 3004.
  • the stators illustrated in Figure 3OB can be used as tanks for storing various liquids and gases, as disclosed in more detail below.
  • the surfaces of one or more of the rotors can be used for advertising.
  • the airfoil stator/tank 3010 has an advertising display 3018 on a surface that may face a highway or roadway, or other area where people can observe the advertising display 3018.
  • Companies may wish to place advertising displays, such as advertising display 3018, on the stator surfaces to show their support for renewable energy. If a billboard is going to be built in a windy area, it may be more economically feasible and will generate more goodwill to construct a renewable energy cross-flow wind turbine and place advertising on the stators. Since the cross-flow wind turbine can send energy to the grid in many locations, the capital expenditures for the construction of an advertising display can be reduced.
  • any of the surfaces of the stators/tanks 3006, 3010, 3014 can be used for advertising in addition to, or in place of, the solar cells.
  • the entire surface of the stators/tanks may be illustrated with advertising material.
  • the surfaces of the rotor 3002 may also be illustrated with advertising material and can provide an interesting motion to the billboard display.
  • the illustration on the rotor 3002 may provide movement to the overall advertising display that will catch the eye of the viewer.
  • the movement of the rotor may provide the impression of a waving flag or a bucking horse, or any other type of movement that can catch the eye of the viewer and provide an esthetic and unique display.
  • FIG 3 IA is an illustration of the manner in which various types of tanks may be included in the airfoil stator/tank 3010.
  • round or oval water tanks 3020, 3022 can be included in the interior portion of the airfoil stator 3010.
  • a fuel tank 3024 that may store propane gas, natural gas, diesel fuel, or other fuel may also be included in the interior portion of the airfoil stator 3010.
  • a hydrogen tank 3026 and an oxygen tank 3028 may also be included in the interior portion of the airfoil stator 3010.
  • any of the stators can include any of the various types of tanks for storing various liquids and gases, as desired.
  • FIG. 3 IB illustrates the various types of tanks that can be included in the stators.
  • airfoil stator 3100 includes multiple tanks 3102, 3104, 3106, 3108, 3110, 3112, and 3114.
  • Each of these tanks can carry any desired type of liquid or gas.
  • any one of the tanks 3102-3114 could be used to store water that is purified by the integrated power plant.
  • diesel fuel, propane fuel, or natural gas could also be stored in any one of the tanks 3102-3114 for supplying a fuel to operate the integrated power plant, as described in more detail below, or to store hydrogen and oxygen in a compressed form for various purposes, as also described below.
  • flat stator 3115 utilizes a liner 3116 that lines the interior portion of the flat stator 3115 to form a tank for holding fluids or gases.
  • Liner 3116 may be made of plastic, steel or other liner material that is capable of holding liquids or gases.
  • a skin 3118 can then be placed over the outside portion of the liner 3116 between the structural members 3120, 3122 that form the outer surface of the flat stator 3115.
  • flat stator 3125 may include a tank 3124 that is disposed between the structural members 3126, 3128, such that the outer surface of the tank 3124 comprises the outer surface of the flat stator 3125.
  • FIG 32 is a block diagram illustrating the various operational features that can be included in one or more embodiments of an integrated power plant.
  • a computer control system 3202 is connected to a network link 3204 that allows for the communication of programming controls to the computer control system 3202 by a computer system (not shown) over the network link 3204.
  • the computer control system 3202 generates various control signals 3208 that control the operation of the various devices illustrated in Figure 32, in accordance with a programmable logic controller, a processor, or programmable state machine that is used in the computer control system 3202.
  • the logic decisions to be used by the computer control system 3202 can be transmitted over the network link 3204.
  • the logic stored in the computer control system 3202 can be modified, as desired, by a systems operator connected to the network link 3204.
  • a communications link 3206 is also provided between the computer control system 3202 and the inverter/converter/controller 3210. Data signals, as well as control signals, are provided between the computer control system 3202 and inverter/converter/controller 3210 over communications link 3206.
  • the inverter/converter/controller performs various functions. For example, the inverter portion of device 3210 generates a 60 Hz, 220 volt RMS AC electrical signal that is locked to the phase of the electrical grid 3242.
  • solar collectors may be included on the south facing surfaces (in the northern hemisphere) of the integrated power plant that generates a DC signal 3222 that is applied to the inverter/converter/controller 3210.
  • fuel cells may be housed in housing 3004 ( Figure 30B) that generate a DC signal 3226 that is also applied to the inverter/converter/controller 3210.
  • Wind turbine 3216 generates an AC electrical signal 3218 that is also applied to the inverter/converter/controller 3210.
  • Batteries 3212 are connected to the inverter/converter/controller 3210 via connection 3214.
  • Batteries 3212 can be charged from the inverter/converter/controller 3210 or supply a DC voltage to the controller 3210.
  • the controller 3210 provides an AC electrical signal 3244 that is applied to the desalinization/purification device 3245.
  • Desalination/purification device 3245 may use any acceptable process for desalination and purification of water. For example, if the integrated power plant is located near a body of salt water, the desalination/purification device 3245 is capable of both desalinating the salt water and purifying the desalinated water 3246 that can then be stored in a stator, such as stator 3248.
  • An example of a system that can be used is a system provided by Tomorrows Energy Choices, Inc., 6255 North Main Street, Atlanta, Georgia, 30101, that uses steam capitation technology and distillation processes for generating clean, fresh water. If the supply of water does not contain salt, but merely requires purification, other processes, such as reverse osmosis, can also be used to purify the water.
  • the controller 3210 can also generate a DC electrical signal 3250 that can be applied to an electrolysis device 3252 to generate oxygen and hydrogen from water.
  • Any type of suitable electrolysis system can be used, such as the Hogan Hydrogen Generator available from Distributed Energy Systems, located at 10 Technology Drive, Wallingford, CT 06492, or the Hydrofiller from Avalence, LLC, located at 1240 Oronoque Road, P.O. Bos 2246, Milford, CT, 06460-1146.
  • the oxygen 3254 that is generated by the electrolysis system 3252 can be sent to a compressor 3256, which compresses the oxygen and supplies the compressed oxygen to an oxygen storage tank 3260.
  • the oxygen storage tank can be used to fill portable oxygen tanks 3266 for transport to other locations.
  • the oxygen 3254 generated by the electrolysis system 3252 is medical grade oxygen. Currently, in the United States, supplies of oxygen must be transported long distances because of the dearth of oxygen generating plants. Generation of oxygen using wind energy will greatly reduce the cost of oxygen supplies that can be used for both medical and industrial purposes, as a result of the reduced transportation costs and reduced operational cost, as the integrated power plant is amortized over time.
  • the oxygen stored in oxygen storage tank 3260 can also be applied to fuel cell 3224.
  • the hydrogen 3268 generated by the electrolysis system 3254 can be compressed by a compressor 3270 and stored in a hydrogen storage tank 3270.
  • the hydrogen stored in hydrogen storage tank 3262 can also be applied to fuel cell 3224.
  • Fuel cell 3224 generates a DC electrical signal 3226 in response to the hydrogen and oxygen supplied to the fuel cell 3224.
  • the DC electrical signal 3226 from fuel cell 3224 is then applied to the inverter/converter/controller 3210.
  • the fuel cell 3224 can be housed in the housing 3004 ( Figure 30B), together with other components illustrated in Figure 32.
  • Fuel cell 3224 may comprise any suitable fuel cell system, such as manufactured by Plug Power, Inc., located at 968 Albany-Shaker Road, Latham, New York, 12110.
  • the hydrogen storage tank 3262 can also supply hydrogen to a pipeline 3272 to pipe hydrogen to other locations. Further, hydrogen from the hydrogen storage tank 3262 can be used to fill portable hydrogen tanks 3274 for transport to other locations. Further, hydrogen storage tank 3262 can be connected to a dispensing station 3276 to dispense hydrogen for various purposes, such as for use in hydrogen vehicle. Various additional pumping and compressing devices may be used in the dispensing station 3276. Hydrogen stored in the hydrogen storage tank 3262 may also be supplied to a hydrogen storage tank in a stator 3278. Alternatively, the hydrogen storage tank 3262 may comprise a hydrogen storage tank disposed in a stator.
  • Hydrogen 3280 from hydrogen storage tank 3262 or stator hydrogen storage tank 3278 can also be supplied to a hydrogen engine 3282 that can be used to run a generator 3286.
  • Clutch 3284, as well as the hydrogen engine 3282 and various valves, can be controlled by control signals 3208 generated by the computer control system 3202.
  • mechanical energy from the wind turbine 3216 can be used to operate mechanical pumps 3257.
  • Clutch 3255 can be used to activate the mechanical pumps 3257 in response to a control signal 3208 generated by the computer control system 3202.
  • Mechanical pumps can be used to pump water to a water tower to provide a supply of pressurized water. Also, the mechanical pumps can pump water to a higher reservoir for generation of hydroelectric power using a water turbine 3296. Direct usage of the mechanical energy to operate the mechanical pumps 3257 prevents losses in the conversion of mechanical energy to electrical energy and back.
  • electrical pumps can be used to pump water to a higher elevation if desired. The water can then be used to run a water turbine that is coupled to a generator for later use in generating hydroelectric power, such as during peak usage hours, or when electricity is needed by local electrical devices 3230.
  • the ability to provide a source of stored energy that can be used to supply the grid during peak periods is an important aspect of all renewable energy sources.
  • the ability to use the direct mechanical power with increased efficiency to pump water to a higher elevation using mechanical pumps 3257 provides a way of storing energy from the cross-flow wind turbine mechanical energy source, at any time, for usage when the electrical energy is needed.
  • such a system may only be feasible if water sources are available and reservoirs or tanks can be provided economically, which is dependent upon the location and the geographical features adjacent to the location of the cross-flow wind turbine system.
  • water can be directed to water turbine 3296 from a reservoir or tank located at a higher elevation to operate the water turbine 3296 during certain periods of high energy usage, such as warm summer afternoons and evenings, or when electricity is needed, if the integrated power plant is not connected to the electrical grid 3242.
  • Clutch 3298 can be activated in response to a control signal 3208.
  • a water valve (not shown) may also be activated to supply the water to the water turbine 3296 in response to a control signal 3208 generated by the computer control system 3262.
  • the mechanical pumps 3257 illustrated in Figure 32 may also be used for other purposes.
  • the pumps may be used for sewage treatment in a sewage treatment plant that may be located near the integrated power plant.
  • the integrated power plant of Figure 32 also includes a generator 3286 for generating AC electrical power 3288 whenever electrical power is needed, such as when the electrical grid 3242 is down or the integrated power plant is not connected to the electrical grid 3242.
  • the electrical power 3288 can be used by the local electrical devices 3230 or the various devices connected to the inverter/converter/controller 3210 when other power sources are not available.
  • the generator 3286 can be operated using the hydrogen engine 3282, a water turbine 3296, a diesel/propane/natural gas engine 3292 or a biofuel engine 3251. All of these sources of power for the generator 3286 are low polluting or non-polluting sources of energy, which further adds to the environmentally friendly nature of the integrated power plant.
  • Biofuel engine 3251 may operate on a local source of biofuel that can be stored in a biofuel storage tank 3253, which may be located in one of the stators.
  • the biofuel may comprise any desired mix of diesel and biofuel, including B20 or B30 fuel.
  • Clutch 3253 can be activated in response to control signals 3208 to operate generator 3286 when the biofuel engine 3251 is activated.
  • a diesel/propane/natural gas engine 3292 can be activated in response to control signals 3208, which also activates clutch 3294 to operate the generator 3286.
  • the diesel/propane/natural gas storage tank 3290 can be located in a stator, as disclosed above.
  • the diesel/propane/natural gas engine 3292 may be activated if all of the other supplies of energy have been exhausted.
  • generator 3286 illustrated in Figure 32, generates an AC electrical signal 3288 that is applied to the local electrical devices 3230.
  • the output of the inverter/converter/controller 3210 is also applied to the local electrical devices 3230.
  • the local electrical devices may include the electrical devices of one or more houses, one or more commercial buildings, a small village or neighborhood, a manufacturing plant, lights for illuminating the advertising displays on the stators, and other local electrical needs.
  • the integrated power plant may be isolated from an electrical grid and may operate to only supply the local electrical devices 3230. In other instances, the integrated power plant may be connected to the electrical grid 3242 and provide electrical energy to the grid.
  • an electrical connector 3232 connects the energy that is not used by the local electrical devices to an electrical meter 3234.
  • the electrical meter 3234 is in turn connected to a controller 3236 and then to a controller 3236 and then to a transformer 3240, that is connected to the electrical grid 3242.
  • a transformer 3240 that is connected to the electrical grid 3242.
  • Each of the connections between the inverter/converter/controller 3210, the local electrical devices 3210, the electrical meter 3234, the controller 3236, and the transformer 3240 are shown as bidirectional arrows, since electrical energy may flow from the electrical grid 3242 into the systems shown in Figure 32, or may flow outwardly from the systems shown on Figure 32 to the electrical grid 3242 under the control of controller 3236.
  • Control mechanisms such as control mechanism 3236, controls the application of electrical energy onto the grid and may provide calculation of credits for application of energy onto the grid, rather than simply running the electrical meter backwards, which does not account for the application of electrical energy to the grid during different time periods.
  • the inverter/converter/controller 3210 may include a programmable logic controller, a processor, or programmable state machine that is controlled by the computer control system 3202 via link 3206.
  • the controller 3210 can be programmed for various situations.
  • the integrated power plant is not connected to the grid and operates as an independent integrated source of electrical energy to operate the local electrical devices and may also be used to provide clean water, as well as medical grade oxygen and hydrogen for various uses.
  • the system may use mechanical pumps to pump water to water towers or other locations and therefore provide a source of pressurized water.
  • the mechanical pumps as disclosed above, can also be used to pump water to a higher elevation for later use in running the water turbine 3296. In this manner, energy from the wind turbine 3216 and the solar collectors 3220 can be stored for later use.
  • the mechanical pumps can also be used for waste treatment and to assist and operate a sanitation plant, as an integrated self-sufficient system.
  • the controller 3210 can be programmed to first provide for the electrical requirements of the local electrical devices 3230 from the wind turbine 3216 and solar collectors 3220.
  • the DC voltage provided by the solar collectors 3230 is inverted by the inverter portion of the inverter/converter/controller 3210.
  • the inverter produces a 60 cycle, 220 volt RMS AC electrical signal 3228 that is applied to the local electrical devices 3230.
  • the wind turbine 3216 includes a generator that generates an AC electrical signal 3218 that has a frequency which varies with the speed of the rotation of the rotor device. That AC electrical signal is converted to a DC signal either in the converter portion of inverter/converter/controller 3210 or in a converter mounted on the generator. The inverter portion of inverter/converter/controller 3210 then inverts that DC electrical signal into AC electrical signal 3228, which is applied to the local electrical devices 3230. If the requirements of the local electrical devices 3230 are less than the amount of power that is being supplied by wind turbine 3216 and/or solar collectors 3230, the excess energy can then be used to charge batteries 3212, as well as other functions, as described herein.
  • inverter/converter/controller 3210 receives the DC voltage from solar collectors 3222 and converts the DC power from the solar collectors to a DC voltage signal for recharging batteries 3212 or for performing electrolysis in electrolysis device 3252 or other functions.
  • the AC electrical signal 3218 from wind turbine 3216 can be converted to a DC signal having a proper voltage to charge batteries 3212, or for performing electrolysis in electrolysis device 3252.
  • any excess energy can then be routed to desalination/purification device 3245 or electrolysis device 3252, depending upon the priorities that are set in computer control system 3202 for controlling the system illustrated in Figure 32.
  • the use of excess electrical energy to perform electrolysis or desalination/purification, or both simultaneously, can be programmed into the programmable logic controller or processor in inverter/converter/controller 3210 in accordance with the desired operating procedures and priorities that are set in the system.
  • water level detectors can be used in the water storage tanks, such as water storage tank 3248, which can signal the controller 3210 to produce water if water levels go below a certain amount.
  • energy from wind turbine 3216 and/or solar collectors 3220 may be directed to the desalination/purification device 3245 without supplying power to the local electrical devices 3230.
  • battery power from batteries 3212, fuel cells 3224, or engines that operate generator 3286 such as the hydrogen engine 3282, the water turbine 3296, the biofuel engine 3251, or the diesel propane engine 3292, can be used to generate power for the sole purpose of producing water when low levels are detected in the storage tanks.
  • prioritization levels can be easily programmed into the controller 3210 using the computer control system 3202 and the network link 3204.
  • the priority level for generating hydrogen or oxygen supplies can also be set based upon the necessity of generating hydrogen and oxygen for various purposes, such as a stored fuel that can be used when alternative energy sources are not available.
  • storage of energy in the form of water that is pumped using mechanical pumps 3257 to a reservoir at a higher elevation or tank at a higher elevation for the purposes of storing energy can be prioritized, based upon the specific needs of the integrated energy plant.
  • supplying energy to the electrical grid 3242 can be prioritized according to the purposes of the integrated power plant, as described below.
  • the integrated power plant may be connected to the electrical grid 3242.
  • different priorities may exist.
  • a primary purpose for the integrated power plant may be to generate electricity that can be supplied to the electrical grid.
  • it may be desirable to supply electrical energy to the grid such that the cross-flow wind turbine and solar collectors can reduce the usage of grid power by the local electrical devices 3230 and supply electrical power to the electrical grid 3242 in high wind conditions or sunny conditions when the usage by local electrical devices 3280 is low, so that the capital investment in the system can be reduced.
  • the priori tization of the usage of the power generated by the integrated system for the various purposes shown and the storage of power can be prioritized as desired.
  • FIG 33 is a schematic illustration of an embodiment of a cross-flow wind turbine with a rotating stator assembly that is guided by a wind vane 3312.
  • the rotating stator assembly includes a top plate 3304 and a base plate 3314.
  • Stators 3306, 3310 and 3320 are attached to both the top plate 3304 and the base plate 3314.
  • Swivel 3318 is connected to both the base plate 3314 and the sloped base unit 3302. Swivel 3318 allows the stator assembly, including the top plate 3304, stators 3306, 3310 and 3320 to rotate to a position relative to the wind in response to forces generated by wind vane 3312.
  • Figure 34 is a top view of the embodiment of Figure 33.
  • the sloped housing 3302 holds the cross-flow wind turbine assembly.
  • Swivel 3318 is mounted to the top of the sloped housing 3302 and to the base plate 3314 ( Figure 33).
  • Figure 34 also illustrates the rotor 3314, airfoil stabilizer 3316, stator 3308, stator 3310 and the wind vane 3312.
  • the wind vane 3312 positions the cross-flow wind turbine in a direction so that the wind flows in an optimal direction into the cross-flow wind turbine.
  • FIG. 35 is a schematic illustration of a cross-flow wind turbine with a rotating stator assembly that is controlled by a wind direction control motor.
  • a cross-flow wind turbine 3508 is mounted on top of a housing 3510.
  • the cross-flow wind turbine can be rotated to different angular positions using a stator gear 3506 that is coupled to a motor gear 3504 that moves in response to a wind direction control motor 3502.
  • the stator gear 3506 is coupled to the stator assembly of the cross-flow wind turbine 3508 and allows rotation of the cross-flow wind turbine 3508 to any desired angular rotational position on the top of housing 3510.
  • Wind vane 3512 detects the direction of the wind and produces a wind direction signal 3514 that is transmitted to a control system 3516.
  • the control system 3516 generates a control signal 3518 that is applied to the wind direction control motor 3502 to cause the wind direction control motor 3502 to rotate the motor gear 3504 to locate the cross- flow wind turbine 3508 to the desired angular position.
  • the control system 3516 detects the wind direction from wind direction signal 3514 and compares the wind direction to the position of the stator assembly. This can be done by determining the count stored for the wind direction control motor 3502 if a stepper motor is used. In that case, control signal 3518 is generated by the control system 3516 to cause the wind direction control motor 3502 to move the proper number of steps to align the cross-flow wind turbine 3508 in the proper direction.
  • FIG. 33 is a schematic illustration of a cross-flow wind turbine with a structural support.
  • Structural support 3502 provides structural stability for the cross-flow wind turbine structure.
  • the structural support 3602 may replace a stator without substantially reducing the efficiency of the cross-flow wind turbine 3600. Hence, cost savings may be provided by simply building a structural support 3602, rather than building a complete stator assembly.
  • Figure 37 illustrates a cross-flow wind turbine 3700 with two stators. As disclosed above, removal of the third stator may not significantly reduce the overall efficiency of the system. Hence, a vertical support member 3702 can be connected to the top support member 3704 to provide structural support so that the third stator can be removed to reduce the overall cost of the system.
  • Figure 38 illustrates another embodiment of a cross-flow turbine 3800 that has flat stators.
  • flat stators 3802, 3804 and 3806 are disposed on the exterior portions of the cross-flow turbine 3800 to direct the flow of gases or liquids to the drive portion of the rotor and away from the return portion of the rotor, as described above.
  • the cross-flow turbine 3800 illustrated in Figure 38 has less efficiency than cross-flow wind turbines that use an airfoil as a stator.
  • Airfoil stators operate by compressing gases to increase the flow and create a vacuum that pulls the rotor along its path during the power stroke, as described above. Since fluids are not compressible, airfoil stators have no effect on liquids and are not useful with liquids.
  • the cross-flow turbine 3800 illustrated in Figure 38 can be used for any type of gaseous flow or liquid flow, such as in streams and rivers, or ocean currents.
  • FIG 39 is an illustration of a cross-flow wind turbine 3900 that has three airfoil stators 3902, 3904 and 3906.
  • the arrangement of the airfoil stators 3902, 3904 and 3906 allows for the efficient utilization of wind energy from wind directions 3908, 3910 and 3912.
  • wind energy in many geographical locations comes primarily from a single direction, such as wind direction 3908.
  • wind may come from a direction that is 90 degrees different from the primary wind direction, such as wind direction 3910, or, in many cases, from an opposite direction, such as wind direction 3912.
  • airfoil stators 3906, 3904 increase the efficiency of the cross-flow wind turbine 3900 for wind coming from directions 3910 and 3912, respectively.
  • Figure 40 is a schematic top view of a cross-flow wind turbine 4000 using two airfoil stators 4002, 4004 and a single flat stator 4006.
  • the primary wind direction may be wind direction 4010 and a secondary wind direction may be from wind direction 4008.
  • Wind from the primary direction 4010 operates in a highly efficient manner to rotate the rotor 4012. Wind is accelerated along the front surface of the airfoil stator 4002 to draw the front side of the rotor 4012 through the power stroke.
  • flat stator 4006 blocks wind from the rotor 4012 during the return portion and causes that wind to be directed onto the trailing surface of the rotor 4012 during the power stroke. As described above, a very efficient system is provided.
  • airfoil stator 4004 causes wind to accelerate along the front surface of the airfoil stator 4004 and create a low pressure behind the rotor blade 4012 as it passes adjacent to the airfoil stator 4004.
  • wind from wind direction 4008 causes the cross-flow wind turbine 4000 to operate in a more efficient manner.

Abstract

A large pressure differential is created between the leading face of the rotor blade and the trailing face of the rotor blade during the power cycle which creates a large amount of force that rotates the rotor blade about the central shaft Gaps may be provided between the inside edge of the rotor blade and a stationary shaft which vents wind collected by the rotor blade during certain portions of the rotation cycle The vented wind increases the pressure on the trailing face of the rotor blades during the return cycle to further assist in the efficiency of this system An integrated power plant provides a source of renewable energy In the form of a cross-flow wind turbine that includes solar cells mounted on south facing surfaces of the stators The stators can be used to store liquids and fuels generated by the renewable energy sources.

Description

INTEGRATED POWER PLANT THAT UTILIZES RENEWABLE AND ALTERNATIVE ENERGY SOURCES
BACKGROUND OF THE INVENTION
[0001] Renewable and alternative energy sources are playing a greater role in reducing the dependence on oil as a primary energy source. Wind energy has played a significant role in generating electrical power that is applied to the electrical grid. In addition, the use of solar energy in this same fashion has increased substantially over the past few years. The use of these and other alternative energy sources will play an increasingly important role in the future with respect to the sourcing and distributing of energy.
SUMMARY OF THE INVENTION
[0002] Embodiments of the present invention may therefore comprise a method of providing and storing energy and water using a renewable energy integrated power plant comprising: providing a cross-flow wind turbine that has an airfoil stator and that generates electrical power and mechanical power in response to wind energy; providing solar cells that are mounted on the airfoil stator that generate electrical power; using the electrical power in local electrical devices; using the electrical power to desalinate and purify water so as to provide a source of purified drinking water; and storing the purified drinking water in a tank in the airfoil stator.
[0003] The present invention may further comprise a renewable energy integrated power plant that provides electrical energy and that generates and stores purified water comprising: a cross-flow wind turbine that uses an airfoil stator and generates electrical power; solar cells mounted on the cross-flow wind turbine that generate electrical power; a desalinator that desalinates and purifies saltwater and brackish water and generates purified drinking water in response to the electrical power; and a water storage tank formed in the airfoil stator that stores the purified drinking water.
BRIEF DESCRIPTION OF THE DRAWINGS
[0004] In the drawings,
[0005] Figure IA is a top schematic view of one embodiment of the invention.
[0006] Figure IB provides typical dimensions of the embodiment of Figure IA. [0007] Figure 2 is a schematic illustration of another embodiment of the invention.
[0008] Figure 3 is an efficiency graph illustrating efficiencies of the embodiment of
Figure IA based on wind direction.
[0009] Figure 4 A is an illustration of pressure gradients that are produced by the embodiment of Figure IA as calculated from computer simulations using computational fluid dynamics.
[0010] Figure 4B is an efficiency graph of the embodiment of Figure 4A.
[0011] Figure 5 is a wind velocity and directional flow diagram of the embodiment of
Figure 4A.
[0012] Figure 6A is an illustration of pressure gradients that are produced by the embodiment of Figure 6 A as calculated from computer simulations using computational fluid dynamics.
[0013] Figure 6B is an efficiency graph of the embodiment of Figure 6A.
[0014] Figure 7 is a wind velocity and directional flow diagram of the embodiment of
Figure 6A.
[0015] Figure 8A is an illustration of pressure gradients that are produced by the embodiment of Figure 8 A as calculated from computer simulations using computational fluid dynamics.
[0016] Figure 8B is an efficiency graph of the embodiment of Figure 8A.
[0017] Figure 9 is a wind velocity and directional flow diagram of the embodiment of
Figure 8A.
[0018] Figure 1 OA is an illustration of pressure gradients that are produced by the embodiment of Figure 1OA as calculated from computer simulations using computational fluid dynamics.
[0019] Figure 1OB is an efficiency graph of the embodiment of Figure 1OA.
[0020] Figure 11 is a wind velocity and directional flow diagram of the embodiment in Figure 1 OA.
[0021] Figure 12A is an illustration of pressure gradients that are produced by the embodiment of Figure 12A as calculated from computer simulations using computational fluid dynamics.
[0022] Figure 12B is an efficiency graph of the embodiment of Figure 12 A.
[0023] Figure 13 is a wind velocity and directional flow diagram of the embodiment of Figure 12 A. [0024] Figure 14A is an illustration of pressure gradients that are produced by the embodiment of Figure 14A as calculated from computer simulations using computational fluid dynamics.
[0025] Figure 14B is an efficiency graph of the device of Figure 14A.
[0026] Figure 15 is a wind velocity and directional flow diagram of the embodiment of Figure 14 A.
[0027] Figure 16A is an illustration of pressure gradients that are produced by the embodiment of Figure 16A as calculated from computer simulations using computational fluid dynamics.
[0028] Figure 16B is an efficiency graph of the embodiment of Figure 16 A.
[0029] Figure 17 is a wind velocity and directional flow diagram of the device of
Figure 16A.
[0030] Figure 18 A is an illustration of pressure gradients that are produced by the embodiment of Figure 18A as calculated from computer simulations using computational fluid dynamics.
[0031] Figure 18B is an efficiency graph of the embodiment illustrated in Figure 18A.
[0032] Figure 19 is a wind velocity and directional flow diagram of the embodiment illustrated in Figure 18A.
[0033] Figure 2OA is an illustration of pressure gradients that are produced by the embodiment of Figure 2OA as calculated from computer simulations using computational fluid dynamics.
[0034] Figure 2OB is an efficiency graph of the embodiment illustrated in Figure 2OA.
[0035] Figure 21 is a wind velocity and directional flow diagram of the embodiment illustrated in Figure 2OA.
[0036] Figure 22 A is an illustration of pressure gradients that are produced by the embodiment of Figure 22 A as calculated from computer simulations using computational fluid dynamics.
[0037] Figure 22B is an efficiency graph of the embodiment of Figure 22 A.
[0038] Figure 23 is a wind velocity and directional flow diagram of the embodiment of Figure 22A.
[0039] Figure 24 is a schematic illustration of the manner in which the embodiment of Figure IA can be constructed.
[0040] Figure 25 is an isometric view of the embodiment of Figure IA. [0041] Figure 26 is an isometric view of the embodiment of Figure IA viewed from a different orientation.
[0042] Figure 27 is an isometric view of the rotor of the embodiment of Figure IA.
[0043] Figure 28 is a schematic illustration that shows one manner of coupling the shaft of the rotor to a generator.
[0044] Figure 29 is a schematic illustration that shows another manner of coupling the shaft to the generator.
[0045] Figure 30A is a pictorial representation of one embodiment of a cross- flow wind turbine.
[0046] Figure 30B is a schematic illustration of the cross-flow wind turbine of Figure
30A.
[0047] Figure 3 IA is a schematic diagram of an embodiment of a cross-flow wind turbine showing the use of tanks in the stators.
[0048] Figure 31 B is a top view of the embodiment of Figure 31 A.
[0049] Figure 32 is a schematic block diagram illustrating operating components of one embodiment of an integrated power system.
[0050] Figure 33 is a schematic illustration of a cross-flow wind turbine with a rotating stator assembly guided by a wind vane.
[0051] Figure 34 is a top view of the embodiment illustrated in Figure 33.
[0052] Figure 35 is a schematic illustration of a cross-flow wind turbine with a rotating stator assembly that is controlled by a wind direction control motor.
[0053] Figure 36 is a schematic illustration of a cross-flow wind turbine that uses a structural support.
[0054] Figure 37 is an illustration of a cross-flow wind turbine having two stators.
[0055] Figure 38 is an illustration of a cross-flow wind turbine that uses flat stators.
[0056] Figure 39 is a top schematic illustration of a cross-flow wind turbine that uses airfoil stators.
[0057] Figure 40 is an illustration of a cross-flow wind turbine that uses two airfoil stators and a flat stator.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0058] Figure IA is an illustration of one embodiment of a cross-flow wind turbine 100.
The cross-flow wind turbine includes an airfoil stator 102 that is fixed, stator 104 that is fixed and stator 106 that is also fixed. The rotor 108 rotates in response to forces created by wind. Rotor 108 includes rotor blade 110, rotor blade 112 and a rotating shaft 114. The cross-flow wind turbine 100, illustrated in Figure IA, is designed for maximum efficiency for wind flowing in a primary direction 116 which may be aligned with the prevailing wind at a specific geographical location. However, the cross wind flow turbine 100 also produces high efficiencies for winds flowing from other directions, as described in more detail below with respect to Figure 3.
[0059] As also shown in Figure IA, the angular positions of the stators are shown with respect to the primary wind flow direction 116. The cross-flow wind turbine 100 that is illustrated in Figure IA shows each of the elements generally in their relative proportional sizes with respect to each other. It is believed that scaling of the cross-flow wind turbine 100 will not change the relative proportional sizes of the various elements or their location with respect to each other. It is anticipated that as the cross-flow wind turbine 100 is scaled to larger sizes that Reynolds numbers and differences in flow characteristics on larger scales will result in higher efficiencies as compared to wind tunnel testing of the cross-flow wind turbine 100. Rotor blade 110 and rotor blade 112 are attached to the shaft 114 so that as the rotor blades 110, 112 are moved by the wind, shaft 114 rotates. Rotor blades 110, 112, as illustrated in Figure IA, have shapes that are circular arcs of 120°. These arcs can vary between approximately 120° and 135° without significantly reducing efficiency. Empirical data gathered from both wind tunnel testing and computational fluid dynamics indicate that the 120° circular arc shape of rotor blades provides the highest efficiency. [0060] The airfoil stator 102 that is shown in Figure IA has a cambered profile that acts like an airplane wing so that air flowing across surface 118 of airfoil stator 102 is accelerated. The accelerated flow of air across surface 118 creates a low pressure region on the leading face 120 of rotor blade 110 which helps to pull the rotor blade 110 through its power stroke. Because the wind flowing in the primary wind flow direction 116 is pushing on the trailing face 122 of rotor blade 110, a large pressure differential exists between the trailing face 122 and the leading face 120 of rotor blade 110. This large pressure differential assists the rotor blade 110 in moving in a counterclockwise direction around the shaft 114. The pressure gradients created are disclosed in more detail in Figure 4A. Stator 104 is positioned to block wind, flowing from the primary wind flow direction 116, from impinging upon the leading face of the rotor blades during the return cycle, which is illustrated by the position of the rotor blade 112 in Figure IA. Stator 104 not only blocks wind from hitting the rotor blades during the return cycle, but also redirects the wind flowing from direction 116 to impinge upon the trailing face 122 of the rotor blade 110.
[0061] Stator 106 of Figure IA functions to guide the air flow on the downwind side of the rotor 108 away from the cross-flow wind turbine 100. Stator 106 also provides a third leg of a tripod structure to add structural rigidity to the system. Stator 106 also can perform other valuable functions. Wind flow studies for many geographical locations have provided data that the prevailing wind flows from a predominant direction during the windy season, which may, for example, be Winter season at many geographical sites. During the opposite season (off-season), such as Summer, the wind typically comes from a substantially opposite direction. Although the wind flow in the off-season may be only a fraction of the wind flow from the primary season, it still may be advantageous to capture the off-season wind with some degree of efficiency and convert it to mechanical energy. As can be seen from Figure IA, stator 106 can assist in redirecting wind into rotor blade 112 when the wind is from a direction 130 that is opposite to the primary wind flow direction 1 16. In that regard, it may also be desirable in some embodiments to provide camber to the stator 106 so that it creates an airfoil, in a manner similar to the air flow stator 102. However, the primary purpose of the stator 106 is to provide structural rigidity and to assist the flow of wind in exiting the turbine without creating back pressure that would impede the performance of the cross-flow wind turbine 100.
[0062] Of course, to provide structural rigidity, stator 106 could be replaced with simply a structural member. Depending on the wind studies of a particular area, replacement of stator 106 with a structural member may make sense if the wind flow direction is almost exclusively from direction 116. Wind flow from direction 132 would allow stator 106 to function in a manner similar to stator 104, i.e., stator 106 would block wind from direction 132 during the return cycle of the rotor blades and redirect the wind to the trailing face of the rotor blades during the power stroke. Hence, if off-season wind comes from direction 132, as shown in Figure IA, stator 106 may provide advantageous properties for the cross-flow wind turbine 100.
[0063] Collected wind data from wind studies at a large majority of geographical sites have shown that a very large percentage (up to 90% or more) of the wind comes from the same quadrant as the prevailing wind direction. These studies have also shown that winds during the off-season are usually from the opposite quadrant, as indicated above. For example, if the primary wind flow direction 116 is the primary wind direction during the windy season, wind typically flows from direction 130 during the offseason, at most geographical sites. However, the off-season winds carry only a fraction of the energy that is available from the winds in the primary wind flow direction in most geographical sites. Hence, the system of Figure IA is optimized for wind coming from the quadrant of the prevailing wind such that the primary flow direction 116 is aligned with the prevailing wind flow direction when the cross-flow wind turbine is installed at a site. As discussed in more detail with respect to Figure 3, the system shown in Figure IA is an omni-directional system which has optimized efficiencies for a primary wind flow direction 116 and reduced efficiencies when the wind flows from a direction other than the primary wind flow direction 116. Again, however, the largest overall efficiency and the best return on investment comes from optimization of a system that captures wind from the prevailing wind direction for most geographical sites.
[0064] The embodiment of Figure IA has produced the highest efficiencies of the various embodiments disclosed herein for wind tunnel testing. Computer simulations using computational fluid dynamics have shown that the embodiment of Figure 2 provides the highest efficiencies. Empirical data collected from live testing of full scale systems will provide the best data as to which embodiment provides the highest efficiencies. [0065] Figure IB provides a list of dimensions for both a 25 kilowatt cross-flow wind turbine having a total height of 33 feet and 1000 kilowatt turbine having a total height of 230 feet for the embodiment of Figure IA. Again, it is believed that the dimensions of these devices scale linearly with size.
[0066] Figure 2 illustrates another embodiment 200 of a cross-flow wind turbine. The embodiment of Figure 2 utilizes a stationary shaft 202. The shaft 202 remains stationary as the rotor blades 204, 206 rotate around the shaft 202. As can be seen from Figure 2, stationary shaft 202 has a recessed portion which causes a gap 208 to form between the end of the rotor blade 206 adjacent to the shaft and the recessed portion of the shaft. Hence, a gap opens up between the inside end of the rotor and the shaft during certain portions of the cycle which causes deventing of the wind captured by the rotor blades during the power stroke. The wind that is vented through the gap 208 is directed towards rotor blade 206 to assist rotor blade 206 in moving through the return cycle. This is disclosed in more detail below. In other words, wind captured by the trailing face 212 of the rotor blade 204 is directed through the gap 208 and flows onto the trailing face 210 of the rotor blade 206 to create positive pressure on the trailing face 210. [0067] Figure 3 is a graph illustrating efficiencies of the cross-flow wind turbine 100 that is illustrated in Figure IA, versus the direction of wind flow. As can be seen from Figure 3, the highest efficiencies are obtained from wind flowing from directions of approximately 10° to 335°. In these directions, efficiencies of 40% to 45% are achieved. When the wind flows from the directions of approximately 210° to 240°, efficiencies range from 35% to 37%. In addition, reasonable efficiencies can be obtained in the range of 27% to 29% when the wind flows from the direction of 90° to 120°. Hence, the cross-flow wind turbine 100 illustrated in Figure 3 is somewhat omni-directional, but clearly achieves the highest efficiencies of over 40% between 10° and 335°.
[0068] Figure 4A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for cross-flow wind turbine 100. The scale 102 shows positive pressures as lighter shades and negative pressures as darker shades. As can be seen from Figure 4A, large negative pressures are created on the leading face 120 of rotor blade 110 as rotor blade 110 passes by airfoil stator 102 during the power stroke. The large negative pressures created on the leading face 120 of rotor blade 110 result from the accelerated air flow across the surface of airfoil stator 102. These negative pressures function to pull the rotor blade 110 in a counterclockwise direction around the shaft. Positive pressure indicated by lighter shades is created on the trailing face 122 of the rotor blade 110. The large differential in pressure created between the trailing face 122 and the leading face 120 of the rotor blade 110 creates a large amount of force on rotor blade 110 to cause the rotor blade 110 to rotate in a counterclockwise direction around the shaft 114. This large amount of force created during the power stroke of the cross-flow wind turbine 100 results in higher efficiencies.
[0069] Figure 4B is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment of Figure IA. As can be seen from Figure 4B, the average efficiency illustrated by plot 402 ranges between 28% and 32%. The plot 404 is the instantaneous calculated efficiency for the leading face 120 of rotor blade 110 of the embodiment illustrated in Figure IA.
[0070] The efficiency graphs, such as graph 4B are calculated from computational fluid
dynamics simulations on a computer. In the computational fluid dynamics simulations, the blades complete a full rotation every second. The dynamic loads on the blades are shown for
one half revolution. A half second window shows all of the cyclical force patterns as the patterns repeat over the next half revolution with the forces on the blades reversed. Non- dimensional pressure coefficients are measured at each time step as the blades rotate through this half cycle. The pressure on the blades is a function of the pressure coefficient and the reference flow head,
P = Cp x qief ; where q,ef is the reference flow head.
qief = l/2p(Uief)2 where p = air density
U1 ef = upstream velocity measured at mid-rotor height
The moments on each blade face, which act to produce energy when they are positive, are then summed and plotted as the overall efficiency. The graphs only illustrate a single blade. Hence, the average efficiency plot 402 is generated from the addition of efficiencies
calculated for both blades. The practical result is that another set of plots that are 180° out of phase with the plots shown are added to the plots that are shown in Figure 4B, as well as the other efficiency graphs illustrated herein.
[0071] The efficiency of the turbine in the wind tunnel and full scale is calculated from the following formulas: Power Available in the Wind:
Pw = 1A pAS3 [Watts] Pw = power available in the wind p = air density, kg/m3
= 1.225 kg/m3 @ sea level A = rotor swept area, m2
= rotor height x rotor diameter S = wind speed, m/s
Turbine Power:
Pt = Rotor Torque (Nm) x Rotational Velocity (rad/sec) [Watts]
Turbine Efficiency:
% Efficiency = (P,/Pw) x 100
Once the turbine's efficiency is determined, the turbine power can also be calculated by:
Pt = Pw x efficiency = Vi pAS3 x eff
[0072] Figure 5 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity As is illustrated in Figure 5, the wind accelerates in the gap between the airfoil stator 102 and rotor blade 110 as a result of the air flow characteristics of the airfoil stator 102 that causes the wind to accelerate on the surface 118 of airfoil stator 102. The length of the arrows in Figure 5 illustrate the magnitude of the speed of the wind As shown in Figure 5, large wind velocities are created along the leading face of the rotor blade 120 which are directed to the trailing face of rotor 112 The large
velocities along the surface of the leading face of the iotoi blade 1 10 cieate a negative pressure while the wind impinging upon the trailing face of rotor 112 create a positive
pressure In addition, stator 104 directs the wind so that it impinges upon the trailing face of rotor blade 110
[0073] Figure 6A illustrates pressure gradients calculated by computer simulations using
computational fluid dynamics for the cross-flow wind turbine 200 that is illustrated in Figure 2. Scale 602 shows positive pressures as lighter shades and negative pressures as darker shades. In a manner similar to Figure 4A, large negative pressures are created on the leading face of rotor blade 204 as the rotor blade 204 passes by the airfoil stator 214 during the power stroke. The large negative pressures created on the leading face of rotor blade 204 result from the accelerated air flow across the surface of airfoil stator 214. These negative pressures function to pull the rotor blade 204 in a counter-clockwise direction around the shaft 202. Positive pressure indicated by lighter shades is created on the trailing face of the rotor blade 204. The large differential pressure created between the leading face and the trailing face of the rotor blade 204 creates a large amount of force on the rotor blade 204 to cause the rotor blade 204 to rotate in a counter-clockwise direction around the shaft 202. This large amount of force created during the power stroke of the cross-flow wind turbine 200 results in higher efficiencies. The gap 208 functions to devent the trailing face of the rotor blade 204, as described above. Wind flows through the gap 208 an impinges upon the trailing face of rotor blade 206. This helps to increase the pressure on the trailing face of rotor blade 206 and minimize the effect of any negative pressures on the trailing face of rotor blade 206 during the return cycle of the rotor blades.
[0074] Figure 6B is an illustration of the instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment of Figure 2. As can be seen from Figure 6B the average efficiency illustrated by plot 602 ranges between 33% and 35%. Plot 604 is the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 2, while plot 606 illustrates the instantaneous efficiency of the trailing face of the rotor blades of the embodiment of Figure 2.
[0075] Figure 7 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment of Figure 2. As illustrated in Figure 7, the wind accelerates in the gap between the airfoil stator 214 and the rotor blade 204 as a result of the flow characteristics of the airfoil stator 214 that cause the wind to accelerate on the surface of the airfoil stator 214. The length of the arrows in Figure 7 illustrate the magnitude of the speed of the wind. As also shown in Figure 7, large wind velocities are created along the leading face of the rotor blade 204 that are directed to the trailing face of rotor blade 206. In addition, wind flowing through the gap 208 also impinges on the trailing face of rotor blade 206. Figure 7 provides a good visual impression of the wind flow characteristics of the embodiment of Figure 2.
[0076] Figure 8A illustrates the pressure gradients calculated by computer simulations using computational fluid dynamics for the embodiment of the cross-flow wind turbine that is illustrated in Figure 8 A. The embodiment of the cross-flow wind turbine illustrated in Figure 8A is very similar to the embodiment illustrated in Figure 2, with the exception that the stationary shaft 802 is somewhat larger, thereby creating a larger gap during certain portions of the cycle of rotation. In addition, the rotors are slightly shorter. As can be seen from Figure 8 A, the wind flow patterns create a vortex 804 on the trailing face of rotator blade 806 during the return cycle. This vortex is not created in the embodiment of Figure 2, as shown in Figure 6 A. As a result, the efficiencies of the embodiment of Figure 8 A are not quite as high as the efficiencies of the embodiment of Figure 2, as illustrated with more specificity in Figure 8B.
[0077] Figure 8B is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 8A. As can be seen from Figure 8B, the average efficiency illustrated by plot 808 ranges between 27% and 33%. Plot 810 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 8 A, while plot 812 illustrates the instantaneous efficiency of the trailing face of the rotor blades of the embodiment of Figure 8 A. [0078] Figure 9 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment of Figure 8 A. Figure 9 illustrates the manner in which large negative pressures are created on the leading face of the rotor blade as a result of the accelerated air flow on the airfoil. Figure 9 also illustrates the manner in which the vortex is formed from wind flowing between the gap caused by the recessed portion of the shaft 802 and the rotor blade, as well as the accelerated wind from the airfoil.
[0079] Figure 1OA illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for the cross-flow wind turbine embodiment illustrated in Figure 1OA. The embodiment illustrated in Figure 1OA is similar to the embodiment of Figure 8 A but includes a stationary shaft 1002 that is larger than the stationary shaft 802 of Figure 8 A. As a result, a larger gap 1004 is formed between the rotor blades in the stationary shaft 1002 during certain portions of the cycle of rotation. A vortex 1006 is also created by the embodiment of Figure 1OA.
[0080] Figure 1OB is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment of Figure 1OA. As can be seen from Figure 1OB, the average efficiency illustrated by plot 1008 ranges between 29% and 33%. Plot 1010 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 1OA. Plot 1012 illustrates the instantaneous efficiency of the trailing face of the rotor blades. Average efficiencies are calculated in the manner described above. [0081] Figure 11 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment of Figure 1OA. Figure 1 1 provides a good visual manner of disclosing the operation of the embodiment of Figure 1OA. [0082] Figure 12A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for the embodiment of the cross-flow wind turbine that is illustrated in Figure 12 A. Stationary shaft 1202 is a kidney bean shaped stationary shaft that forms a large gap during certain portions of the rotational cycle of the rotor blades around the stationary shaft 1202. As can be seen from Figure 12 A, a fairly large low pressure vortex is formed on the trailing face of the rotors during the return cycle.
[0083] Figure 12B is an illustration of the instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 12A. As can be seen from Figure 12B, the average efficiency that is illustrated by plot 1206 ranges between 28% and 30%. The instantaneous efficiency of the leading face of the rotor blades is illustrated by plot 1208. The instantaneous efficiency of the trailing face of the rotor blades is illustrated by plot 1210. The average efficiency illustrated by plot 1206 is calculated in the manner described above.
[0084] Figure 13 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment illustrated in Figure 12 A. The diagram of Figure 13 illustrates the manner in which the vortex 1202 is formed. [0085] Figure 14A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for the embodiment of a cross-flow wind turbine illustrated in Figure 14 A. The embodiment of Figure 14A uses a kidney shaped stationary shaft 1402 that is similar to the kidney shaped stationary shaft 1202 of the embodiment of Figure 12 A, but stationary shaft 1402 is positioned so that a gap is formed during a different portion of the rotational cycle. Again, a vortex 1404 is formed near the trailing face of the rotor blades during the return cycle.
[0086] Figure 14B is a illustration of the instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 14A. As can be seen from Figure 14B, the average efficiency illustrated by plot 1406 ranges between 27% and 32%. Plot 1408 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 14A. Plot 1410 illustrates the instantaneous efficiency of the trailing face of the rotor blades.
[0087] Figure 15 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment of Figure 14 A. Figure 15 illustrates the flow patterns and intensities that allows a visual interpretation of the manner of operation of the cross-flow wind turbine illustrated in Figure 14A.
[0088] Figure 16A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for an embodiment of a cross-flow wind turbine that is illustrated in Figure 16 A. Figure 16A is similar to the embodiment of Figure 12A, except that Figure 16A uses a kidney bean shaped stationary shaft 1602 that is larger than stationary shaft 1202 of Figure 12 A. The larger shaft reduces the size of the rotor blades and provides a larger gap between the shaft and the rotor blades. The result is a large vortex 1604 that creates a large negative pressure area on the trailing face of the rotor blades during the return portion of the rotational cycle.
[0089] Figure 16B is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 16 A. As can be seen from Figure 16B, the average efficiency, illustrated by plot 1606, ranges between 24% and 26%. Plot 1608 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment illustrated in Figure 16 A. Plot 1610 illustrates the instantaneous efficiency of the trailing face of the rotor blades.
[0090] Figure 17 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment illustrated in Figure 16A. Figure 17 provides a good visual interpretation of the operation of the embodiment of Figure 16A. [0091] Figure 18A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for the embodiment of a cross-flow wind turbine that is illustrated in Figure 18 A. The rotor blades illustrated in Figure 18 A have a J-shaped pattern rather than the semi-circular 120° arc pattern used in other embodiments disclosed herein. Shaft 1802 is a rotating shaft that is connected to the rotor blades of the embodiment illustrated in Figure 18 A.
[0092] Figure 18B is an illustration of the instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 18 A. As can be seen from Figure 18B, the average efficiency illustrated by plot 1804 ranges between 27% and 34%. Plot 1806 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 18 A. Plot 1808 illustrates the instantaneous efficiency that is calculated for the trailing face of the rotor blades using the methods described above. [0093] Figure 19 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment illustrated in Figure 18 A. Figure 19 provides a good visual interpretation of the operation of the embodiment of the cross-flow wind turbine illustrated in Figure 18A.
[0094] Figure 2OA illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for the embodiment of a cross-flow wind turbine that is illustrated in Figure 2OA. As shown in Figure 2OA, the rotor blades are arranged in a reverse offset configuration so that a gap is formed between the rotor blades. This simulation shows the creation of a vortex 2002 that is located more centrally on the trailing face of the rotor blades during the return cycle. The negative pressure area 2004 formed between the rotor blade and the airfoil during the power stroke is much smaller than the negative pressure areas in other embodiments disclosed herein. [0095] Figure 2OB is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment illustrated in Figure 2OA. As can be seen from Figure 2OB, the average efficiency illustrated by plot 2006 ranges between 25% and 26%. Plot 2008 illustrates the instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 2OA. Plot 2010 illustrates the instantaneous efficiency of the trailing face of the rotor blades. As is apparent from Figure 2OB, the smaller negative pressure area during the power stroke results in much lower efficiencies in the embodiment of Figure 2OA.
[0096] Figure 21 is a wind velocity and directional flow diagram that illustrate the direction and flow of the wind and its intensity for the embodiment of Figure 2OA. Figure 21 provides a good visual indication of the operation of the embodiment of Figure 2OA. [0097] Figure 22A illustrates pressure gradients calculated by computer simulations using computational fluid dynamics for an embodiment of the cross-flow wind turbine that is illustrated in Figure 22A. The embodiment of Figure 22A uses a split rotor blade and a small rotating shaft.
[0098] Figure 22B is an illustration of instantaneous efficiency and average efficiency of a single rotor blade versus time for the embodiment of Figure 22 A. As can be seen from Figure 22B, the average efficiency illustrated by plot 2202 ranges between 23% and 24%. Plot 2204 illustrates the calculated instantaneous efficiency of the leading face of the rotor blades of the embodiment of Figure 22 A. Plot 2206 illustrates the instantaneous efficiency calculated for the trailing face of the rotor blades. Efficiencies are calculated in the manner described above.
[0099] Figure 23 is a wind velocity and directional flow diagram that illustrates the direction of flow of the wind and its intensity for the embodiment of Figure 22A. Figure 23 provides a good visual interpretation of the manner of operation of the embodiment illustrated in Figure 22A.
[00100] Figure 24 is a schematic illustration of the manner in which the embodiment of Figure IA can be constructed. Airfoil stator 102 can be formed by using pipes 140, 142 and 144 to provide structural support. A braced framework 146 can be formed between pipe 142 and 144 to add further structural rigidity. The skin 148 of the airfoil stator 102 can be formed from sheet metal, or any other desired material and can be laser cut to the desired shape shown in Figure 24. Sheet metal having thicknesses of 14 gauge or 16 gauge, such as used in car fenders, can be employed to provide the desired shape. Other materials can also be used such as light weight laminates. Similarly, stator 104 can be formed by pipes 150 and 152 with standard braced framework that is covered with a sheet metal skin. Stator 106 can include pipes 154, 156 to form a structural member in the same manner as described above. Stators 102, 104, 106 may also be constructed from pre-cast concrete forms, or cast in place concrete forms, or any other construction technique known in the art.
[00101] Figure 25 is an isometric view of the embodiment illustrated in Figure 24 without a top lid. A low base member 2502 may be provided to direct ground winds into the device. This low base member is not a required element of the embodiment illustrated in Figure 25 and can be replaced with simply a flat base plate.
[00102] Figure 26 is an isometric view of the embodiment of Figure 25 that is viewed from a different direction. Again, the embodiment of Figure 26 is shown without a top plate. [00103] Figure 27 is an isometric view of the manner in which the rotor blades can be constructed. As shown in Figure 27, ribs 2702, 2704, 2706 and 2708 provide structural rigidity and the desired shape of each of the rotor blades. A braced framework (not shown) can be provided between each of the ribs 2702-2708. Skin 2710 is then applied to the surface of the braced framework to form the leading and trailing faces of the rotor blades. Rotating shaft 2712 is connected to each of the ribs 2702 - 2708 and to the skin 2710. The skin 2710 may be constructed from metal, aluminum, composites, or any other material known in the art.
[00104] Figure 28 is a schematic illustration of one embodiment of a power generation plant that can be used with any of the embodiments disclosed herein. As shown in Figure 28, a rotating shaft 2712 is connected to a right-angle gear box 2702. Rotational energy is transferred in a horizontal direction to the variable speed gear box 2804. Generator 2806 then generates electrical energy from the mechanical energy of the variable speed gear box 2804. [00105] Figure 29 illustrates the manner in which the generator 2806 can be connected directly to the rotating shaft 2712. This direct connection in a vertical manner eliminates mechanical losses resulting from the right angle gear box 2802 and the variable speed gear box 2804. The rotating shaft 2712 may also be directly connected to a direct drive generator. This configuration eliminates any mechanical losses from the gearbox by eliminating the gearbox altogether. Various electrical techniques, known in the art, can be used to generate a 60-cycle signal that can be applied to the electrical grid.
[00106] Figure 30A is a schematic block diagram of an embodiment of an integrated power plant 3000. The integrated power plant 3000 may use information generated by a wind vane/anemometer 3004 that provides data relating to wind direction and wind speed. The integrated power plant 3000 and related embodiments are described in more detail below.
[00107] Figure 30B is a schematic illustration of the embodiment of the integrated power plant illustrated in Figure 30A. The integrated power plant 3000 includes a rotor 3002 and three stators 3006, 3010 and 3014. In addition, there is a housing 3004 for housing the various equipment that performs the various tasks of the integrated power plant 3000. As also shown in Figure 30B, solar cells 3008 are attached to a south facing surface of the stator/tank 3006. Similarly, solar cells 3012 are attached to the south facing surface of the airfoil stator/tank 3010. Solar cells 3009 are attached to a south facing surface of the housing 3004. The stators illustrated in Figure 3OB can be used as tanks for storing various liquids and gases, as disclosed in more detail below. In addition, the surfaces of one or more of the rotors can be used for advertising. For example, as shown in Figure 30B, the airfoil stator/tank 3010 has an advertising display 3018 on a surface that may face a highway or roadway, or other area where people can observe the advertising display 3018. Companies may wish to place advertising displays, such as advertising display 3018, on the stator surfaces to show their support for renewable energy. If a billboard is going to be built in a windy area, it may be more economically feasible and will generate more goodwill to construct a renewable energy cross-flow wind turbine and place advertising on the stators. Since the cross-flow wind turbine can send energy to the grid in many locations, the capital expenditures for the construction of an advertising display can be reduced. [00108] Of course, any of the surfaces of the stators/tanks 3006, 3010, 3014 can be used for advertising in addition to, or in place of, the solar cells. For surfaces that do not face south, the entire surface of the stators/tanks may be illustrated with advertising material. In addition, the surfaces of the rotor 3002 may also be illustrated with advertising material and can provide an interesting motion to the billboard display. For example, the illustration on the rotor 3002 may provide movement to the overall advertising display that will catch the eye of the viewer. For example, the movement of the rotor may provide the impression of a waving flag or a bucking horse, or any other type of movement that can catch the eye of the viewer and provide an esthetic and unique display.
[00109] Figure 3 IA is an illustration of the manner in which various types of tanks may be included in the airfoil stator/tank 3010. As shown in Figure 3 IA, round or oval water tanks 3020, 3022 can be included in the interior portion of the airfoil stator 3010. In addition, a fuel tank 3024 that may store propane gas, natural gas, diesel fuel, or other fuel may also be included in the interior portion of the airfoil stator 3010. Further, a hydrogen tank 3026 and an oxygen tank 3028 may also be included in the interior portion of the airfoil stator 3010. Of course, any of the stators can include any of the various types of tanks for storing various liquids and gases, as desired.
[00110] Figure 3 IB illustrates the various types of tanks that can be included in the stators. As shown on Figure 3 IB, airfoil stator 3100 includes multiple tanks 3102, 3104, 3106, 3108, 3110, 3112, and 3114. Each of these tanks can carry any desired type of liquid or gas. For example, any one of the tanks 3102-3114 could be used to store water that is purified by the integrated power plant. Further, diesel fuel, propane fuel, or natural gas could also be stored in any one of the tanks 3102-3114 for supplying a fuel to operate the integrated power plant, as described in more detail below, or to store hydrogen and oxygen in a compressed form for various purposes, as also described below.
[00111] As also disclosed in Figure 3 IB, flat stator 3115 utilizes a liner 3116 that lines the interior portion of the flat stator 3115 to form a tank for holding fluids or gases. Liner 3116 may be made of plastic, steel or other liner material that is capable of holding liquids or gases. A skin 3118 can then be placed over the outside portion of the liner 3116 between the structural members 3120, 3122 that form the outer surface of the flat stator 3115. [00112] As also shown in Figure 3 IB, flat stator 3125 may include a tank 3124 that is disposed between the structural members 3126, 3128, such that the outer surface of the tank 3124 comprises the outer surface of the flat stator 3125. The tank 3124 can be made from composite materials, steel or other metals, and can be made to hold various liquids and gases. Any of the stators can store liquids or gases in any of the ways illustrated. [00113] Figure 32 is a block diagram illustrating the various operational features that can be included in one or more embodiments of an integrated power plant. As illustrated in Figure 32, a computer control system 3202 is connected to a network link 3204 that allows for the communication of programming controls to the computer control system 3202 by a computer system (not shown) over the network link 3204. The computer control system 3202 generates various control signals 3208 that control the operation of the various devices illustrated in Figure 32, in accordance with a programmable logic controller, a processor, or programmable state machine that is used in the computer control system 3202. The logic decisions to be used by the computer control system 3202 can be transmitted over the network link 3204. The logic stored in the computer control system 3202 can be modified, as desired, by a systems operator connected to the network link 3204. A communications link 3206 is also provided between the computer control system 3202 and the inverter/converter/controller 3210. Data signals, as well as control signals, are provided between the computer control system 3202 and inverter/converter/controller 3210 over communications link 3206. The inverter/converter/controller performs various functions. For example, the inverter portion of device 3210 generates a 60 Hz, 220 volt RMS AC electrical signal that is locked to the phase of the electrical grid 3242. [00114] As also illustrated in Figure 32, solar collectors may be included on the south facing surfaces (in the northern hemisphere) of the integrated power plant that generates a DC signal 3222 that is applied to the inverter/converter/controller 3210. Similarly, fuel cells may be housed in housing 3004 (Figure 30B) that generate a DC signal 3226 that is also applied to the inverter/converter/controller 3210. Wind turbine 3216 generates an AC electrical signal 3218 that is also applied to the inverter/converter/controller 3210. Batteries 3212 are connected to the inverter/converter/controller 3210 via connection 3214. Batteries 3212 can be charged from the inverter/converter/controller 3210 or supply a DC voltage to the controller 3210. [00115] As further shown in Figure 32, the controller 3210 provides an AC electrical signal 3244 that is applied to the desalinization/purification device 3245. Desalination/purification device 3245 may use any acceptable process for desalination and purification of water. For example, if the integrated power plant is located near a body of salt water, the desalination/purification device 3245 is capable of both desalinating the salt water and purifying the desalinated water 3246 that can then be stored in a stator, such as stator 3248. An example of a system that can be used is a system provided by Tomorrows Energy Choices, Inc., 6255 North Main Street, Atlanta, Georgia, 30101, that uses steam capitation technology and distillation processes for generating clean, fresh water. If the supply of water does not contain salt, but merely requires purification, other processes, such as reverse osmosis, can also be used to purify the water.
[00116] The controller 3210 can also generate a DC electrical signal 3250 that can be applied to an electrolysis device 3252 to generate oxygen and hydrogen from water. Any type of suitable electrolysis system can be used, such as the Hogan Hydrogen Generator available from Distributed Energy Systems, located at 10 Technology Drive, Wallingford, CT 06492, or the Hydrofiller from Avalence, LLC, located at 1240 Oronoque Road, P.O. Bos 2246, Milford, CT, 06460-1146. The oxygen 3254 that is generated by the electrolysis system 3252 can be sent to a compressor 3256, which compresses the oxygen and supplies the compressed oxygen to an oxygen storage tank 3260. The oxygen storage tank can be used to fill portable oxygen tanks 3266 for transport to other locations. The oxygen 3254 generated by the electrolysis system 3252 is medical grade oxygen. Currently, in the United States, supplies of oxygen must be transported long distances because of the dearth of oxygen generating plants. Generation of oxygen using wind energy will greatly reduce the cost of oxygen supplies that can be used for both medical and industrial purposes, as a result of the reduced transportation costs and reduced operational cost, as the integrated power plant is amortized over time. The oxygen stored in oxygen storage tank 3260 can also be applied to fuel cell 3224. The hydrogen 3268 generated by the electrolysis system 3254 can be compressed by a compressor 3270 and stored in a hydrogen storage tank 3270. The hydrogen stored in hydrogen storage tank 3262 can also be applied to fuel cell 3224. Fuel cell 3224 generates a DC electrical signal 3226 in response to the hydrogen and oxygen supplied to the fuel cell 3224. The DC electrical signal 3226 from fuel cell 3224 is then applied to the inverter/converter/controller 3210. The fuel cell 3224 can be housed in the housing 3004 (Figure 30B), together with other components illustrated in Figure 32. Fuel cell 3224 may comprise any suitable fuel cell system, such as manufactured by Plug Power, Inc., located at 968 Albany-Shaker Road, Latham, New York, 12110.
[00117] As also illustrated in Figure 32, the hydrogen storage tank 3262 can also supply hydrogen to a pipeline 3272 to pipe hydrogen to other locations. Further, hydrogen from the hydrogen storage tank 3262 can be used to fill portable hydrogen tanks 3274 for transport to other locations. Further, hydrogen storage tank 3262 can be connected to a dispensing station 3276 to dispense hydrogen for various purposes, such as for use in hydrogen vehicle. Various additional pumping and compressing devices may be used in the dispensing station 3276. Hydrogen stored in the hydrogen storage tank 3262 may also be supplied to a hydrogen storage tank in a stator 3278. Alternatively, the hydrogen storage tank 3262 may comprise a hydrogen storage tank disposed in a stator. Hydrogen 3280 from hydrogen storage tank 3262 or stator hydrogen storage tank 3278 can also be supplied to a hydrogen engine 3282 that can be used to run a generator 3286. Clutch 3284, as well as the hydrogen engine 3282 and various valves, can be controlled by control signals 3208 generated by the computer control system 3202.
[00118] As also illustrated in Figure 32, mechanical energy from the wind turbine 3216 can be used to operate mechanical pumps 3257. Clutch 3255 can be used to activate the mechanical pumps 3257 in response to a control signal 3208 generated by the computer control system 3202. Mechanical pumps can be used to pump water to a water tower to provide a supply of pressurized water. Also, the mechanical pumps can pump water to a higher reservoir for generation of hydroelectric power using a water turbine 3296. Direct usage of the mechanical energy to operate the mechanical pumps 3257 prevents losses in the conversion of mechanical energy to electrical energy and back. However, electrical pumps can be used to pump water to a higher elevation if desired. The water can then be used to run a water turbine that is coupled to a generator for later use in generating hydroelectric power, such as during peak usage hours, or when electricity is needed by local electrical devices 3230.
[00119] One of the problems in generating electrical energy from renewable energy sources has been that peak usage of energy, or even primary uses of energy, do not necessarily coincide with the times when renewable energy is generated. For example, it has been found in California that much of the wind energy is generated at night, when there is very low energy usage. Hence, there is an oversupply on the grid at night when wind energy is usually at its peak. Hence, storage of energy for use during peak usage periods has become a prime concern for generation of electrical energy using renewable energy sources. Pumping water uphill is one way of storing energy for use during peak periods when the supply of energy is needed the most. Customers are charged very high rates for usage of electricity during peak hours. Conversely, utility companies may be required to purchase energy generated during peak usage periods at similarly high rates. Hence, the ability to provide a source of stored energy that can be used to supply the grid during peak periods is an important aspect of all renewable energy sources. The ability to use the direct mechanical power with increased efficiency to pump water to a higher elevation using mechanical pumps 3257 provides a way of storing energy from the cross-flow wind turbine mechanical energy source, at any time, for usage when the electrical energy is needed. Of course, such a system may only be feasible if water sources are available and reservoirs or tanks can be provided economically, which is dependent upon the location and the geographical features adjacent to the location of the cross-flow wind turbine system. To generate electricity, water can be directed to water turbine 3296 from a reservoir or tank located at a higher elevation to operate the water turbine 3296 during certain periods of high energy usage, such as warm summer afternoons and evenings, or when electricity is needed, if the integrated power plant is not connected to the electrical grid 3242. Clutch 3298 can be activated in response to a control signal 3208. In addition, a water valve (not shown) may also be activated to supply the water to the water turbine 3296 in response to a control signal 3208 generated by the computer control system 3262.
[00120] The mechanical pumps 3257 illustrated in Figure 32 may also be used for other purposes. The pumps may be used for sewage treatment in a sewage treatment plant that may be located near the integrated power plant. The integrated power plant of Figure 32 also includes a generator 3286 for generating AC electrical power 3288 whenever electrical power is needed, such as when the electrical grid 3242 is down or the integrated power plant is not connected to the electrical grid 3242. The electrical power 3288 can be used by the local electrical devices 3230 or the various devices connected to the inverter/converter/controller 3210 when other power sources are not available. The generator 3286 can be operated using the hydrogen engine 3282, a water turbine 3296, a diesel/propane/natural gas engine 3292 or a biofuel engine 3251. All of these sources of power for the generator 3286 are low polluting or non-polluting sources of energy, which further adds to the environmentally friendly nature of the integrated power plant.
[00121] Biofuel engine 3251 may operate on a local source of biofuel that can be stored in a biofuel storage tank 3253, which may be located in one of the stators. The biofuel may comprise any desired mix of diesel and biofuel, including B20 or B30 fuel. Clutch 3253 can be activated in response to control signals 3208 to operate generator 3286 when the biofuel engine 3251 is activated.
[00122] As also illustrated in Figure 32, a diesel/propane/natural gas engine 3292 can be activated in response to control signals 3208, which also activates clutch 3294 to operate the generator 3286. The diesel/propane/natural gas storage tank 3290 can be located in a stator, as disclosed above. The diesel/propane/natural gas engine 3292 may be activated if all of the other supplies of energy have been exhausted.
[00123] As indicated above, generator 3286, illustrated in Figure 32, generates an AC electrical signal 3288 that is applied to the local electrical devices 3230. In addition, the output of the inverter/converter/controller 3210 is also applied to the local electrical devices 3230. The local electrical devices may include the electrical devices of one or more houses, one or more commercial buildings, a small village or neighborhood, a manufacturing plant, lights for illuminating the advertising displays on the stators, and other local electrical needs. In some cases, the integrated power plant may be isolated from an electrical grid and may operate to only supply the local electrical devices 3230. In other instances, the integrated power plant may be connected to the electrical grid 3242 and provide electrical energy to the grid. For example, as illustrated in Figure 32, an electrical connector 3232 connects the energy that is not used by the local electrical devices to an electrical meter 3234. The electrical meter 3234 is in turn connected to a controller 3236 and then to a controller 3236 and then to a transformer 3240, that is connected to the electrical grid 3242. Each of the connections between the inverter/converter/controller 3210, the local electrical devices 3210, the electrical meter 3234, the controller 3236, and the transformer 3240 are shown as bidirectional arrows, since electrical energy may flow from the electrical grid 3242 into the systems shown in Figure 32, or may flow outwardly from the systems shown on Figure 32 to the electrical grid 3242 under the control of controller 3236. When excess energy is being generated by the system illustrated in Figure 32, energy flows onto the electrical grid 3242 and the electrical meter 3234 is driven in a backwards direction so that the system is making money by supplying electrical energy to the electrical grid 3242. Control mechanisms, such as control mechanism 3236, controls the application of electrical energy onto the grid and may provide calculation of credits for application of energy onto the grid, rather than simply running the electrical meter backwards, which does not account for the application of electrical energy to the grid during different time periods.
[00124] In operation, the inverter/converter/controller 3210 may include a programmable logic controller, a processor, or programmable state machine that is controlled by the computer control system 3202 via link 3206. The controller 3210 can be programmed for various situations.
[00125] In a first situation, the integrated power plant is not connected to the grid and operates as an independent integrated source of electrical energy to operate the local electrical devices and may also be used to provide clean water, as well as medical grade oxygen and hydrogen for various uses. In addition, the system may use mechanical pumps to pump water to water towers or other locations and therefore provide a source of pressurized water. The mechanical pumps, as disclosed above, can also be used to pump water to a higher elevation for later use in running the water turbine 3296. In this manner, energy from the wind turbine 3216 and the solar collectors 3220 can be stored for later use. The mechanical pumps can also be used for waste treatment and to assist and operate a sanitation plant, as an integrated self-sufficient system. As indicated above, desalination and purification systems are incorporated in the integrated power plant that provide desalination and/or purification of water that can be stored within the structure of the device to provide a clean source of water and an independent, substantially self-sufficient electrical power plant. In this instance, the controller 3210 can be programmed to first provide for the electrical requirements of the local electrical devices 3230 from the wind turbine 3216 and solar collectors 3220. The DC voltage provided by the solar collectors 3230 is inverted by the inverter portion of the inverter/converter/controller 3210. The inverter produces a 60 cycle, 220 volt RMS AC electrical signal 3228 that is applied to the local electrical devices 3230. The wind turbine 3216 includes a generator that generates an AC electrical signal 3218 that has a frequency which varies with the speed of the rotation of the rotor device. That AC electrical signal is converted to a DC signal either in the converter portion of inverter/converter/controller 3210 or in a converter mounted on the generator. The inverter portion of inverter/converter/controller 3210 then inverts that DC electrical signal into AC electrical signal 3228, which is applied to the local electrical devices 3230. If the requirements of the local electrical devices 3230 are less than the amount of power that is being supplied by wind turbine 3216 and/or solar collectors 3230, the excess energy can then be used to charge batteries 3212, as well as other functions, as described herein. Also, inverter/converter/controller 3210 receives the DC voltage from solar collectors 3222 and converts the DC power from the solar collectors to a DC voltage signal for recharging batteries 3212 or for performing electrolysis in electrolysis device 3252 or other functions. Similarly, the AC electrical signal 3218 from wind turbine 3216 can be converted to a DC signal having a proper voltage to charge batteries 3212, or for performing electrolysis in electrolysis device 3252.
[00126] Once the batteries 3212 are charged, any excess energy can then be routed to desalination/purification device 3245 or electrolysis device 3252, depending upon the priorities that are set in computer control system 3202 for controlling the system illustrated in Figure 32. The use of excess electrical energy to perform electrolysis or desalination/purification, or both simultaneously, can be programmed into the programmable logic controller or processor in inverter/converter/controller 3210 in accordance with the desired operating procedures and priorities that are set in the system. In addition, water level detectors can be used in the water storage tanks, such as water storage tank 3248, which can signal the controller 3210 to produce water if water levels go below a certain amount. If the generation of water is a high priority item for the independent, stand alone integrated power plant, energy from wind turbine 3216 and/or solar collectors 3220 may be directed to the desalination/purification device 3245 without supplying power to the local electrical devices 3230. Similarly, if water levels reach a very low level and energy is not available from the wind turbine 3216 or the solar collectors 3220, battery power from batteries 3212, fuel cells 3224, or engines that operate generator 3286, such as the hydrogen engine 3282, the water turbine 3296, the biofuel engine 3251, or the diesel propane engine 3292, can be used to generate power for the sole purpose of producing water when low levels are detected in the storage tanks. Of course, prioritization levels can be easily programmed into the controller 3210 using the computer control system 3202 and the network link 3204. Similarly, the priority level for generating hydrogen or oxygen supplies can also be set based upon the necessity of generating hydrogen and oxygen for various purposes, such as a stored fuel that can be used when alternative energy sources are not available. Also, storage of energy in the form of water that is pumped using mechanical pumps 3257 to a reservoir at a higher elevation or tank at a higher elevation for the purposes of storing energy can be prioritized, based upon the specific needs of the integrated energy plant. Also, supplying energy to the electrical grid 3242 can be prioritized according to the purposes of the integrated power plant, as described below.
[00127] In a second situation, the integrated power plant may be connected to the electrical grid 3242. In that case, different priorities may exist. For example, a primary purpose for the integrated power plant may be to generate electricity that can be supplied to the electrical grid. In those cases, it may be desirable to supply electrical energy to the grid such that the cross-flow wind turbine and solar collectors can reduce the usage of grid power by the local electrical devices 3230 and supply electrical power to the electrical grid 3242 in high wind conditions or sunny conditions when the usage by local electrical devices 3280 is low, so that the capital investment in the system can be reduced. Hence, the priori tization of the usage of the power generated by the integrated system for the various purposes shown and the storage of power, can be prioritized as desired.
[00128] Figure 33 is a schematic illustration of an embodiment of a cross-flow wind turbine with a rotating stator assembly that is guided by a wind vane 3312. The rotating stator assembly includes a top plate 3304 and a base plate 3314. Stators 3306, 3310 and 3320 are attached to both the top plate 3304 and the base plate 3314. Swivel 3318 is connected to both the base plate 3314 and the sloped base unit 3302. Swivel 3318 allows the stator assembly, including the top plate 3304, stators 3306, 3310 and 3320 to rotate to a position relative to the wind in response to forces generated by wind vane 3312. In this manner, the cross-flow wind turbine 3300 will always be facing in the optimal direction for operation and will maximize the output of the cross-flow wind turbine 3300 for all wind directions. [00129] Figure 34 is a top view of the embodiment of Figure 33. As illustrated in Figure 34, the sloped housing 3302 holds the cross-flow wind turbine assembly. Swivel 3318 is mounted to the top of the sloped housing 3302 and to the base plate 3314 (Figure 33). Figure 34 also illustrates the rotor 3314, airfoil stabilizer 3316, stator 3308, stator 3310 and the wind vane 3312. The wind vane 3312 positions the cross-flow wind turbine in a direction so that the wind flows in an optimal direction into the cross-flow wind turbine. [00130] Figure 35 is a schematic illustration of a cross-flow wind turbine with a rotating stator assembly that is controlled by a wind direction control motor. As shown in Figure 35, a cross-flow wind turbine 3508 is mounted on top of a housing 3510. The cross-flow wind turbine can be rotated to different angular positions using a stator gear 3506 that is coupled to a motor gear 3504 that moves in response to a wind direction control motor 3502. The stator gear 3506 is coupled to the stator assembly of the cross-flow wind turbine 3508 and allows rotation of the cross-flow wind turbine 3508 to any desired angular rotational position on the top of housing 3510. Wind vane 3512 detects the direction of the wind and produces a wind direction signal 3514 that is transmitted to a control system 3516. The control system 3516 generates a control signal 3518 that is applied to the wind direction control motor 3502 to cause the wind direction control motor 3502 to rotate the motor gear 3504 to locate the cross- flow wind turbine 3508 to the desired angular position. The control system 3516 detects the wind direction from wind direction signal 3514 and compares the wind direction to the position of the stator assembly. This can be done by determining the count stored for the wind direction control motor 3502 if a stepper motor is used. In that case, control signal 3518 is generated by the control system 3516 to cause the wind direction control motor 3502 to move the proper number of steps to align the cross-flow wind turbine 3508 in the proper direction.
[00131] The embodiments illustrated in figures 33, 34 and 35 may be integrated into the structure of the roof of a house or building, which has several advantages. First, the cost of the integrated power plant can be reduced by using the structure of the building. Secondly, the sloped features of the roof can be utilized to enhance airflow into the device. [00132] Figure 36 is a schematic illustration of a cross-flow wind turbine with a structural support. Structural support 3502 provides structural stability for the cross-flow wind turbine structure. The structural support 3602 may replace a stator without substantially reducing the efficiency of the cross-flow wind turbine 3600. Hence, cost savings may be provided by simply building a structural support 3602, rather than building a complete stator assembly. [00133] Figure 37 illustrates a cross-flow wind turbine 3700 with two stators. As disclosed above, removal of the third stator may not significantly reduce the overall efficiency of the system. Hence, a vertical support member 3702 can be connected to the top support member 3704 to provide structural support so that the third stator can be removed to reduce the overall cost of the system.
[00134] Figure 38 illustrates another embodiment of a cross-flow turbine 3800 that has flat stators. As shown in Figure 38, flat stators 3802, 3804 and 3806 are disposed on the exterior portions of the cross-flow turbine 3800 to direct the flow of gases or liquids to the drive portion of the rotor and away from the return portion of the rotor, as described above. The cross-flow turbine 3800 illustrated in Figure 38 has less efficiency than cross-flow wind turbines that use an airfoil as a stator. Airfoil stators operate by compressing gases to increase the flow and create a vacuum that pulls the rotor along its path during the power stroke, as described above. Since fluids are not compressible, airfoil stators have no effect on liquids and are not useful with liquids. Hence, the cross-flow turbine 3800 illustrated in Figure 38 can be used for any type of gaseous flow or liquid flow, such as in streams and rivers, or ocean currents.
[00135] Figure 39 is an illustration of a cross-flow wind turbine 3900 that has three airfoil stators 3902, 3904 and 3906. The arrangement of the airfoil stators 3902, 3904 and 3906 allows for the efficient utilization of wind energy from wind directions 3908, 3910 and 3912. As indicated above, wind energy in many geographical locations comes primarily from a single direction, such as wind direction 3908. However, in the non-windy season, wind may come from a direction that is 90 degrees different from the primary wind direction, such as wind direction 3910, or, in many cases, from an opposite direction, such as wind direction 3912. In those cases, wind during the non- windy season can be efficiently used since airfoil stators 3906, 3904 increase the efficiency of the cross-flow wind turbine 3900 for wind coming from directions 3910 and 3912, respectively.
[00136] Figure 40 is a schematic top view of a cross-flow wind turbine 4000 using two airfoil stators 4002, 4004 and a single flat stator 4006. In this instance, the primary wind direction may be wind direction 4010 and a secondary wind direction may be from wind direction 4008. Wind from the primary direction 4010 operates in a highly efficient manner to rotate the rotor 4012. Wind is accelerated along the front surface of the airfoil stator 4002 to draw the front side of the rotor 4012 through the power stroke. At the same time, flat stator 4006 blocks wind from the rotor 4012 during the return portion and causes that wind to be directed onto the trailing surface of the rotor 4012 during the power stroke. As described above, a very efficient system is provided. During the off season, when the wind flows from direction 4008, airfoil stator 4004 causes wind to accelerate along the front surface of the airfoil stator 4004 and create a low pressure behind the rotor blade 4012 as it passes adjacent to the airfoil stator 4004. Hence, wind from wind direction 4008 causes the cross-flow wind turbine 4000 to operate in a more efficient manner.
[00137] The foregoing description of the invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed, and other modifications and variations may be possible in light of the above teachings. The embodiment was chosen and described in order to best explain the principles of the invention and its practical application to thereby enable others skilled in the art to best utilize the invention in various embodiments and various modifications as are suited to the particular use contemplated. It is intended that the appended claims be construed to include other alternative embodiments of the invention except insofar as limited by the prior art.

Claims

CLAIMS[00138] What is claimed is:
1. A method of providing and storing energy and water using a renewable energy integrated power plant comprising: providing a cross-flow wind turbine that has an airfoil stator and that generates electrical power and mechanical power in response to wind energy; providing solar cells that are mounted on said airfoil stator that generate electrical power; using said electrical power in local electrical devices; using said electrical power to desalinate and purify water so as to provide a source of purified drinking water; and storing said purified drinking water in a tank in said airfoil stator.
2. The method of claim 1 further comprising: storing electrical power in batteries for later use; using said electrical power to perform electrolysis to generate hydrogen and oxygen; and using said hydrogen and oxygen in a fuel cell to generate electrical power to supplement and replace electrical power from said cross-flow wind turbine, said solar cells and said batteries.
3. The method of claim 1 further comprising: using mechanical energy from said wind turbine to pump water to a higher elevation; and using said water that is pumped to a higher elevation to operate a water turbine.
4. The method of claim 1 further comprising: providing an auxiliary generator to provide auxiliary power for said integrated power plant.
5. The method of claim 3 further comprising: providing an auxiliary generator to provide auxiliary power for said integrated power plant.
6. The method of claim 4 further comprising: using a diesel engine to operate said auxiliary generator.
7. The method of claim 4 further comprising: using a hydrogen engine to operate said auxiliary generator using said hydrogen generated by said renewable energy integrated power plant.
8. The method of claim 5 further comprising: using a water turbine that is driven by said water that is pumped to a higher elevation to operate said auxiliary generator.
9. The method of claim 4 further comprising: using a propane engine to operate said auxiliary generator.
10. The method of claim 4 further comprising: using a natural gas engine to operate said auxiliary generator.
11. The method of claim 4 further comprising: using a biofuel engine to operate said auxiliary generator.
12. The method of claim 2 further comprising: storing said oxygen in portable tanks for transport to other locations.
13. The method of claim 2 further comprising: storing said hydrogen in portable tanks for transport to other locations.
14. The method of claim 2 further comprising: dispensing said hydrogen to hydrogen vehicles at said renewable energy integrated power plant.
15. The method of claim 2 further comprising: placing said hydrogen in a hydrogen pipeline for dispensing said hydrogen to hydrogen vehicles at a location other than said renewable energy integrated power plant.
16. The method of claim 4 further comprising: storing fuel for said auxiliary generator in a tank formed in said airfoil stator.
17. A renewable energy integrated power plant that provides electrical energy and that generates and stores purified water comprising: a cross-flow wind turbine that uses an airfoil stator and generates electrical power; solar cells mounted on said cross-flow wind turbine that generate electrical power; a desalinator that desalinates and purifies saltwater and brackish water and generates purified drinking water in response to said electrical power; and a water storage tank formed in said airfoil stator that stores said purified drinking water.
18. The power plant of claim 17 further comprising: batteries that store excess electric power for latter use; and an electrolysis device that uses said electrical power from said cross-flow wind turbine and said solar cells to generate hydrogen and oxygen.
19. The power plant of claim 18 further comprising: a fuel cell that uses said hydrogen and said oxygen to generate electrical power to supplement and replace electrical power from said cross-flow wind turbine and said solar cells whenever said electrical power from said wind turbine and said solar cells are insufficient.
20. The power plant of claim 17 further comprising: mechanical pumps that are mechanically coupled to said cross-flow wind turbine that use mechanical energy to pump water to a higher elevation; and a water turbine that operates in response to said water.
21. The power plant of claim 18 further comprising: an auxiliary generator that generates auxiliary electrical power for said renewable energy integrated power plant.
22. The power plant of claim 21 further comprising: a hydrogen engine that is coupled to and operates said auxiliary generator using hydrogen generated by said electrolysis device.
23. The power plant of claim 21 further comprising: a diesel engine that is coupled to and operates said auxiliary generator using diesel fuel stored in a tank formed in said airfoil stator.
24. The power plant of claim 21 further comprising: a propane engine that is coupled to and operates said auxiliary generator using propane fuel stored in a tank formed in said airfoil stator.
25. The power plant of claim 17 further comprising: advertising displays placed on said airfoil stator that provide advertising that is visible to the public.
26. A system for providing and storing energy and water using a renewable energy integrated power plant comprising: means for providing a cross-flow wind turbine that has an airfoil stator and that generates electrical power and mechanical power in response to wind energy; means for generating electrical power, including solar cells that are mounted on said airfoil stator; means for using said electrical power to desalinate and purify water so as to provide a source of purified drinking water; and means for storing said purified drinking water in a tank in said airfoil stator.
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Families Citing this family (27)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2008105746A (en) * 2005-07-15 2009-08-20 Саутвест Виндпауэр, Инк. (Us) WIND TURBINE AND METHOD FOR ITS MANUFACTURE
US7880323B2 (en) * 2006-06-10 2011-02-01 Menges Pamela A Wind generator system
US11644010B1 (en) 2006-06-10 2023-05-09 Star Sailor Energy, Inc. Energy storage system
US8534992B2 (en) * 2007-03-23 2013-09-17 Flodesign Wind Turbine Corp. Wind turbine
US8322992B2 (en) * 2007-04-17 2012-12-04 Adam Fuller Modular wind-driven electrical power generator and method of manufacture
EP2048759A1 (en) * 2007-10-09 2009-04-15 EM Microelectronic-Marin SA Facility for producing and storing renewable energy
US8070449B2 (en) * 2008-04-29 2011-12-06 Absolute Turn, Inc. Wind turbine
US8363618B2 (en) * 2008-08-29 2013-01-29 Ciright Systems, Inc. Content distribution platform
EP2350352B1 (en) 2008-10-30 2019-03-20 Next Hydrogen Corporation Power dispatch system for electrolytic production of hydrogen from wind power
US20100132234A1 (en) * 2008-12-02 2010-06-03 Marvin Winkler Methods and systems for generating a dynamic image effect, and products thereby
AP2011006032A0 (en) * 2009-08-03 2011-12-31 Craft Holdings Wa Pty Ltd Electrolysis cell and electrical power unit incorporating same.
US8456031B1 (en) * 2009-10-13 2013-06-04 The Boeing Company Underwater pumped-hydro energy storage
US8752512B1 (en) * 2009-11-06 2014-06-17 Paul D. Francis Power plant using brackish water as an energy source
US20110173853A1 (en) * 2010-01-21 2011-07-21 Christophe Leveque Billboard system and methods of use thereof
US20120169065A1 (en) * 2010-07-28 2012-07-05 Lambertus Hesselink Home energy systems
US9774198B2 (en) * 2010-11-08 2017-09-26 Brandon Culver Wind and solar powered heat trace with homeostatic control
ES1074113Y (en) * 2011-02-10 2011-06-22 Soriano Jose Ortuno ADVERTISING VERTICAL AEROGENERATOR
EP2784302A4 (en) * 2011-11-21 2016-04-20 Corpas Miguel Ángel Peñalva Vertical-axis wind turbine
EP2792010B1 (en) * 2011-12-14 2018-01-24 Electrygen Pty Ltd. A renewal energy power generation system
US8823195B2 (en) 2012-04-03 2014-09-02 Mark Robert John LEGACY Hydro electric energy generation and storage structure
US10189733B2 (en) * 2012-08-13 2019-01-29 Enviro Water Minerals Company, Inc. Heating system for desalination
US9187833B2 (en) 2012-09-13 2015-11-17 Next Hydrogen Corporation Internally-reinforced water electrolyser module
US9133553B2 (en) 2012-09-13 2015-09-15 Next Hydrogen Corporation Externally-reinforced water electrolyzer module
FR3002693B1 (en) * 2013-02-27 2015-11-20 Atawey ENERGY STORAGE DEVICE AND METHOD OF MANAGING THE SAME
US20150115607A1 (en) * 2013-10-27 2015-04-30 Lev Stepanov Method of increasing of sensitivity and productivity of the wind generator with vertical axis at weak winds and device for his realization
US10487799B2 (en) * 2015-12-18 2019-11-26 Dan Pendergrass Pressure and vacuum assisted vertical axis wind turbines
US10495063B2 (en) * 2016-08-14 2019-12-03 Cbc, Llc Wind turbine

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4350900A (en) * 1980-11-10 1982-09-21 Baughman Harold E Wind energy machine
US5810284A (en) * 1995-03-15 1998-09-22 Hibbs; Bart D. Aircraft
US6581873B2 (en) * 2001-01-19 2003-06-24 Mcdermott Patrick P. Hybrid winged airship (dynastat)

Family Cites Families (97)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US201400A (en) 1878-03-19 Improvement in wind-wheels
BE511378A (en) 1951-06-23 1900-01-01
US2896882A (en) 1954-11-12 1959-07-28 Nelson Adolph Propulsion arrangement on multi wing aircraft
US3876925A (en) * 1974-01-02 1975-04-08 Christian Stoeckert Wind turbine driven generator to recharge batteries in electric vehicles
US3922012A (en) 1974-02-28 1975-11-25 Harry Herz Power generator
US3895882A (en) * 1974-04-17 1975-07-22 Robert D Moyer Windmill structure
US3938907A (en) 1974-06-24 1976-02-17 Windsunwatt, Inc. Horizontal multidirectional turbine windmill
US3986786A (en) * 1974-06-28 1976-10-19 Sellman Donald L Wind motors
US4084918A (en) * 1974-08-06 1978-04-18 Turbomachines, Inc. Wind motor rotor having substantially constant pressure and relative velocity for airflow therethrough
US4070131A (en) * 1975-01-20 1978-01-24 Grumman Aerospace Corporation Tornado-type wind turbine
US4057270A (en) * 1975-04-03 1977-11-08 Barry Alan Lebost Fluid turbine
IT1034864B (en) * 1975-04-07 1979-10-10 Poeta Rolando AEROMOTOR WITH THE SAME ROTOR SERIES IN OSLIQUA ARRANGEMENT IN THE WIND DIRECTION
US4031405A (en) * 1975-08-04 1977-06-21 Paul Asperger Windmill with shroud adjusting means
US4119863A (en) * 1975-08-13 1978-10-10 Kelly Donald A Combined high density solar panels and vertical wind turbines
US4115027A (en) * 1976-01-16 1978-09-19 Robert Nason Thomas Vertical windmill
US4079264A (en) * 1976-05-03 1978-03-14 Nathan Cohen Wind or water operated power plant
US4088419A (en) * 1976-11-02 1978-05-09 Hope Henry F Wind operated power plant
ES454192A1 (en) * 1976-12-13 1977-12-01 Zapata Martinez Valentin System for the obtainment and the regulation of energy starting from air, sea and river currents
US4132282A (en) 1977-01-17 1979-01-02 Sparks Keith L Automotive electric generator
US4116581A (en) * 1977-01-21 1978-09-26 Bolie Victor W Severe climate windmill
US4174923A (en) * 1977-05-19 1979-11-20 Williamson Glen A Wind driven engine
US4154556A (en) * 1977-06-01 1979-05-15 Webster George W Devices for utilizing the power of the wind
US4115028A (en) 1977-06-30 1978-09-19 Hintze Anton E Wind powered cylinder
US4164382A (en) * 1977-07-27 1979-08-14 General Atomic Company Wind driven power apparatus
US4156580A (en) * 1977-08-18 1979-05-29 Pohl Lothar L Wind-turbines
US4295783A (en) 1978-02-09 1981-10-20 Lebost Barry Alan Fluid turbine
US4234289A (en) * 1978-09-05 1980-11-18 Lebost Barry Alan Fluid turbine
US4204796A (en) * 1978-09-20 1980-05-27 Pack Howard Jr Wind powered apparatus
US4288200A (en) * 1979-04-25 1981-09-08 Hare Louis R O Wind tower turbine
US4278896A (en) * 1979-06-04 1981-07-14 Mcfarland Douglas F Wind power generator
US4260325A (en) * 1979-11-07 1981-04-07 Cymara Hermann K Panemone wind turbine
US4407833A (en) * 1979-12-31 1983-10-04 Nutrisearch Company Whey protein fortified red meat and process for preparation
US4270056A (en) 1980-02-15 1981-05-26 Wright Oliver D Undershot current motor
US4309146A (en) 1980-03-12 1982-01-05 The United States Of America As Represented By The Administrator Of The National Aeronautics And Space Administration Amplified wind turbine apparatus
US4423368A (en) 1980-11-17 1983-12-27 Bussiere Jean L Turbine air battery charger & power unit
US4365929A (en) 1981-01-16 1982-12-28 Philip Retz Vertical wind turbine power generating tower
FR2505411A1 (en) 1981-05-08 1982-11-12 Binder Adam DEVICE FOR RECOVERING WIND ENERGY
US4490232A (en) 1981-10-29 1984-12-25 The Laitram Corporation Wave-powered electrolysis of water
US4575311A (en) 1981-12-21 1986-03-11 Indal Technologies Inc. Gear box assembly-upper head assembly
US4457666A (en) 1982-04-14 1984-07-03 The Windgrabber Corporation Apparatus and method for deriving energy from a moving gas stream
US4486143A (en) 1982-09-01 1984-12-04 Mcvey Paul W Turbine-type wind machine
US4474529A (en) 1983-03-21 1984-10-02 Kinsey Lewis R Windmill
US4452562A (en) 1983-05-06 1984-06-05 Iowa State University Research Foundation, Inc. Tornado type wind turbines
US4551631A (en) 1984-07-06 1985-11-05 Trigilio Gaetano T Wind and solar electric generating plant
US4606697A (en) 1984-08-15 1986-08-19 Advance Energy Conversion Corporation Wind turbine generator
US4717832A (en) 1985-09-17 1988-01-05 Harris Charles W Tidal and river turbine
US4715776A (en) 1985-11-22 1987-12-29 Benesh Alvin H Wind turbine system using a savonius type rotor
US4890976A (en) * 1987-11-25 1990-01-02 Peter Jansson Wind turbine
FR2624210B1 (en) * 1987-12-04 1990-04-13 Dominique Gual STATO-WIND MODULE MADE BY ASSEMBLING A TURBINE WITH PARABOLIC FLOW BETWEEN A BASE AND A DOME
US4830570A (en) 1987-12-15 1989-05-16 Benesh Alvin H Wind turbine system using twin savonius-type rotors
US5037268A (en) * 1988-05-31 1991-08-06 Fenlon Robert M Dual axis wind turbine
US4843249A (en) 1988-08-09 1989-06-27 Bussiere Jean L Hydroelectric system
EP0364020B1 (en) * 1988-10-03 1992-12-30 Josef Moser Rotor for a wind motor
US4960363A (en) * 1989-08-23 1990-10-02 Bergstein Frank D Fluid flow driven engine
US4979871A (en) * 1989-11-17 1990-12-25 Reiner Harold E Wind turbine
GR910200234U (en) * 1990-05-31 1992-07-30 Mihail Valsamidis Turbine wind machine with a vertical axis
CA2018199C (en) * 1990-06-04 1993-07-27 Gilles Ouellet Stator wind turbine
US5336933A (en) * 1990-07-16 1994-08-09 Bru-Mel Corporation Fluid-augmented free-vortex power generating apparatus
US5038049A (en) * 1990-09-12 1991-08-06 Shuichi Kato Vertical axis wind powered generator
US5163813A (en) * 1991-01-02 1992-11-17 Schlenker John R Wind-driven energy conversion device
US5133637A (en) * 1991-03-22 1992-07-28 Wadsworth William H Vertical axis wind turbine generator
US5203672A (en) * 1991-07-22 1993-04-20 Mariah Electric Corporation Wind turbine with stationary vertical support tower and airflow-directing shell
US5246342A (en) * 1992-07-09 1993-09-21 Bergstein Frank D Wind rotor apparatus
US5503525A (en) * 1992-08-12 1996-04-02 The University Of Melbourne Pitch-regulated vertical access wind turbine
AU5016493A (en) 1992-08-18 1994-03-15 Four Winds Energy Corporation Wind turbine particularly suited for high-wind conditions
US5287004A (en) 1992-09-04 1994-02-15 Finley Michael D Automobile air and ground effects power package
US5280827A (en) 1992-12-22 1994-01-25 Cletus L. Taylor Venturi effect charging system for automobile batteries
GB9302648D0 (en) 1993-02-10 1993-03-24 Farrar Austin P Wind powered turbine
US5386146A (en) 1993-04-22 1995-01-31 Hickey; John J. In-line auger driven charging system
US5313103A (en) * 1993-04-22 1994-05-17 Hickey John J Auger shaped fluid medium engaging member
FI1040U1 (en) * 1993-05-03 1993-11-26 Huovinen Jari Pekka Vindkraftverk
US5463257A (en) 1993-11-23 1995-10-31 Yea; Ton A. Wind power machine
US5454694A (en) * 1994-03-01 1995-10-03 O'dell; Clarence E. Vertical axis wind mill with retractable sails
US5852331A (en) * 1996-06-21 1998-12-22 Giorgini; Roberto Wind turbine booster
FR2752599B1 (en) * 1996-08-23 2002-11-29 Gual Georges Jean STATO-WIND MODULE WITH FLAT AND PERIPTER CONFORMATION
DE19714512C2 (en) * 1997-04-08 1999-06-10 Tassilo Dipl Ing Pflanz Maritime power plant with manufacturing process for the extraction, storage and consumption of regenerative energy
US5844324A (en) 1997-08-07 1998-12-01 Spriggle; Wayne D. Wind turbine generator for recreational vehicles
US6138781A (en) 1997-08-13 2000-10-31 Hakala; James R. System for generating electricity in a vehicle
US6083382A (en) 1998-01-14 2000-07-04 Bird; Mark Water desalination system
US6015258A (en) * 1998-04-17 2000-01-18 Taylor; Ronald J. Wind turbine
US6000907A (en) * 1998-08-24 1999-12-14 Bic; Adrian Fluid-activatable vane for a fluid turbine
US6113350A (en) * 1998-08-31 2000-09-05 Stokwang Windpower Industrial Inc. Vertical-axle power machine
US6109863A (en) * 1998-11-16 2000-08-29 Milliken; Larry D. Submersible appartus for generating electricity and associated method
US6191496B1 (en) 1998-12-01 2001-02-20 Dillyn M. Elder Wind turbine system
US6448669B1 (en) 1998-12-01 2002-09-10 Dillyn M. Elder Water power generation system
US6158953A (en) * 1998-12-04 2000-12-12 Lamont; John S Wind turbine with variable position blades
US6139255A (en) 1999-05-26 2000-10-31 Vauthier; Philippe Bi-directional hydroturbine assembly for tidal deployment
DE10105181C1 (en) * 2001-02-06 2002-07-11 Aerodyn Eng Gmbh Wind-powered energy plant for water desalination has mechanical energy provided by rotor used for driving pressure pump for reverse osmosis system
DE10126222C2 (en) * 2001-05-30 2003-10-16 Aerodyn Eng Gmbh Wind turbine with desalination plant
US20020192069A1 (en) 2001-06-14 2002-12-19 Edwin Newman Wind machines
US6626636B2 (en) 2001-08-06 2003-09-30 Awa Research, Llc Column airflow power apparatus
US6538340B2 (en) 2001-08-06 2003-03-25 Headwinds Corporation Wind turbine system
WO2003076800A2 (en) * 2002-03-08 2003-09-18 Ocean Wind Energy Systems Offshore wind turbine
US7189050B2 (en) * 2003-04-30 2007-03-13 Terra Moya Aqua, Inc. Cross-flow wind turbine
EP1668243A2 (en) * 2003-04-30 2006-06-14 Ronald J. Taylor Wind turbine having airfoils for blocking and directing wind and rotors with or without a central gap
US7911071B2 (en) * 2007-11-06 2011-03-22 Devine Timothy J Systems and methods for producing, shipping, distributing, and storing hydrogen
US20090200249A1 (en) * 2008-02-08 2009-08-13 Erez Zimhoni Desalination system and pressure storage systems therefor

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4350900A (en) * 1980-11-10 1982-09-21 Baughman Harold E Wind energy machine
US5810284A (en) * 1995-03-15 1998-09-22 Hibbs; Bart D. Aircraft
US6581873B2 (en) * 2001-01-19 2003-06-24 Mcdermott Patrick P. Hybrid winged airship (dynastat)

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