US20010002669A1 - Soft electrical heater and method of assembly - Google Patents

Soft electrical heater and method of assembly Download PDF

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US20010002669A1
US20010002669A1 US09/765,629 US76562901A US2001002669A1 US 20010002669 A1 US20010002669 A1 US 20010002669A1 US 76562901 A US76562901 A US 76562901A US 2001002669 A1 US2001002669 A1 US 2001002669A1
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soft
heater
threads
conductive
heating element
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US09/765,629
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US6369369B2 (en
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Arkady Kochman
Arthur Gurevich
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Individual
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Priority claimed from US08/855,595 external-priority patent/US5824996A/en
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    • AHUMAN NECESSITIES
    • A41WEARING APPAREL
    • A41DOUTERWEAR; PROTECTIVE GARMENTS; ACCESSORIES
    • A41D13/00Professional, industrial or sporting protective garments, e.g. surgeons' gowns or garments protecting against blows or punches
    • A41D13/002Professional, industrial or sporting protective garments, e.g. surgeons' gowns or garments protecting against blows or punches with controlled internal environment
    • A41D13/005Professional, industrial or sporting protective garments, e.g. surgeons' gowns or garments protecting against blows or punches with controlled internal environment with controlled temperature
    • A41D13/0051Heated garments
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01CRESISTORS
    • H01C1/00Details
    • H01C1/14Terminals or tapping points or electrodes specially adapted for resistors; Arrangements of terminals or tapping points or electrodes on resistors
    • H01C1/148Terminals or tapping points or electrodes specially adapted for resistors; Arrangements of terminals or tapping points or electrodes on resistors the terminals embracing or surrounding the resistive element
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01CRESISTORS
    • H01C17/00Apparatus or processes specially adapted for manufacturing resistors
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01CRESISTORS
    • H01C7/00Non-adjustable resistors formed as one or more layers or coatings; Non-adjustable resistors made from powdered conducting material or powdered semi-conducting material with or without insulating material
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02HEMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
    • H02H5/00Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal non-electric working conditions with or without subsequent reconnection
    • H02H5/04Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal non-electric working conditions with or without subsequent reconnection responsive to abnormal temperature
    • H02H5/042Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal non-electric working conditions with or without subsequent reconnection responsive to abnormal temperature using temperature dependent resistors
    • H02H5/043Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal non-electric working conditions with or without subsequent reconnection responsive to abnormal temperature using temperature dependent resistors the temperature dependent resistor being disposed parallel to a heating wire, e.g. in a heating blanket
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B3/00Ohmic-resistance heating
    • H05B3/10Heater elements characterised by the composition or nature of the materials or by the arrangement of the conductor
    • H05B3/12Heater elements characterised by the composition or nature of the materials or by the arrangement of the conductor characterised by the composition or nature of the conductive material
    • H05B3/14Heater elements characterised by the composition or nature of the materials or by the arrangement of the conductor characterised by the composition or nature of the conductive material the material being non-metallic
    • H05B3/145Carbon only, e.g. carbon black, graphite
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B3/00Ohmic-resistance heating
    • H05B3/20Heating elements having extended surface area substantially in a two-dimensional plane, e.g. plate-heater
    • H05B3/34Heating elements having extended surface area substantially in a two-dimensional plane, e.g. plate-heater flexible, e.g. heating nets or webs
    • H05B3/342Heating elements having extended surface area substantially in a two-dimensional plane, e.g. plate-heater flexible, e.g. heating nets or webs heaters used in textiles
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B3/00Ohmic-resistance heating
    • H05B3/40Heating elements having the shape of rods or tubes
    • H05B3/54Heating elements having the shape of rods or tubes flexible
    • H05B3/58Heating hoses; Heating collars
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/002Heaters using a particular layout for the resistive material or resistive elements
    • H05B2203/003Heaters using a particular layout for the resistive material or resistive elements using serpentine layout
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/002Heaters using a particular layout for the resistive material or resistive elements
    • H05B2203/004Heaters using a particular layout for the resistive material or resistive elements using zigzag layout
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/002Heaters using a particular layout for the resistive material or resistive elements
    • H05B2203/005Heaters using a particular layout for the resistive material or resistive elements using multiple resistive elements or resistive zones isolated from each other
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/011Heaters using laterally extending conductive material as connecting means
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/013Heaters using resistive films or coatings
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/017Manufacturing methods or apparatus for heaters
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/02Heaters using heating elements having a positive temperature coefficient
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/026Heaters specially adapted for floor heating
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/029Heaters specially adapted for seat warmers
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B2203/00Aspects relating to Ohmic resistive heating covered by group H05B3/00
    • H05B2203/036Heaters specially adapted for garment heating
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05KPRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
    • H05K1/00Printed circuits
    • H05K1/02Details
    • H05K1/03Use of materials for the substrate
    • H05K1/038Textiles

Definitions

  • This invention relates to soft electrical heaters, and particularly to heating elements, which have a soft and strong metal or carbon containing electrically conductive core.
  • Heating elements have extremely wide applications in household items, construction, industrial processes, etc. Their physical characteristics, such as thickness, shape, size, strength, flexibility and other characteristics affect their usability in various applications.
  • the '665 design is also not conducive to tight hermetic sealing through the heater areas (no gaps inside), which can cause a short circuit through puncture and admission of liquid into the body of heating element.
  • This element can't be used with higher temperatures due to the damage that would be caused to the polyaramid, polyester or cotton metallized fabric, described in the invention.
  • Fennekels et al. discloses a sheet textile structure combined with resistance elements. These resistance elements comprise metallic fibers or filaments with a denier like that of natural or synthetic textile fibers, and with overall cross sectional thickness of 8 to 24 microns.
  • the >531 design suffers from the following drawbacks: being a sheet product, it is not conducive to hermetic sealing through the body of the heater (no gaps inside), only perimeter sealing is possible, which can result in a short circuit due to puncture and admission of liquid into the body of the heating element; yarns are very heavy: from 1 to 7 grams per 1 meter of yarn; the use of silver fibers makes these yarns very expensive; individual conductors have a large cross sectional thickness, each having a outer sheath of braided textile or elastomer.
  • U.S. Pat. No. 4,149,066 to Niibe at. al. describes a sheet-like thin flexible heater made with an electro-conductive paint on a sheet of fabric.
  • This method has the following disadvantages: the paint has a cracking potential as a result of sharp folding, crushing or punching; the element is hermetically sealed only around its perimeter, therefore lacking adequate wear and moisture resistance; such an element can't be used with high temperatures due to destruction of the underlying fabric and thermal decomposition of the polymerized binder in the paint; the assembly has 7 layers resulting in loss of flexibility and lack of softness.
  • This method has the following disadvantages: (a) the wires are enveloped and separated by the tough PTC material which thickens and hardens the heating element (b) the distance between the wires is very limited, due to a nature of the PTC material having a high electrical resistance, this prevents manufacturing of heaters with large heat radiating surface; (c) the heater is limited only to one predetermined highest temperature level, therefore, this heating device is unable to bypass said temperature level when a quick heating at the highest temperature is needed.
  • the present invention seeks to alleviate the drawbacks of the prior art and describes the fabrication of heating element comprising metal fiber containing, metal coated, carbon containing or carbon coated textile threads, which is economical to manufacture; does not pose environmental hazards; results in a soft, flexible, strong, thin, and light heating element core, suitable for even small and complex assemblies, such as hardware.
  • a significant advantage of the proposed invention is that it provides for fabrication of heating elements of various shapes and sizes, with predetermined electrical characteristics; allows for a durable heater, resistant to kinks and abrasion, and whose electro-physical properties are unaffected by application of pressure, sharp folding, small perforations, punctures and crushing.
  • the first objective of the invention is to provide a significantly safe and reliable heating element which can function properly after it has been subjected to sharp folding, kinks, small perforations, punctures or crushing, thereby solving problems associated with conventional flexible heating metal wires.
  • the electric heating element of the present invention is comprised of electrically conductive threads coated with metal, carbon, conductive ink, or their combination which possess the following characteristics: (a) high strength; (b) high strength-to-weight ratio; (c) very low coefficient of thermal expansion; (d) softness.
  • the heating element core described in this invention is comprised of electrically conductive strips, sleeves, sheets, ropes, or strands of threads/fibers, which radiate a controlled heat over the entire heating core surface.
  • a second objective of the invention is to provide maximum flexibility and softness of the heating element.
  • the electric heating element of the invention contains thin (0.01 to 3.0 mm, but preferably within the range of 0.05-1.0 mm) threads, which are woven into, embroidered on, or stranded into continuous or electrically connected strips, sleeves/pipes, ropes, sheets, or bundles, then arranged and insulated to have gaps between the electrically conductive media. It is preferable that all insulation components of the heating element assembly are thin, soft and flexible materials.
  • a third objective of the invention is to provide for the uniform distribution of heat, without overheating and hot spots, thereby solving the problem of overinsulation and energy efficiency.
  • conductive threads in the heating elements are separated by non-conductive fibers yarns or polymers
  • one side of the heating element may include a metallic foil or a metallized material to provide uniform heat distribution and heat reflection. It is also preferable that the soft heating elements of the invention are made without thick cushioning insulation, which slows down the heat delivery to the surface of the heating apparatus.
  • a forth objective of the invention is to provide for ease in the variation of heating power density, thereby solving a problem of manufacturing various heating devices with different electric power density requirements.
  • the conductive threads/yarns in the heating element core are embroidered on, laminated between or woven into strips, ropes, sleeves/pipes, sheets, or stranded into bundles with predetermined width, density (of embroidering or weaving) and thickness. It is preferable that the strips, sleeves/pipes, sheets, ropes or strands are made of combination of threads/yarns with different electrical resistance and/or include electrically nonconductive high strength polymer or inorganic (such as refractory ceramic or fiberglass) fibers.
  • a fifth objective of the invention is to provide for ease in manufacturing of the heating element core, thereby eliminating a problem of impregnation of the whole fabric with stabilizing or filling materials to enable cutting to a desired pattern.
  • all strips, sleeves/pipes, sheets, ropes and threads are assembled into a desired stable shape prior to the heating element manufacturing.
  • a sixth objective of the invention is to provide a temperature self-limiting properties to the heating element core if dictated by the heater design thereby eliminating a need for thermostats.
  • the positive temperature coefficient (PTC) material is utilized in the selected areas of the heating element core.
  • the present invention comprises a heating element containing soft, strong and light electrically conductive threads/yarns acting as conducting media.
  • the heating element is also highly resistant to punctures, cuts, small perforations, sharp folding and crushing. It can be manufactured in various shapes and sizes, and it can be designed for a wide range of parameters, such as input voltage, desired temperature range, desired power density, type of current (AC and DC) and method of electrical connection (parallel and in series).
  • a heating element preferably consists of non-conductive fibers/yarns and electrically conductive metal or carbon containing threads/yarns woven into, embroidered on, laminated between or stranded into strips, ropes, sleeves/pipes, sheets or strands of threads.
  • the selected areas of the heating element core may contain highly conductive metal coated threads to provide redundant circuits in the heater.
  • the heating element core may include a positive temperature coefficient (PTC) material to impart temperature self-limiting properties.
  • PTC positive temperature coefficient
  • the heating element core is shaped by folding or assembling of said conductive media into a predetermined pattern.
  • the electrodes are attached to said heating element core and are electrically connected in parallel or in series.
  • the soft heating element core is sealed to form an assembly containing at least one electrically insulating layer which envelops each strip, rope, sleeve/pipe, sheet or strand of threads.
  • FIG. 1 shows a plan view of the heating element core electrically connected in series according to the preferred embodiment of the present invention
  • FIG. 2 shows a plan view of the heating element core connected in parallel, utilizing multi-level power output heating circuit design and optional local area treatments.
  • FIG. 3 shows a plan view of the heating element core, connected in parallel and consisting of various electroconductive threads woven into, laminated between or embroidered on an electrically non-conductive substrate.
  • Optional local area treatments and positive temperature coefficient (PTC) material may be utilized in this embodiment.
  • FIG. 4 shows a plan view of a temperature sensing device designed to limit a number of thermostats in a heating element and to afford a more convenient location for the remaining thermostats.
  • FIG. 5 shows a plan view of a heating element utilizing conductive textile and positive temperature coefficient (PTC) material to create a wide, PTC controlled, heating circuit. This heater offers a combination heating regimes.
  • PTC positive temperature coefficient
  • FIG. 6 shows an isometric view of a tooth connector utilized to attach conductive textile thread, bundle, strand or rope heating cable to a power lead or another heating cable.
  • FIG. 7 shows an isometric view of several embodiments of heating sleeves, utilizing heating elements.
  • FIG. 8 shows a plan view of an infra red glowing embroidered insignia, designed to be visible through the night vision devices.
  • FIG. 9 shows a plan view of a strip heating element installed in window blind vanes to heat the surrounding air.
  • the invention consists of a soft heating element core made by interconnecting of one or more of the following conductive threads with non-conductive fibers: metal fiber containing, metal coated or carbon containing threads/yarns. Said core is assembled as strips, sleeves, pipes, sheets and ropes. It may also take a form of a strand of threads.
  • the heating element core may, along with electrically conducting metal fiber, metal coated and/or carbon containing threads, contain electrically non-conducting yarns/fibers in various proportion and/or weaving patterns in order to augment its electrical resistance.
  • the term “thread” shall mean stitching thread, knitting thread, weaving thread, yarn and other structures, composed of individual fibers or a combination of fibers where each individual fiber has a diameter small enough to make it as soft, flexible and pliable as a synthetic polymer fiber, such as polyester or nylon. It shall be also clearly understood that the term “metal fiber” is not the same as and is not interchangeable with the term “metal wire”, the fiber being considerably thinner than the wire.
  • the heating element core described in this invention may comprise one of the following threads or their combination:
  • Carbon coated inorganic threads made of ceramic or fiberglass fibers with similar or varying electrical characteristics.
  • Threads including metal fibers.
  • Threads as indicated in 1 through 5 above, with addition of nonconductive polymer synthetic fibers.
  • Threads as indicated in 1 through 5 above, with addition of nonconductive inorganic, including fiberglass, fibers.
  • Threads as indicated in 1 through 7 above with addition of carbon/graphite threads.
  • the non-conductive material of the heating element core may be in a form of weaving yarns.
  • the non-conductive material may be in a form of woven or non-woven synthetic polymer or inorganic fibers/textile.
  • the synthetic polymer may also be in a form of thin thermoplastic sheets, such as polyvinyl chloride (PVC), silicon rubber, polyethylene, polypropylene, polyurethane, etc.
  • the laminating of the conductive threads to the non-conductive substrate may be achieved by placing the threads between at least two layers of non-conductive material and subsequent thermal fusing of the sandwich assembly. It is also possible to utilize adhesive to laminate conductive and nonconductive threads to the insulating sleeve, sheet or strip, made of textile or thermoplastic.
  • the metal coated threads described below in this invention may comprise soft and highly electrically conductive metals such as silver, gold, copper, tin, nickel, zinc, their alloys or multi-layer combination. Such metal coatings may be applied on carbon/graphite, polymer, fiberglass or ceramic threads by sputtering, electroplating, electroless deposition or other appropriate techniques.
  • the metal fiber containing threads described in this invention comprise the following metals or their combination: tungsten, nickel, chromium, iron.
  • the individual metal fibers within the threads have small enough thickness to make the threads as soft and flexible as those made of polymer textile materials, such as polyester or nylon.
  • conductive ink described below in this invention shall mean conductive ink, paint or adhesive made of electroconductive media, such as carbon, graphite or metal particles/fibers dispersed in a solution of nonconductive organic stabilizer.
  • carbon containing threads described below in this invention shall mean carbon/graphite threads or threads coated with carbon or carbon/graphite containing material.
  • conductive textile described below in this invention shall mean soft electrically conductive substrate comprising conductive threads and non-conductive materials such as woven or non-woven textile or thin thermoplastic.
  • FIG. 1 shows an example embodiment of electroconductive heating element core ( 1 ) in a form of a strip, folded so as to form gaps for subsequent sealing, and patterned as dictated by the heating element design.
  • the conductive strip of the heating element core ( 1 ) consists of electroconductive threads ( 2 ), disposed longitudinally in a strip so as to be separated by nonconductive material. Such placement is achieved through weaving, embroidering or laminating of individual threads between at least two layers of insulating material.
  • Portions of the heating element core ( 1 ) may contain localized treatment in order to augment the electrical properties of the finished product, such localized treatment is performed by at least one of the following methods: (a) the use of electroconductive carbon or graphite carrying material ( 6 ); (b) the use of positive temperature coefficient (PTC) material ( 7 ); (c) the use of highly conductive bridging threads ( 5 ) in order to create redundant electrical circuits.
  • localized treatment is performed by at least one of the following methods: (a) the use of electroconductive carbon or graphite carrying material ( 6 ); (b) the use of positive temperature coefficient (PTC) material ( 7 ); (c) the use of highly conductive bridging threads ( 5 ) in order to create redundant electrical circuits.
  • At least one temperature control device such as thermostat, is placed within the plane of the heating element.
  • the bends and folds along the length of the heating element core may be secured by at least one of the following shape holding means: (a) sewing with electroconductive threads, preferably metal coated threads, (b) sewing with nonconductive threads; (c) stapling; (d) gluing; (e) riveting; (f) fusing or sealing by breathable or hermetic insulating material ( 8 ).
  • the heating element core is energized through a power cord ( 3 ), which is connected to the heating element with metal electrodes ( 4 ).
  • the electrodes are flexible and have a flat shape with large contact area. It is also preferable to use conductive textile electrodes comprising copper wires and carbon yarns or electrodes, embroidered to the ends of the heating element core by highly conductive threads.
  • the electrodes may be attached to the ends of the heating element core by sewing, stapling, riveting or using of a toothed connector.
  • the power cord has the following attachments: (a) electric plug ( 11 ), (b) optional power control device ( 10 ), which may include one, some or all of the following: AC to DC converter, transformer, power level regulator, on/off switch.
  • the heating element assembly process utilizes the following operations in any sequence:
  • heat reflecting layer on one side of the insulated heating element core if dictated by the heating element design; such heat reflecting layer may be an aluminum foil or a metallized polymer, electrically insulated from the electroconductive heating element components.
  • FIG. 2 shows an example of the heating element core ( 1 ) in a form of strips, folded and disposed between the electrical bus electrodes ( 9 ), the strips having a straight run and being attached to the parallel bus electrodes by stitching, stapling or riveting.
  • the run of the zigzag, the distance between the peaks, may vary even in the same heating element, thereby varying the finished element temperature density as may be dictated by the heating element design.
  • the length of heating element strip ( 1 ) between the bus electrodes may be shaped in a zigzag or other pattern instead of being straight. This enables a variation of the heating element resistance without varying the heating element core material.
  • the heating element can also consist of separate parallel conductive strips electrically connected to the bus conductors. All strips in this embodiment are disposed in such manner as to create gaps between the adjacent strips in order to provide tight hermetic sealing and/or shape holding during insulation by the nonconductive material. The strips are tightly connected with bus conductors ( 9 ) by stitching ( 16 ), stapling or riveting.
  • a heating element of this design may contain optional localized treatment in order to augment the electrical properties of the finished product, such localized treatment may be one of the following methods: (a) the use of electroconductive carbon or graphite carrying material, (b) the use of positive temperature coefficient (PTC) material ( 7 ), (c) the use of bridging electroconductive threads ( 5 ), such as metal coated threads, in order to create redundant electrical circuits.
  • PTC positive temperature coefficient
  • a novel method of controlling power output is utilized in this embodiment.
  • the power output can be varied by a factor of 4, at the same time, requiring 4 times fewer conductive threads. This provides a double benefit of a more versatile heater at a lesser cost.
  • This heater has two working regimes, high power output and low power output.
  • the middle bus electrode In the low power output regime, the middle bus electrode is not energized and has no function other than a circuit bridge, providing redundancy in the path of electrical current.
  • the outer electrodes In the high power output regime, utilizing direct current, when the middle bus electrode is energized, the outer electrodes are switched to be fed by one power lead, with polarity, opposite to that of the middle bus electrode. When alternating current is utilized, polarity does not matter, however power supply circuit is identical to that of a direct current circuit-the middle bus electrode is fed by one power lead and the outer electrodes are fed by another.
  • FIG. 3 shows an example of heater utilizing various conductive threads ( 2 ), such as metal coated synthetic polymer or inorganic threads, carbon coated inorganic threads, threads impregnated with conductive ink, and/or other types of conductive threads woven into, laminated between or embroidered on a non-conductive substrate ( 14 ) in any pattern as may be dictated by the heating element design.
  • the non-conductive substrate ( 14 ) for embroidering or laminating may be made of woven or non-woven textile, vinyl sheet, silicon rubber, polyethylene or polyurethane sheet or any other synthetic material.
  • This example of heating element contains optional localized treated areas in order to augment the electrical characteristics of the heater.
  • These localized treated areas may consist of electrical circuit bridging threads ( 5 ), positive temperature coefficient (PTC) materials ( 7 ), and cut out areas ( 15 ).
  • the cut out areas ( 15 ) are only one embodiment of gaps, necessary for sealing and/or fusing the outer insulation layer(s).
  • the other embodiments of gaps may be areas of non-conductive material between conductive threads.
  • the optional PTC material may be located in the middle of the heating element between the bus electrode conductors ( 9 ), as shown in FIG. 3, near at least one bus electrode conductor or combined with at least one of the bus electrode conductors as its integral component.
  • the heater is energized by power cord ( 3 ), equipped with electric power level controller ( 10 ) and a plug ( 11 ). It is important to note that embroidering of a heating element circuit provides for virtually unlimited flexibility of design and is a novel and unique approach in making of heating elements. Embroidering on or laminating of the conductive threads between the nonconductive materials allows to reduce the weight and cost of the heating element.
  • a FIG. 4 shows a novel temperature sensing device ( 13 ), which senses a localized temperature change and, being highly thermoconductive, delivers heat to a thermostat ( 12 ) from different heating areas. This enables placement of thermostats in the least objectionable locations.
  • thermostats may be located at the power cord attachment location and/or at the edges of an appliance. Utilizing this device may also reduce the number of necessary thermostats.
  • the device consists of a highly thermoconductive strip or threads disposed across the heating element core and preferably insulated from one side to prevent the dissipation of heat. One end of the thermoconductive strip or bundle of threads is attached to or wound around a thermostat so as to enable its quick activation in case of overheating of the heating element assembly.
  • the thermoconductive sensor may also be in a form of a patch placed on top or under a thermostat and having an area considerably larger than the thermostat.
  • FIG. 5 shows a heating element, which utilizes known positive coefficient (PTC) technology with conductive textile technology, creating a novel and synergetic effect. It enables creation of a wide, PTC controlled, heating circuit through energizing busses (A) and (C), and narrow, PTC controlled, heating circuit through energizing busses (A) and (B), all in one heater.
  • PTC positive coefficient
  • This embodiment also allows for a heating surface with temperature limits above those of PTC, when energized through busses (B) and (C). Numerous combinations or sequence of bus electrodes ( 9 ), PTC material ( 7 ) and conductive textile ( 1 ) are possible, depending on the end use requirements.
  • FIG. 6 shows an example of embodiment of heating element core ( 1 ) in a form of a thread, bundle of threads, or a rope.
  • the heating element core covered by insulating layer ( 8 ), is energized through a power cord, which is connected to the heating element with pressure connector ( 4 ).
  • the tight connection to the heating cable is achieved through insertion of the tooth connector ( 17 ) into a transverse cut in the heating cable and subsequent tight squeezing of the pressure connector shell around the tooth ( 17 ).
  • This heating element core may also be utilized in a flat heater by laying it out in a pattern dictated by the heating element design on a shape holding and/or insulating substrate so as to form gaps for subsequent sealing by the shape holding/insulating material.
  • FIG. 7 shows example of tubular heating elements intended for heating of pipes or as heating sleeves for various heating purposes, including health and industrial applications.
  • FIG. 7(A) shows a heating sleeve with bus electrodes ( 4 ) located at the ends and the resistance threads ( 2 ) connected to the busses in parallel.
  • Optional circuit bridging threads ( 5 ) may be utilized to provide electrical continuity and continued heating capability in case of localized damage to a limited number of heating threads ( 2 ).
  • This type of heating element may be utilized when the length and the power output of a heater are known fixed quantities.
  • FIG. 7(B) For the variable length heating elements an embodiment shown in FIG. 7(B) is more suitable.
  • This embodiment shows a heating element with bus electrodes ( 9 ) placed longitudinally, extending full length of the heating element.
  • the resistance threads ( 2 ) are connected to the busses in parallel.
  • Optional circuit bridging threads ( 5 ) may be utilized to provide electrical continuity in case of localized damage to a limited number of heating threads ( 2 ).
  • FIG. 7(C) shows a variation of the heating element shown in FIG. 7(B) utilizing optional PTC material in order to control localized overheating and forgo the use of thermostat.
  • FIG. 8 shows an embodiment of a heating element utilizing electroconductive threads ( 2 ) to embroider a desired pattern or design on an electrically non-conductive substrate ( 8 ).
  • FIG. 9 shows an embodiment of a heated window blinds vane. It utilizes conductive textile strips ( 1 ) held in a desired shape and insulated by fusible interfacing ( 8 ). The finished heating element is then installed into a fabric or plastic window blinds vane. The conductive strip is connected through power leads ( 3 ), to a power source located in the window blinds track.
  • a similar design may be utilized in ceiling fan blades in order to heat circulated air or to provide localized comfort heating in modular office partitions/dividers
  • the proposed soft heating elements may be utilized in a variety of commercial and industrial heater applications, utilizing direct or alternating current.
  • the main advantage of the heating elements is the high reliability, which is provided by the tightly sealed soft and durable electrically conductive threads.
  • the process of manufacturing of the insulated heating elements can be fully automated, it utilizes commercially available nontoxic, nonvolatile and inexpensive products. Some designs of the insulated heating core may be manufactured in rolls or spools with subsequent cutting to desired sizes and further attachment of electric power cords and optional power control devices.
  • the softness and the low temperature density of the conductive heating elements of the invention enable its utilization in novel and unique applications.
  • One of such applications is a heat/cool pad for therapeutic use.
  • This pad combines a surface heating element, a heat/cold conserving gel, and a refrigeration circuit placed inside or close to the gel pouch.
  • This design enables an alternating heat and cold application with the same device.
  • the variation of such gel pouch design may include a heat function only.
  • the uses of such gel containing devices are very versatile and may include child car seat/carrier heater, food warmer/cooler, comfort heating and cooling pads, and other devices.
  • the heating element core offers versatility of variation of the electrical conductivity of the heating element core owing to: (a) weaving, embroidering or stranding of the electrically conductive threads to the predetermined width and thickness of the strips, sleeves, sheets, ropes or strands of threads; (b) weaving of the yarns to the predetermined density or type of weaving; (c) weaving, embroidering or stranding of the conductive threads having different electrical conductivity in one unit; (d) weaving, embroidering or stranding of the conductive threads with nonconductive ceramic and/or polymer threads or fibers. (e) making cut outs of different shapes to vary the electrical resistance of the heating element core.
  • heating element with electrical connection of electrically conductive strips, ropes, sheets, sleeves/pipes or strands in parallel or in series;
  • a combination of the electrically conductive threads and PTC material allows to: (a) provide temperature self-limiting properties to the soft heating appliances, eliminating need for thermostats; (b) increase the distance between the bus electrodes, decreasing the risk of short circuit between said bus electrodes; (c) provide larger heat radiating area resulting in higher efficiency of the heater; (d) provide a barrier for liquid penetration to the parallel bus conductors in the event of puncturing the insulated heating element core.
  • the proposed heating elements can be utilized in, but not limited to: (a) electrically heated blankets, pads, mattresses, spread sheets and carpets; (b) wall, office dividers, window blind vanes, fan blades, furniture, ceiling and floor electric heaters; (c) vehicle, scooter, motorcycle, boat and aircraft seat heaters; (d) electrically heated safety vests, garments, boots, gloves, hats and scuba diving suits; (e) food (Example:-pizza) delivery and sleeping bags; (f) refrigerator, road, roof and aircraft/helicopter wing/blade deicing systems, (g) pipe line, drum and tank electrical heaters, (h) electrical furnace igniters, etc.
  • the same conductive textile heating element core may be utilized for an anti static protection.
  • heating element core may include yarns made of ceramic fibers, such as alumina, silica, boria, boron nitride, zirconia, chromia, magnesium, calcia, silicon carbide or combination thereof;
  • heating element core may comprise electrically conductive carbon/graphite or metal coated ceramic fibers, such as alumina, silica, boria, zirconia, chromia, magnesium, calcia, silicon carbide or combination thereof;
  • the metal coating can be applied on carbon/graphite threads/yarns;
  • the conductive carbon coated ceramic may take a form of conductive carbide coating due to the reaction between the carbon and ceramic base during high temperature deposition;
  • the heating element assembly may comprise the conductive
  • the conductive heating element core can be electrically insulated by the soft non-conductive fabrics or polymers by sewing, gluing, fusing, spraying, etc., forming a soft multi-layer assembly;
  • the conductive soft heating element core can be electrically insulated by rigid non-conductive materials like ceramics, concrete, thick plastic, wood, etc.;
  • the shape holding means can be applied on any part of the heating element core;
  • the heating element core may be first insulated by the non-conductive material and then laid out in a desired pattern.

Abstract

A soft heater utilizing metal, carbon or conductive ink coated threads, embroidered on, laminated between or woven into a nonconductive substrate to form electrical heating circuits. The heating element may be manufactured in a form of strip, sheet, sleeve or strand of threads for incorporation into plurality of articles. The soft heating element core may contain localized treatment such as positive temperature coefficient (PTC) material for temperature self-limiting control. The electrode conductors are attached to said heating element core which is connected in parallel or in series. The heating element core is shaped in a desired pattern. The whole assembly is sealed by at least one electrically insulated layer which envelopes the strips, sheets, sleeves, ropes or strands of threads.

Description

    BACKGROUND OF INVENTION
  • 1. Field of Invention [0001]
  • This invention relates to soft electrical heaters, and particularly to heating elements, which have a soft and strong metal or carbon containing electrically conductive core. [0002]
  • 2. Description of the Prior Art [0003]
  • Heating elements have extremely wide applications in household items, construction, industrial processes, etc. Their physical characteristics, such as thickness, shape, size, strength, flexibility and other characteristics affect their usability in various applications. [0004]
  • Numerous types of thin and flexible heating elements have been proposed, for example U.S. Pat. No. 4,764,665 to Orban et al. This patent discloses an electrically heated fabric for use in gloves, airfoils and aircraft parts. In this patent the fabric is metallized after being formed in a glove structure, following weaving or arranging in a non-woven format. Copper bus bars are utilized for introduction of electrical current to the metallized textile. Having been made of a solid piece of fabric with metallized coating, this heating element doesn't allow for flexibility in selection of desired power density. The metallizing of the formed heating element results in a loss of significant economies of scale, only a small number of embodiments can be achieved, thus severely limiting the potential application of this invention. The '665 design is also not conducive to tight hermetic sealing through the heater areas (no gaps inside), which can cause a short circuit through puncture and admission of liquid into the body of heating element. This element can't be used with higher temperatures due to the damage that would be caused to the polyaramid, polyester or cotton metallized fabric, described in the invention. [0005]
  • Another prior art example is U.S. Pat. No. 4,713,531 to Fennekels et al. Fennekels et al. discloses a sheet textile structure combined with resistance elements. These resistance elements comprise metallic fibers or filaments with a denier like that of natural or synthetic textile fibers, and with overall cross sectional thickness of 8 to 24 microns. The >531 design suffers from the following drawbacks: being a sheet product, it is not conducive to hermetic sealing through the body of the heater (no gaps inside), only perimeter sealing is possible, which can result in a short circuit due to puncture and admission of liquid into the body of the heating element; yarns are very heavy: from 1 to 7 grams per 1 meter of yarn; the use of silver fibers makes these yarns very expensive; individual conductors have a large cross sectional thickness, each having a outer sheath of braided textile or elastomer. [0006]
  • Another prior art example is U.S. Pat. No. 4,538,054 to de la Bretoniere. The heating element of de la Bretoniere '054 suffers from the following drawbacks: its manufacturing is complex requiring weaving of metal or carbon fibers into non-conductive fabric in a strictly controlled pattern; the use of the metal wire can result in breakage due to folding and crushing and it affects softness, weight and flexibility of the finished heater; it can not be manufactured in various shapes, only a rectangular shape is available; only perimeter sealing is possible (no gaps inside), which can result in a short circuit due to puncture and admission of a liquid into the body of the heating element; the method of interweaving of wires and fibers does not result in a strong heating element, the individual wires can easily shift adversely affecting the heater durability; the fabric base of the heating element is flammable and may ignite as a result of a short circuit; it is not suitable for high temperature applications due to destruction of the insulating weaving fibers at temperatures exceeding 120° C. [0007]
  • U.S. Pat. No. 4,149,066 to Niibe at. al. describes a sheet-like thin flexible heater made with an electro-conductive paint on a sheet of fabric. This method has the following disadvantages: the paint has a cracking potential as a result of sharp folding, crushing or punching; the element is hermetically sealed only around its perimeter, therefore lacking adequate wear and moisture resistance; such an element can't be used with high temperatures due to destruction of the underlying fabric and thermal decomposition of the polymerized binder in the paint; the assembly has 7 layers resulting in loss of flexibility and lack of softness. [0008]
  • Another prior art example is U.S. Pat. No. 4,309,596 to George C. Crowley, describing a flexible self-limiting heating cable, which comprises two conductor wires separated by a positive temperature coefficient (PTC) material. Said heating wires are disposed on strands of nonconductive fibers coated with conductive carbon. This method has the following disadvantages: (a) the wires are enveloped and separated by the tough PTC material which thickens and hardens the heating element (b) the distance between the wires is very limited, due to a nature of the PTC material having a high electrical resistance, this prevents manufacturing of heaters with large heat radiating surface; (c) the heater is limited only to one predetermined highest temperature level, therefore, this heating device is unable to bypass said temperature level when a quick heating at the highest temperature is needed. [0009]
  • The present invention seeks to alleviate the drawbacks of the prior art and describes the fabrication of heating element comprising metal fiber containing, metal coated, carbon containing or carbon coated textile threads, which is economical to manufacture; does not pose environmental hazards; results in a soft, flexible, strong, thin, and light heating element core, suitable for even small and complex assemblies, such as hardware. A significant advantage of the proposed invention is that it provides for fabrication of heating elements of various shapes and sizes, with predetermined electrical characteristics; allows for a durable heater, resistant to kinks and abrasion, and whose electro-physical properties are unaffected by application of pressure, sharp folding, small perforations, punctures and crushing. [0010]
  • SUMMARY OF THE INVENTION
  • The first objective of the invention is to provide a significantly safe and reliable heating element which can function properly after it has been subjected to sharp folding, kinks, small perforations, punctures or crushing, thereby solving problems associated with conventional flexible heating metal wires. In order to achieve the first objective, the electric heating element of the present invention is comprised of electrically conductive threads coated with metal, carbon, conductive ink, or their combination which possess the following characteristics: (a) high strength; (b) high strength-to-weight ratio; (c) very low coefficient of thermal expansion; (d) softness. The heating element core described in this invention is comprised of electrically conductive strips, sleeves, sheets, ropes, or strands of threads/fibers, which radiate a controlled heat over the entire heating core surface. [0011]
  • A second objective of the invention is to provide maximum flexibility and softness of the heating element. In order to achieve the second objective, the electric heating element of the invention contains thin (0.01 to 3.0 mm, but preferably within the range of 0.05-1.0 mm) threads, which are woven into, embroidered on, or stranded into continuous or electrically connected strips, sleeves/pipes, ropes, sheets, or bundles, then arranged and insulated to have gaps between the electrically conductive media. It is preferable that all insulation components of the heating element assembly are thin, soft and flexible materials. [0012]
  • A third objective of the invention is to provide for the uniform distribution of heat, without overheating and hot spots, thereby solving the problem of overinsulation and energy efficiency. In order to achieve this objective, (a) conductive threads in the heating elements are separated by non-conductive fibers yarns or polymers, (b) one side of the heating element may include a metallic foil or a metallized material to provide uniform heat distribution and heat reflection. It is also preferable that the soft heating elements of the invention are made without thick cushioning insulation, which slows down the heat delivery to the surface of the heating apparatus. [0013]
  • A forth objective of the invention is to provide for ease in the variation of heating power density, thereby solving a problem of manufacturing various heating devices with different electric power density requirements. In order to achieve the forth objective, the conductive threads/yarns in the heating element core are embroidered on, laminated between or woven into strips, ropes, sleeves/pipes, sheets, or stranded into bundles with predetermined width, density (of embroidering or weaving) and thickness. It is preferable that the strips, sleeves/pipes, sheets, ropes or strands are made of combination of threads/yarns with different electrical resistance and/or include electrically nonconductive high strength polymer or inorganic (such as refractory ceramic or fiberglass) fibers. [0014]
  • A fifth objective of the invention is to provide for ease in manufacturing of the heating element core, thereby eliminating a problem of impregnation of the whole fabric with stabilizing or filling materials to enable cutting to a desired pattern. In order to achieve the fifth objective, all strips, sleeves/pipes, sheets, ropes and threads are assembled into a desired stable shape prior to the heating element manufacturing. [0015]
  • A sixth objective of the invention is to provide a temperature self-limiting properties to the heating element core if dictated by the heater design thereby eliminating a need for thermostats. In order to achieve the sixth objective, the positive temperature coefficient (PTC) material is utilized in the selected areas of the heating element core. [0016]
  • The present invention comprises a heating element containing soft, strong and light electrically conductive threads/yarns acting as conducting media. The heating element is also highly resistant to punctures, cuts, small perforations, sharp folding and crushing. It can be manufactured in various shapes and sizes, and it can be designed for a wide range of parameters, such as input voltage, desired temperature range, desired power density, type of current (AC and DC) and method of electrical connection (parallel and in series). A heating element preferably consists of non-conductive fibers/yarns and electrically conductive metal or carbon containing threads/yarns woven into, embroidered on, laminated between or stranded into strips, ropes, sleeves/pipes, sheets or strands of threads. [0017]
  • The selected areas of the heating element core may contain highly conductive metal coated threads to provide redundant circuits in the heater. The heating element core may include a positive temperature coefficient (PTC) material to impart temperature self-limiting properties. The heating element core is shaped by folding or assembling of said conductive media into a predetermined pattern. The electrodes are attached to said heating element core and are electrically connected in parallel or in series. The soft heating element core is sealed to form an assembly containing at least one electrically insulating layer which envelops each strip, rope, sleeve/pipe, sheet or strand of threads. [0018]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 shows a plan view of the heating element core electrically connected in series according to the preferred embodiment of the present invention; [0019]
  • FIG. 2 shows a plan view of the heating element core connected in parallel, utilizing multi-level power output heating circuit design and optional local area treatments. [0020]
  • FIG. 3 shows a plan view of the heating element core, connected in parallel and consisting of various electroconductive threads woven into, laminated between or embroidered on an electrically non-conductive substrate. Optional local area treatments and positive temperature coefficient (PTC) material may be utilized in this embodiment. [0021]
  • FIG. 4 shows a plan view of a temperature sensing device designed to limit a number of thermostats in a heating element and to afford a more convenient location for the remaining thermostats. [0022]
  • FIG. 5 shows a plan view of a heating element utilizing conductive textile and positive temperature coefficient (PTC) material to create a wide, PTC controlled, heating circuit. This heater offers a combination heating regimes. [0023]
  • FIG. 6 shows an isometric view of a tooth connector utilized to attach conductive textile thread, bundle, strand or rope heating cable to a power lead or another heating cable. [0024]
  • FIG. 7 shows an isometric view of several embodiments of heating sleeves, utilizing heating elements. [0025]
  • FIG. 8 shows a plan view of an infra red glowing embroidered insignia, designed to be visible through the night vision devices. [0026]
  • FIG. 9 shows a plan view of a strip heating element installed in window blind vanes to heat the surrounding air. [0027]
  • DETAILED DESCRIPTION OF THE INVENTION
  • The invention consists of a soft heating element core made by interconnecting of one or more of the following conductive threads with non-conductive fibers: metal fiber containing, metal coated or carbon containing threads/yarns. Said core is assembled as strips, sleeves, pipes, sheets and ropes. It may also take a form of a strand of threads. The heating element core may, along with electrically conducting metal fiber, metal coated and/or carbon containing threads, contain electrically non-conducting yarns/fibers in various proportion and/or weaving patterns in order to augment its electrical resistance. [0028]
  • For convenience of explanation of the invention, the term “thread” shall mean stitching thread, knitting thread, weaving thread, yarn and other structures, composed of individual fibers or a combination of fibers where each individual fiber has a diameter small enough to make it as soft, flexible and pliable as a synthetic polymer fiber, such as polyester or nylon. It shall be also clearly understood that the term “metal fiber” is not the same as and is not interchangeable with the term “metal wire”, the fiber being considerably thinner than the wire. [0029]
  • The heating element core described in this invention may comprise one of the following threads or their combination: [0030]
  • 1. Metal coated synthetic polymer threads with similar or varying electrical characteristics. [0031]
  • 2. Metal coated inorganic threads (made of ceramic or fiberglass fibers) with similar or varying electrical characteristics. [0032]
  • 3. Carbon coated inorganic threads (made of ceramic or fiberglass fibers) with similar or varying electrical characteristics. [0033]
  • 4. Threads impregnated with conductive ink with similar or varying electrical characteristics. [0034]
  • 5. Threads, including metal fibers. [0035]
  • 6. Threads, as indicated in 1 through 5 above, with addition of nonconductive polymer synthetic fibers. [0036]
  • 7. Threads, as indicated in 1 through 5 above, with addition of nonconductive inorganic, including fiberglass, fibers. [0037]
  • 8. Threads, as indicated in 1 through 7 above with addition of carbon/graphite threads. [0038]
  • The non-conductive material of the heating element core may be in a form of weaving yarns. In a case of an embroidered heating element and/or element made by laminating of conductive threads onto or between at least two layers of insulator, the non-conductive material may be in a form of woven or non-woven synthetic polymer or inorganic fibers/textile. The synthetic polymer may also be in a form of thin thermoplastic sheets, such as polyvinyl chloride (PVC), silicon rubber, polyethylene, polypropylene, polyurethane, etc. [0039]
  • The laminating of the conductive threads to the non-conductive substrate may be achieved by placing the threads between at least two layers of non-conductive material and subsequent thermal fusing of the sandwich assembly. It is also possible to utilize adhesive to laminate conductive and nonconductive threads to the insulating sleeve, sheet or strip, made of textile or thermoplastic. [0040]
  • The metal coated threads described below in this invention may comprise soft and highly electrically conductive metals such as silver, gold, copper, tin, nickel, zinc, their alloys or multi-layer combination. Such metal coatings may be applied on carbon/graphite, polymer, fiberglass or ceramic threads by sputtering, electroplating, electroless deposition or other appropriate techniques. [0041]
  • The metal fiber containing threads described in this invention comprise the following metals or their combination: tungsten, nickel, chromium, iron. The individual metal fibers within the threads have small enough thickness to make the threads as soft and flexible as those made of polymer textile materials, such as polyester or nylon. [0042]
  • The term “conductive ink” described below in this invention shall mean conductive ink, paint or adhesive made of electroconductive media, such as carbon, graphite or metal particles/fibers dispersed in a solution of nonconductive organic stabilizer. [0043]
  • The term “carbon containing threads” described below in this invention shall mean carbon/graphite threads or threads coated with carbon or carbon/graphite containing material. [0044]
  • The term “conductive textile” described below in this invention shall mean soft electrically conductive substrate comprising conductive threads and non-conductive materials such as woven or non-woven textile or thin thermoplastic. [0045]
  • FIG. 1 shows an example embodiment of electroconductive heating element core ([0046] 1) in a form of a strip, folded so as to form gaps for subsequent sealing, and patterned as dictated by the heating element design. The conductive strip of the heating element core (1) consists of electroconductive threads (2), disposed longitudinally in a strip so as to be separated by nonconductive material. Such placement is achieved through weaving, embroidering or laminating of individual threads between at least two layers of insulating material.
  • Portions of the heating element core ([0047] 1) may contain localized treatment in order to augment the electrical properties of the finished product, such localized treatment is performed by at least one of the following methods: (a) the use of electroconductive carbon or graphite carrying material (6); (b) the use of positive temperature coefficient (PTC) material (7); (c) the use of highly conductive bridging threads (5) in order to create redundant electrical circuits.
  • In order to control overheating, at least one temperature control device ([0048] 12), such as thermostat, is placed within the plane of the heating element. The bends and folds along the length of the heating element core may be secured by at least one of the following shape holding means: (a) sewing with electroconductive threads, preferably metal coated threads, (b) sewing with nonconductive threads; (c) stapling; (d) gluing; (e) riveting; (f) fusing or sealing by breathable or hermetic insulating material (8).
  • The heating element core is energized through a power cord ([0049] 3), which is connected to the heating element with metal electrodes (4). The electrodes are flexible and have a flat shape with large contact area. It is also preferable to use conductive textile electrodes comprising copper wires and carbon yarns or electrodes, embroidered to the ends of the heating element core by highly conductive threads. The electrodes may be attached to the ends of the heating element core by sewing, stapling, riveting or using of a toothed connector.
  • In addition to the electrodes, the power cord has the following attachments: (a) electric plug ([0050] 11), (b) optional power control device (10), which may include one, some or all of the following: AC to DC converter, transformer, power level regulator, on/off switch.
  • Depending on the end use of the heating elements, the heating element assembly process utilizes the following operations in any sequence: [0051]
  • (a) folding and shaping the heating element core into a predetermined shape, [0052]
  • (b) attachment or embroidering of the electrodes to the heating element core, [0053]
  • (c) attachment of lead wires, optional thermostat(s) and the power cord to the heating element core, [0054]
  • (d) lamination of the heating element core with the insulating material, [0055]
  • (e) securing the pattern of the heating element assembly by the shape holding means. [0056]
  • It is preferable to utilize a heat reflecting layer on one side of the insulated heating element core if dictated by the heating element design; such heat reflecting layer may be an aluminum foil or a metallized polymer, electrically insulated from the electroconductive heating element components. [0057]
  • FIG. 2 shows an example of the heating element core ([0058] 1) in a form of strips, folded and disposed between the electrical bus electrodes (9), the strips having a straight run and being attached to the parallel bus electrodes by stitching, stapling or riveting. The run of the zigzag, the distance between the peaks, may vary even in the same heating element, thereby varying the finished element temperature density as may be dictated by the heating element design. As a variation of this design, the length of heating element strip (1) between the bus electrodes may be shaped in a zigzag or other pattern instead of being straight. This enables a variation of the heating element resistance without varying the heating element core material. The heating element can also consist of separate parallel conductive strips electrically connected to the bus conductors. All strips in this embodiment are disposed in such manner as to create gaps between the adjacent strips in order to provide tight hermetic sealing and/or shape holding during insulation by the nonconductive material. The strips are tightly connected with bus conductors (9) by stitching (16), stapling or riveting.
  • A heating element of this design may contain optional localized treatment in order to augment the electrical properties of the finished product, such localized treatment may be one of the following methods: (a) the use of electroconductive carbon or graphite carrying material, (b) the use of positive temperature coefficient (PTC) material ([0059] 7), (c) the use of bridging electroconductive threads (5), such as metal coated threads, in order to create redundant electrical circuits.
  • A novel method of controlling power output is utilized in this embodiment. By using the third bus electrode, shown in the middle, the power output can be varied by a factor of 4, at the same time, requiring 4 times fewer conductive threads. This provides a double benefit of a more versatile heater at a lesser cost. This heater has two working regimes, high power output and low power output. [0060]
  • In the low power output regime, the middle bus electrode is not energized and has no function other than a circuit bridge, providing redundancy in the path of electrical current. In the high power output regime, utilizing direct current, when the middle bus electrode is energized, the outer electrodes are switched to be fed by one power lead, with polarity, opposite to that of the middle bus electrode. When alternating current is utilized, polarity does not matter, however power supply circuit is identical to that of a direct current circuit-the middle bus electrode is fed by one power lead and the outer electrodes are fed by another. [0061]
  • Energizing the middle bus electrode enables the heater strips to complete the circuits in half the distance, thereby reducing their resistance by one half. This creates two heating circuits, each putting twice the power of the single larger heating circuit. Therefore, the power output from the heating element increases 4 times. Other numerous variations of this design are possible, based on the desired function. [0062]
  • There are examples of prior art where attempts were made to vary temperature and power output within a single heating element, U.S. Pat. No. 4,250,397 to Gray at al, U.S. Pat. No. 3,739,142 to Johns, and U.S. Pat. No. 4,788,417 to Graflind. They all use layering of heating elements to enable power variability. This layering creates considerably heavier, less flexible and more expensive heaters. Additionally, because the temperature between layers is considerably higher than that felt on the outside of the heater, a localized overheating may occur, melting an insulating layer and causing short circuit and fire. [0063]
  • FIG. 3 shows an example of heater utilizing various conductive threads ([0064] 2), such as metal coated synthetic polymer or inorganic threads, carbon coated inorganic threads, threads impregnated with conductive ink, and/or other types of conductive threads woven into, laminated between or embroidered on a non-conductive substrate (14) in any pattern as may be dictated by the heating element design. The non-conductive substrate (14) for embroidering or laminating may be made of woven or non-woven textile, vinyl sheet, silicon rubber, polyethylene or polyurethane sheet or any other synthetic material. This example of heating element contains optional localized treated areas in order to augment the electrical characteristics of the heater. These localized treated areas may consist of electrical circuit bridging threads (5), positive temperature coefficient (PTC) materials (7), and cut out areas (15). The cut out areas (15) are only one embodiment of gaps, necessary for sealing and/or fusing the outer insulation layer(s). The other embodiments of gaps may be areas of non-conductive material between conductive threads.
  • The optional PTC material may be located in the middle of the heating element between the bus electrode conductors ([0065] 9), as shown in FIG. 3, near at least one bus electrode conductor or combined with at least one of the bus electrode conductors as its integral component.
  • The heater is energized by power cord ([0066] 3), equipped with electric power level controller (10) and a plug (11). It is important to note that embroidering of a heating element circuit provides for virtually unlimited flexibility of design and is a novel and unique approach in making of heating elements. Embroidering on or laminating of the conductive threads between the nonconductive materials allows to reduce the weight and cost of the heating element. A FIG. 4 shows a novel temperature sensing device (13), which senses a localized temperature change and, being highly thermoconductive, delivers heat to a thermostat (12) from different heating areas. This enables placement of thermostats in the least objectionable locations. For example, in the case of a heating pad, mattress pad or a heating blanket, thermostats may be located at the power cord attachment location and/or at the edges of an appliance. Utilizing this device may also reduce the number of necessary thermostats. The device consists of a highly thermoconductive strip or threads disposed across the heating element core and preferably insulated from one side to prevent the dissipation of heat. One end of the thermoconductive strip or bundle of threads is attached to or wound around a thermostat so as to enable its quick activation in case of overheating of the heating element assembly. The thermoconductive sensor may also be in a form of a patch placed on top or under a thermostat and having an area considerably larger than the thermostat.
  • FIG. 5 shows a heating element, which utilizes known positive coefficient (PTC) technology with conductive textile technology, creating a novel and synergetic effect. It enables creation of a wide, PTC controlled, heating circuit through energizing busses (A) and (C), and narrow, PTC controlled, heating circuit through energizing busses (A) and (B), all in one heater. [0067]
  • This embodiment also allows for a heating surface with temperature limits above those of PTC, when energized through busses (B) and (C). Numerous combinations or sequence of bus electrodes ([0068] 9), PTC material (7) and conductive textile (1) are possible, depending on the end use requirements.
  • FIG. 6 shows an example of embodiment of heating element core ([0069] 1) in a form of a thread, bundle of threads, or a rope. The heating element core, covered by insulating layer (8), is energized through a power cord, which is connected to the heating element with pressure connector (4). The tight connection to the heating cable is achieved through insertion of the tooth connector (17) into a transverse cut in the heating cable and subsequent tight squeezing of the pressure connector shell around the tooth (17).
  • This heating element core may also be utilized in a flat heater by laying it out in a pattern dictated by the heating element design on a shape holding and/or insulating substrate so as to form gaps for subsequent sealing by the shape holding/insulating material. [0070]
  • FIG. 7 shows example of tubular heating elements intended for heating of pipes or as heating sleeves for various heating purposes, including health and industrial applications. FIG. 7(A) shows a heating sleeve with bus electrodes ([0071] 4) located at the ends and the resistance threads (2) connected to the busses in parallel. Optional circuit bridging threads (5) may be utilized to provide electrical continuity and continued heating capability in case of localized damage to a limited number of heating threads (2). This type of heating element may be utilized when the length and the power output of a heater are known fixed quantities.
  • For the variable length heating elements an embodiment shown in FIG. 7(B) is more suitable. This embodiment shows a heating element with bus electrodes ([0072] 9) placed longitudinally, extending full length of the heating element. The resistance threads (2) are connected to the busses in parallel. Optional circuit bridging threads (5) may be utilized to provide electrical continuity in case of localized damage to a limited number of heating threads (2). FIG. 7(C) shows a variation of the heating element shown in FIG. 7(B) utilizing optional PTC material in order to control localized overheating and forgo the use of thermostat.
  • FIG. 8 shows an embodiment of a heating element utilizing electroconductive threads ([0073] 2) to embroider a desired pattern or design on an electrically non-conductive substrate (8).
  • One of the uses for this design is in military and/or law enforcement, where an identifying insignia can be embroidered on the personnel closing to enable easy identification in the darkness while using night vision scopes. Only a small power source ([0074] 18), sufficient to generate up to 0.1 Wt/inch2, will provide adequate heat to be clearly distinguishable through the night vision devices.
  • FIG. 9 shows an embodiment of a heated window blinds vane. It utilizes conductive textile strips ([0075] 1) held in a desired shape and insulated by fusible interfacing (8). The finished heating element is then installed into a fabric or plastic window blinds vane. The conductive strip is connected through power leads (3), to a power source located in the window blinds track. A similar design may be utilized in ceiling fan blades in order to heat circulated air or to provide localized comfort heating in modular office partitions/dividers
  • The proposed soft heating elements may be utilized in a variety of commercial and industrial heater applications, utilizing direct or alternating current. The main advantage of the heating elements is the high reliability, which is provided by the tightly sealed soft and durable electrically conductive threads. [0076]
  • The process of manufacturing of the insulated heating elements can be fully automated, it utilizes commercially available nontoxic, nonvolatile and inexpensive products. Some designs of the insulated heating core may be manufactured in rolls or spools with subsequent cutting to desired sizes and further attachment of electric power cords and optional power control devices. [0077]
  • The softness and the low temperature density of the conductive heating elements of the invention enable its utilization in novel and unique applications. One of such applications is a heat/cool pad for therapeutic use. This pad combines a surface heating element, a heat/cold conserving gel, and a refrigeration circuit placed inside or close to the gel pouch. This design enables an alternating heat and cold application with the same device. The variation of such gel pouch design may include a heat function only. The uses of such gel containing devices are very versatile and may include child car seat/carrier heater, food warmer/cooler, comfort heating and cooling pads, and other devices. [0078]
  • Further, the use of electrically conductive metal coated threads, metal fiber containing threads, carbon coated inorganic threads, threads impregnated with conductive ink, carbon/graphite yarns, non-conductive ceramic or polymer fibers in the heating element has the following additional advantages: [0079]
  • it enables manufacturing of thin, soft and uniformly heating devices without utilizing conventional metal heater wires; [0080]
  • it provides high durability of the heating appliances which can withstand sharp folding, small perforations, punctures and compression without decreasing of electrical operational capabilities; [0081]
  • it provides high tear and wear resistance owing to: (a) high strength of the conductive threads and (b) tight enveloping around all electrically conductive media with strong insulating materials; [0082]
  • it provides for manufacturing of corrosion and erosion resistant heating element owing to: (a) high chemical inertness of the carbon coated inorganic threads and ceramic yarns, (b) hermetic polymer insulation of the whole heating element, including electrode connections and temperature control devices, for utilization in chemically aggressive industrial or marine environments; [0083]
  • it offers versatility of variation of the electrical conductivity of the heating element core owing to: (a) weaving, embroidering or stranding of the electrically conductive threads to the predetermined width and thickness of the strips, sleeves, sheets, ropes or strands of threads; (b) weaving of the yarns to the predetermined density or type of weaving; (c) weaving, embroidering or stranding of the conductive threads having different electrical conductivity in one unit; (d) weaving, embroidering or stranding of the conductive threads with nonconductive ceramic and/or polymer threads or fibers. (e) making cut outs of different shapes to vary the electrical resistance of the heating element core. [0084]
  • it provides for saving of electric power consumption owing to: (a) installation of heat reflective layer and (b) possibility of placing the heating element with less cushioning and insulation closer to the human body or to the heated object; [0085]
  • it allows for manufacturing of heating element with electrical connection of electrically conductive strips, ropes, sheets, sleeves/pipes or strands in parallel or in series; [0086]
  • it overcomes the problem of overheated spots owing to (a) high heat radiating surface area of the heating element core, (b) uniform heat distribution by the heat reflective layer, reducing the possibility of skin burns or destruction of the insulating layers; [0087]
  • it provides for extremely low thermal expansion of the heating element owing to the nature of the electrically conductive threads, polymer or nonconductive yarns/fibers. This feature is extremely important for construction applications (Example:-concrete) or for multi-layer insulation with different thermal expansion properties; [0088]
  • it offers high degree of flexibility and/or softness of the heating appliances depending on the type and thickness of insulation; and [0089]
  • it provides technological simplicity of manufacturing and assembling of said heating element. [0090]
  • Further, a combination of the electrically conductive threads and PTC material allows to: (a) provide temperature self-limiting properties to the soft heating appliances, eliminating need for thermostats; (b) increase the distance between the bus electrodes, decreasing the risk of short circuit between said bus electrodes; (c) provide larger heat radiating area resulting in higher efficiency of the heater; (d) provide a barrier for liquid penetration to the parallel bus conductors in the event of puncturing the insulated heating element core. [0091]
  • Further, the proposed heating elements can be utilized in, but not limited to: (a) electrically heated blankets, pads, mattresses, spread sheets and carpets; (b) wall, office dividers, window blind vanes, fan blades, furniture, ceiling and floor electric heaters; (c) vehicle, scooter, motorcycle, boat and aircraft seat heaters; (d) electrically heated safety vests, garments, boots, gloves, hats and scuba diving suits; (e) food (Example:-pizza) delivery and sleeping bags; (f) refrigerator, road, roof and aircraft/helicopter wing/blade deicing systems, (g) pipe line, drum and tank electrical heaters, (h) electrical furnace igniters, etc. In addition to the heating application, the same conductive textile heating element core may be utilized for an anti static protection. [0092]
  • The aforementioned description comprises different embodiments which should not be construed as limiting the scope of the invention but, as merely providing illustrations of some of the presently preferred embodiments of the invention. Additional contemplated embodiments include: (a) heating element core may include yarns made of ceramic fibers, such as alumina, silica, boria, boron nitride, zirconia, chromia, magnesium, calcia, silicon carbide or combination thereof; (b) heating element core may comprise electrically conductive carbon/graphite or metal coated ceramic fibers, such as alumina, silica, boria, zirconia, chromia, magnesium, calcia, silicon carbide or combination thereof; (c) the metal coating can be applied on carbon/graphite threads/yarns; (d) the conductive carbon coated ceramic may take a form of conductive carbide coating due to the reaction between the carbon and ceramic base during high temperature deposition; (e) the heating element assembly may comprise the conductive strips, ropes, sleeves/pipes, sheets or threads, having different electrical resistance; (f) the heating element core may be formed into various patterns such as serpentine or other desired patterns, including ordinary straight, coil or “U” shaped forms; (g) the electric power cord can be directly attached to the conductive heating element core without the use of electrodes, it is possible to utilize electrically conductive adhesive, conductive paint, conductive polymer, etc. to assure good electrical connection; (h) the conductive heating element core can be electrically insulated by the soft non-conductive fabrics or polymers by sewing, gluing, fusing, spraying, etc., forming a soft multi-layer assembly; (i) the conductive soft heating element core can be electrically insulated by rigid non-conductive materials like ceramics, concrete, thick plastic, wood, etc.; (j) the shape holding means can be applied on any part of the heating element core; (k) the heating element core may be first insulated by the non-conductive material and then laid out in a desired pattern. [0093]
  • While the foregoing invention has been shown and described with reference to a number of preferred embodiments, it will be understood by those possessing skill in the art that various changes and modifications may be made without departing from the spirit and scope of the invention. [0094]

Claims (52)

1. A soft heater having a durable construction for incorporation into a plurality of articles, said heater comprising:
at least one continuous electrically conductive strip, comprising metal containing threads, of a desired length and laid out in predetermined pattern to fit an area of said heater;
at least one gap between portions of said at least one strip;
a conductive means for introducing an electrical current to said strip;
an insulating means for insulating said electrically conductive strip with at least one layer of nonconductive means.
2. The soft heater according to
claim 1
, wherein said metal containing threads comprise electrically conductive metal coated synthetic polymer threads.
3. The soft heater according to
claim 1
, wherein said metal containing threads comprise electrically conductive metal coated inorganic threads.
4. The soft heater according to
claim 1
, wherein said metal containing threads comprise electrically conductive metal coated carbon threads.
5. The soft heater according to
claim 1
, wherein said metal containing threads comprise electrically conductive metal fiber containing threads.
6. The soft heater according to
claim 1
, further including conditioned local spots for providing redundant circuits and control of electrical resistance in selected areas of said conductive strip.
7. The soft heater according to
claim 1
, further including localized treatment of the selected areas, comprising a positive temperature coefficient material for providing temperature self limiting capabilities to said heater.
8. The soft heater according to
claim 6
, wherein said conditioned local spots are the selected areas, comprising electrically conductive carbon carrying material.
9. The soft heater according to
claim 6
, wherein said redundant circuits comprise conductive threads bridging electrical circuits between conductive threads disposed longitudinally in said conductive strips.
10. The soft heater according to
claim 1
further including a shape holding means for connecting and holding said portions of said conductive strip in the predetermined pattern.
11. The soft heater according to
claim 1
, further including a heat reflecting layer, placed on at least one side of said soft heater, and electrically insulated from said conductive strip and said conductive means.
12. A soft heater having a durable construction for incorporation into a plurality of articles, said heater comprising:
a plurality of continuous electrically conductive strips, comprising metal containing threads, of a desired length, laid out in a predetermined pattern to fit an area of said heater;
at least one gap between said strips;
bus conductors, comprising nonmetallic fibers, for introducing an electrical current to said conductive strips;
an insulating means for insulating said electrically conductive strips and said bus conductors with at least one layer of nonconductive means.
13. The soft heater according to
claim 12
, further including localized treatment for providing redundant circuits and control of electrical resistance in selected areas of said conductive strips.
14. The soft heater according to
claim 12
, further including localized treatment spots in selected areas, comprising a positive temperature coefficient material for providing temperature self limiting capabilities to said heater.
15. The soft heaters according to
claim 12
, wherein said metal containing threads comprise metal coated polymer synthetic threads.
16. The soft heater according to
claim 12
, wherein said metal containing threads comprise metal coated inorganic nonmetallic threads.
17. The soft heater according to
claim 12
, wherein said metal containing threads comprise metal coated carbon threads.
18. A soft heater having a durable construction for incorporation into a plurality of articles, said heater comprising:
a conductive means for introducing an electrical current to said heater;
a soft heating element core comprising metal coated nonmetallic threads electrically connected to said conductive means;
an insulating means for insulating said heating element core with at least one layer of nonconductive means.
19. The soft heater according to
claim 18
, further including localized treatment providing redundant circuits and control of electrical resistance in selected areas of said electrically conductive heating element core.
20. The soft heater according to
claim 18
, further including localized treatment of selected areas, comprising a positive temperature coefficient material for providing temperature self limiting capabilities to said heater.
21. The soft heater according to
claim 18
further including:
at least two bus conductors, disposed at edges of said heater,
at least one selected area of said heater comprising positive temperature coefficient material,
at least one portion of electroconductive textile, disposed longitudinally between at least two of said bus conductors, providing that each one portion of said positive temperature coefficient material directly connects to not more than one of said bus conductors.
22. The soft heater according to
claim 21
, wherein said positive temperature coefficient material connects to said bus conductors by embedding said bus conductor in said positive temperature coefficient material.
23. The soft heater according to
claim 18
, wherein said conductive means are thin metal coated threads incorporated into a matrix of said heating element core to form electrode assembly.
24. The soft heater according to
claim 18
, further including a heat reflecting layer, placed on at least one side of said heater, and electrically insulated from said heating element core and said conductive means.
25. A soft heater having a durable construction for incorporation into a plurality of articles, said heater comprising:
a conductive means for introducing an electrical current to said heater;
a soft heating element core, comprising carbon coated nonmetallic inorganic threads, which are electrically connected to said conductive means;
an insulating means for insulating said heating element core with at least one layer of nonconductive means
26. The soft heater according to
claim 25
, further including localized treatment for providing redundant circuits and control of electrical resistance in selected areas of said heating element core.
27. The soft heater according to
claim 25
, further including localized treatment of selected areas, comprising a positive temperature coefficient material for providing temperature self limiting capabilities to said heater.
28. The soft heater according to
claim 25
, further including:
at least two bus conductors, running through a length of said heater,
at least one selected area of said heater comprising positive temperature coefficient material,
at least one portion of electroconductive textile, disposed longitudinally between at least two of said bus conductors, providing that each one portion of said positive temperature coefficient material directly connects to not more than one of said bus conductors.
29. The soft heater according to
claim 28
, wherein said positive temperature coefficient material connects to said bus conductors by embedding said bus conductor in said positive temperature coefficient material.
30. The soft heater according to
claim 25
, wherein said conductive means are thin metal coated threads incorporated into the matrix of said heating element core to form bus electrode assembly.
31. The soft heater according to
claim 25
, further including a heat reflecting layer, placed on at least one side of said heater, and electrically insulated from said heating element and said conductive means.
32. A soft heater having a durable construction for incorporation into a plurality of articles, said heater comprising:
a conductive means for introducing an electrical current to said heater;
a soft heating element core, comprising threads impregnated with conductive ink, which are electrically connected to said conductive means;
an insulating means for insulating said heating element core with at least one layer of nonconductive means.
33. A soft heater having a durable construction for incorporation into a plurality of articles, said heater comprising:
electrically conductive sleeve of continuous cross-section, comprising metal containing threads;
a conductive means for introducing an electrical current to said sleeve;
an insulating means for insulating said electrically conductive sleeve with at least one layer of nonconductive means.
34. A soft heater having a durable construction for incorporation into a plurality of articles, said heater comprising:
electrically conductive sleeve of continuous cross-section, comprising conductive carbon containing threads;
a conductive means for introducing an electrical current to said conductive sleeve;
an insulating means for insulating said electrically conductive sleeve with at least one layer of nonconductive means.
35. The soft heater according to
claim 34
, wherein said carbon containing threads comprise threads impregnated with carbon containing conductive ink.
36. The soft heater according to
claim 34
, wherein said carbon containing threads comprise carbon coated inorganic threads.
37. The soft heater according to
claim 34
, further including localized treatment for providing redundant circuits and control of electrical resistance in selected areas of said electrically conductive sleeve.
38. The soft heater according to
claim 34
, wherein said localized treatment are selected areas, comprising a positive temperature coefficient material for providing temperature self limiting capabilities to said soft heater.
39. The soft heater according to
claim 34
further including:
at least two bus conductors, running through the length of said heater,
at least one selected area of said soft heater comprising positive temperature coefficient material,
at least one portion of said electroconductive sleeve, disposed longitudinally between at least two of said bus conductors, providing that each one portion of said positive temperature coefficient material directly connects to not more than one of said bus conductors.
40. The soft heater according to
claim 39
, wherein said positive temperature coefficient material connects to said bus conductors by embedding said bus conductor in said positive temperature coefficient material.
41. A soft heating cable having a durable construction for incorporation into a plurality of articles, said heating cable comprising:
electroconductive metal coated nonmetallic fibers, incorporated into continuous textile bundle, said bundle is encapsulated by at least one layer of insulating means, cut into desired length and electrically terminated by two electrode connectors.
42. The soft heating cable according to
claim 41
, wherein said textile bundle is a rope.
43. The soft heating cable according to
claim 41
, wherein said textile bundle is a strand of threads.
44. A soft heater having a durable construction for incorporation into a plurality of articles, said heater comprising conductive threads, electrically connected in parallel and disposed between two exterior and at least one interior bus conductors, said bus conductors are electrically interconnected in such manner as to enable electrical operating regimes comprising:
energizing of said heater through exterior bus conductors from power leads with differing electrical potential,
energizing of said heater in such manner that the adjacent energized bus conductors, including interior bus conductors, have different electrical potential.
45. A method of controlling localized overheating over a large electrically heated surface area, comprising a combination of a thermostat with at least one flexible thermal conductor, disposed over electrically heated area, providing that said flexible thermal conductor spreads over the heated area, which is larger than the area covered by said thermostat.
46. A soft heater having a durable construction for incorporation into a plurality of articles, said heater comprising electrically conductive threads embroidered in a pattern of a desired heating element on a flexible nonconductive nonmetallic substrate.
47. The soft heater according to
claim 46
, wherein said conductive threads comprise carbon containing nonmetallic threads.
48. The soft heater according to
claim 46
, wherein said conductive threads comprise metal coated nonmetallic threads.
49. The soft heater according to
claim 46
, wherein said conductive threads comprise metal fiber containing threads.
50. A flexible heater having a durable construction for incorporation into a plurality of articles, said heater comprising at least one section of electrically conductive textile disposed longitudinally between at least two parallel bus conductors, provided that at least one of said two bus conductors is electrically connected to a positive temperature coefficient material directly connected to at least two parallel bus conductors.
51. A flexible heater having a durable construction for incorporation into a plurality of articles, said heater comprising:
a soft heating element, comprising electrically conductive threads, insulated by at least one layer of nonconductive means,
a conductive means for introducing an electrical current to said heating element,
a heat conserving gel, hermetically pouched by the nonconductive means and disposed on at least one side of said insulated heating element.
52. The soft heater according to
claim 51
, further including a refrigeration circuit to provide for alternating heating and cooling cycles.
US09/765,629 1997-05-13 2001-01-22 Soft electrical textile heater Expired - Lifetime US6369369B2 (en)

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US08/855,595 US5824996A (en) 1997-05-13 1997-05-13 Electroconductive textile heating element and method of manufacture
US09/160,540 US6229123B1 (en) 1998-09-25 1998-09-25 Soft electrical textile heater and method of assembly
US09/765,629 US6369369B2 (en) 1997-05-13 2001-01-22 Soft electrical textile heater

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Cited By (32)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2383197A (en) * 2001-12-14 2003-06-18 Nel Technologies Ltd Metallised fabric electric circuit
WO2004107816A1 (en) * 2003-06-02 2004-12-09 Nel Technologies Limited Functional therapeutic heater
US20050091410A1 (en) * 2003-09-12 2005-04-28 Gibart Anthony G. Safety controller with simplified interface
US20060231547A1 (en) * 2003-06-02 2006-10-19 Patrick Ferguson Garment incorporating functional electrical circuit
WO2006111823A1 (en) * 2005-04-18 2006-10-26 Suntech S.R.L. Heating Insole or Shoe
US20070028821A1 (en) * 2003-05-31 2007-02-08 Koninklijke Philips Electronics N.V. Embroidered electrode
US20070089318A1 (en) * 2003-06-02 2007-04-26 Nel Technologies Limited Heater element for the inner sole of a footwear
WO2007065773A1 (en) * 2005-12-07 2007-06-14 Gino Tonello Heating element particularly for obtaining an electric blanket
US20070187392A1 (en) * 2003-06-02 2007-08-16 Patrick Ferguson Functional heater for formed components
US20070278214A1 (en) * 2004-03-08 2007-12-06 Michael Weiss Flat Heating Element
US20080093356A1 (en) * 2006-10-18 2008-04-24 Gian Vittorio Pizzi Portable hypothermia treatment pad and kit
US20080179306A1 (en) * 2002-11-21 2008-07-31 W.E.T. Automotives Systems Ag Heater for automotive vehicle and method of forming same
US20080237220A1 (en) * 2005-07-22 2008-10-02 Gerard Sekrane Device For Protection Against Frost and Uses Thereof
WO2009034037A1 (en) 2007-09-07 2009-03-19 Benecke-Kaliko Ag Electrically conductive, flexible web material
US20110004984A1 (en) * 2008-03-17 2011-01-13 Snjezana First Rogale Controllable ribbed thermoinsulative chamber of continually adjustable thickness and its application
US20110047957A1 (en) * 2009-08-25 2011-03-03 Chi-Hsueh Richard Conductive yarn and cloth containing the same
US20110068098A1 (en) * 2006-12-22 2011-03-24 Taiwan Textile Research Institute Electric Heating Yarns, Methods for Manufacturing the Same and Application Thereof
US20110233193A1 (en) * 2010-03-29 2011-09-29 Chen San Cheng Flexible, flat heating strip using carbon filaments as heating element
US20130186884A1 (en) * 2012-01-20 2013-07-25 W.E.T. Automotive Systems, Ltd. Felt heater and method of making
US20130279892A1 (en) * 2010-12-15 2013-10-24 Contitech Schlauch Gmbh Heatable connection apparatus including media-conducting, electrically heatable hoses
US20140138992A1 (en) * 2012-11-22 2014-05-22 Hon Hai Precision Industry Co., Ltd. Heatable seat
US20140153912A1 (en) * 2011-07-07 2014-06-05 Nv Bekaert Sa Tank with heating element for selective catalytic reduction
WO2017082452A1 (en) * 2015-11-11 2017-05-18 주식회사 창민테크론 Planar heating element
US20170164664A1 (en) * 2015-12-11 2017-06-15 International Business Machines Corporation Actively controlled performance clothing
WO2018170020A1 (en) * 2017-03-14 2018-09-20 Encompass Group, Llc Metalized fabric heating blanket and method of manufacturing such
EP3389337A1 (en) * 2017-04-12 2018-10-17 Carmming International Energy-saving heating wearable apparatus
CN108720137A (en) * 2017-04-19 2018-11-02 科茗国际股份有限公司 Heat object wearing device
US10257885B2 (en) 2017-06-08 2019-04-09 Carmming International Energy-saving heating wearable apparatus
WO2020159428A1 (en) 2019-02-01 2020-08-06 Kjell Lindskog Apparatus and method for a heating mat
WO2020174000A1 (en) * 2019-02-26 2020-09-03 Iee International Electronics & Engineering S.A. Flexible and stretchable electric heater based on electrically conductive textile material and method of manufacturing same
LU101201B1 (en) * 2019-04-30 2020-10-30 Iee Sa Flexible and Stretchable Electric Heater based on Electrically Conductive Textile Material and Method of Manufacturing Same
US20210185771A1 (en) * 2019-12-13 2021-06-17 Goodrich Corporation Internal heating trace assembly

Families Citing this family (178)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6229123B1 (en) * 1998-09-25 2001-05-08 Thermosoft International Corporation Soft electrical textile heater and method of assembly
US7702720B1 (en) * 1998-12-30 2010-04-20 Software Management, Inc. Method and system for conducting a plurality of cyber-based conventions
US6111233A (en) * 1999-01-13 2000-08-29 Malden Mills Industries, Inc. Electric heating warming fabric articles
US7053344B1 (en) 2000-01-24 2006-05-30 Illinois Tool Works Inc Self regulating flexible heater
US6884965B2 (en) 1999-01-25 2005-04-26 Illinois Tool Works Inc. Flexible heater device
US7202444B2 (en) * 1999-01-25 2007-04-10 Illinois Tool Works Inc. Flexible seat heater
US6548789B1 (en) * 1999-04-22 2003-04-15 Malden Mills Industries, Inc. Electric resistance heating/warming fabric articles
US6852956B2 (en) * 1999-04-22 2005-02-08 Malden Mills Industries, Inc. Fabric with heated circuit printed on intermediate film
US6875963B2 (en) * 1999-04-23 2005-04-05 Malden Mills Industries, Inc. Electric heating/warming fabric articles
US6713733B2 (en) * 1999-05-11 2004-03-30 Thermosoft International Corporation Textile heater with continuous temperature sensing and hot spot detection
US6403935B2 (en) * 1999-05-11 2002-06-11 Thermosoft International Corporation Soft heating element and method of its electrical termination
EP1647212A3 (en) * 1999-09-22 2006-08-16 Matsushita Electric Industrial Co., Ltd. Surface heating device
US6415501B1 (en) 1999-10-13 2002-07-09 John W. Schlesselman Heating element containing sewn resistance material
US6433317B1 (en) 2000-04-07 2002-08-13 Watlow Polymer Technologies Molded assembly with heating element captured therein
GB0011829D0 (en) * 2000-05-18 2000-07-05 Lussey David Flexible switching devices
US6967309B2 (en) * 2000-06-14 2005-11-22 American Healthcare Products, Inc. Personal warming systems and apparatuses for use in hospitals and other settings, and associated methods of manufacture and use
US6933469B2 (en) 2000-06-14 2005-08-23 American Healthcare Products, Inc. Personal warming systems and apparatuses for use in hospitals and other settings, and associated methods of manufacture and use
EP1355598A2 (en) * 2000-06-14 2003-10-29 American Healthcare Products, Inc. Heating pad systems for patient warming
US6519835B1 (en) * 2000-08-18 2003-02-18 Watlow Polymer Technologies Method of formable thermoplastic laminate heated element assembly
PL360908A1 (en) * 2000-10-27 2004-09-20 Milliken & Company Thermal textile
US6392195B1 (en) * 2000-11-27 2002-05-21 Breed Automotive Technology, Inc. Heated steering wheel
US20050007406A1 (en) * 2001-04-19 2005-01-13 Haas William S. Controllable thermal warming devices
US8084722B2 (en) * 2001-04-19 2011-12-27 Haas William S Controllable thermal warming devices
US6627861B2 (en) * 2001-07-11 2003-09-30 Sheng-Chung Yang Thermoconductive rubber patch
US6664512B2 (en) 2001-09-11 2003-12-16 Sunbeam Products, Inc. Warming blanket with heat reflective strips
GB0126613D0 (en) * 2001-11-06 2002-01-02 Gorix Ltd Container for transporting temperature sensitive materials
US7268320B2 (en) * 2002-01-14 2007-09-11 Mmi-Ipco, Llc Electric heating/warming fabric articles
US20040045955A1 (en) * 2002-01-14 2004-03-11 Moshe Rock Electric heating/warming fabric articles
US20080047955A1 (en) * 2002-01-14 2008-02-28 Malden Mills Industries, Inc. Electric Heating/Warming Fabric Articles
US7202443B2 (en) * 2002-01-14 2007-04-10 Malden Mills Industries, Inc. Electric heating/warming fabric articles
US7777156B2 (en) * 2002-01-14 2010-08-17 Mmi-Ipco, Llc Electric heating/warming fabric articles
DE10243611A1 (en) * 2002-09-19 2004-04-01 Siemens Ag Patient support device
AU2003272815A1 (en) * 2002-09-30 2004-04-19 Goldman Sachs And Co. System for analyzing a capital structure
US6888108B2 (en) 2002-10-11 2005-05-03 Perfect Fit Industries, Inc. Low voltage power supply system for an electric blanket or the like
US6713724B1 (en) 2002-10-11 2004-03-30 Perfect Fit Industries, Inc. Heating element arrangement for an electric blanket or the like
US20040070904A1 (en) * 2002-10-11 2004-04-15 Carr Sheldon P. Over-voltage protection arrangement for a low voltage power supply
DE10304761B4 (en) * 2003-02-05 2005-10-27 W.E.T. Automotive Systems Ag Flexible heating element
DE10326446B4 (en) * 2003-03-17 2006-03-30 W.E.T. Automotive Systems Ag Device for air conditioning a vehicle seat
JP2006516102A (en) * 2003-03-17 2006-06-22 ヴィー・エー・テー・オートモーティヴ・システムス・アクチェンゲゼルシャフト Air conditioner for vehicle compartment
JP4053569B2 (en) * 2003-03-17 2008-02-27 ヴィー・エー・テー・オートモーティヴ・システムス・アクチェンゲゼルシャフト Device for air conditioning a vehicle seat
US7695062B2 (en) * 2003-03-17 2010-04-13 W.E.T. Automotive Systems Ag Device for receiving functional elements
US6881932B2 (en) * 2003-04-29 2005-04-19 Harco Laboratories, Inc. High reliability heater modules
US7049557B2 (en) * 2003-09-30 2006-05-23 Milliken & Company Regulated flexible heater
US7064299B2 (en) * 2003-09-30 2006-06-20 Milliken & Company Electrical connection of flexible conductive strands in a flexible body
TW200520595A (en) * 2003-11-28 2005-06-16 Matsushita Electric Ind Co Ltd A method for manufacturing a carbon-based heating element, a carbon-based heating element, a heater and a heating apparatus
FR2866000B1 (en) * 2004-02-11 2007-04-06 Eurocopter France HEATING MATERIAL COMPOSED OF ELECTRICALLY CONDUCTIVE FIBERS.
US8898239B2 (en) * 2004-03-05 2014-11-25 Aol Inc. Passively populating a participant list with known contacts
WO2006131785A2 (en) * 2004-03-22 2006-12-14 W.E.T. Automotive Systems Ag Heater for an automotive vehicle and method of forming same
US7034254B2 (en) * 2004-05-11 2006-04-25 The Scott Fetzer Company Heated delivery system
US20090026056A1 (en) * 2004-10-29 2009-01-29 Tilak Dias Switches in textile structures
CN1929763B (en) * 2004-11-16 2010-09-22 李美爱 Fiber reinforced heating unit and mattress with thereof
US20060150331A1 (en) * 2005-01-12 2006-07-13 Child Andrew D Channeled warming blanket
US7038170B1 (en) 2005-01-12 2006-05-02 Milliken & Company Channeled warming blanket
US7180032B2 (en) * 2005-01-12 2007-02-20 Milliken & Company Channeled warming mattress and mattress pad
US7193179B2 (en) * 2005-01-12 2007-03-20 Milliken & Company Channeled under floor heating element
US20060191911A1 (en) * 2005-01-14 2006-08-31 Noble Fiber Technologies, Inc. Blanket with metal coated filaments for heating
WO2006113918A2 (en) * 2005-04-21 2006-10-26 Noble Fiber Technologies, Llc Flexible electrically conductive circuits
KR100593628B1 (en) * 2005-04-26 2006-07-03 (주)에이오앤 Heater jacket for heat convection
US7193191B2 (en) 2005-05-18 2007-03-20 Milliken & Company Under floor heating element
US7034251B1 (en) 2005-05-18 2006-04-25 Milliken & Company Warming blanket
US7189944B2 (en) * 2005-05-18 2007-03-13 Milliken & Company Warming mattress and mattress pad
EP1929839A2 (en) * 2005-08-22 2008-06-11 Thermosiv Ltd. Flexible heating weave
US8048510B2 (en) 2005-09-21 2011-11-01 Whirlpool Corporation Liner with electrical pathways
JP2009518785A (en) 2005-12-11 2009-05-07 ヴィー・エー・テー・オートモーティヴ・システムス・アクチェンゲゼルシャフト Flat heater
JP5121724B2 (en) * 2005-12-29 2013-01-16 エグザテック・リミテッド・ライアビリティー・カンパニー Method of forming a window defroster on a transparent panel
WO2007081080A1 (en) * 2006-01-13 2007-07-19 Beyoung-Mun Baek Leather belt
WO2007097016A1 (en) * 2006-02-27 2007-08-30 Taduko Ono Battery charging chair heating method and battery charging chair heating device and charging battery type heating chair
DE102006026047B4 (en) * 2006-06-01 2015-06-11 Gentherm Gmbh Heating element, seat and vehicle with such
ES2294934B1 (en) * 2006-07-06 2008-11-16 Fundacio Privada Per A La Innovacio Textil D'igualada TEXTILE SENSOR OF PRESSURE AND / OR TENSION AND / OR TORSION EFFORTS.
US20080047945A1 (en) * 2006-08-08 2008-02-28 Pac-Fung Feather Company Limited Method and apparatus for a heated comforter
US7500536B2 (en) * 2006-09-27 2009-03-10 Illinois Tool Works Inc. Seat heater with occupant sensor
US20080245786A1 (en) * 2006-10-03 2008-10-09 Cozpets Llc System and method for providing an asymmetrically or symmetrically distributed multi/single zone woven heated fabric system having an integrated bus
CN101198198A (en) * 2006-12-04 2008-06-11 喻孟华 Electric heating soft belt and its processing method
US20080135564A1 (en) * 2006-12-12 2008-06-12 Benjamin Romero Container for shipping products, which controls temperature of products
CL2008000705A1 (en) * 2007-03-12 2008-08-22 Lma Medical Innovations Ltd APPARATUS FOR THE MANAGEMENT OF THE TEMPERATURE CONSISTING IN A THERMAL CUSHION THAT INCLUDES A HEATING ELEMENT COUPLED TO THE HEATING SURFACE OF THE THERMAL CUSHION, A UNIT OF OPERATING POWER, A PLURALITY OF SUPERFICIAL SENSORS OF TEMPER
WO2008115889A1 (en) * 2007-03-16 2008-09-25 Gerbing's Heated Clothing, Inc. Textile based heating apparatus and method
US10201935B2 (en) 2007-03-19 2019-02-12 Augustine Temperature Management LLC Electric heating pad
US8283602B2 (en) 2007-03-19 2012-10-09 Augustine Temperature Management LLC Heating blanket
US20150366367A1 (en) 2007-03-19 2015-12-24 Augustine Temperature Management LLC Electric heating pad with electrosurgical grounding
US8514545B2 (en) * 2007-04-20 2013-08-20 Ink-Logix, Llc In-molded capacitive switch
US8198979B2 (en) * 2007-04-20 2012-06-12 Ink-Logix, Llc In-molded resistive and shielding elements
US20090033130A1 (en) * 2007-07-02 2009-02-05 David Marquette Fluid delivery systems for climate controlled seats
WO2009015410A1 (en) * 2007-07-31 2009-02-05 Resmed Ltd Heating element, humidifier for respiratory apparatus including heating element, and respiratory apparatus
US8262717B2 (en) 2007-08-03 2012-09-11 Scion Neurostim, Llc. Vestibular stimulation apparatus and associated methods of use
US8133826B2 (en) * 2007-08-21 2012-03-13 Ut-Battelle, Llc Thermal control structure and garment
DK176716B1 (en) * 2007-09-03 2009-04-14 Viking Life Saving Equip As Liferaft System
DE112008002682A5 (en) 2007-10-18 2010-07-01 W.E.T. Automotive Systems Ag Electric guide
US20090264970A1 (en) * 2008-04-17 2009-10-22 Jadan Solutions, Llc Body Heater Suspenders
US20100065686A1 (en) * 2008-04-28 2010-03-18 Tauscher Kurt M Aircraft heated floor panel
CN102912509B (en) * 2008-05-28 2015-01-07 瑟尔瑞株式会社 Strip-shaped electrically conductive pads
US8866052B2 (en) * 2008-05-29 2014-10-21 Kimberly-Clark Worldwide, Inc. Heating articles using conductive webs
DE102008039840A1 (en) * 2008-08-27 2010-03-04 Sgl Carbon Ag Stretched carbon fiber yarns for a heater
US8168923B2 (en) * 2008-10-14 2012-05-01 Chon Meng Wong System for heated food delivery and serving
US8800145B2 (en) * 2008-12-30 2014-08-12 Sikorsky Aircraft Corporation Refurbishing method and system for a main rotor blade spar
CN101999062B (en) * 2009-05-04 2013-11-20 Lg电子株式会社 Refrigerant heating device and manufacturing method thereof
DE102009059995A1 (en) * 2009-12-21 2011-06-22 W.E.T. Automotive Systems AG, 85235 Electric heater
WO2011127997A1 (en) * 2010-04-12 2011-10-20 Siemens Aktiengesellschaft Heating mats arranged in a loop on a blade
FR2958991B1 (en) 2010-04-14 2012-05-04 Total Sa DRIVE FOR TRANSPORTING A FLUID COMPRISING HYDROCARBON, AND METHOD OF MANUFACTURING SUCH A DRIVE.
FR2958994B1 (en) * 2010-04-14 2013-01-11 Total Sa HEATED COVER FOR A DEVICE FOR TRANSPORTING A FLUID COMPRISING A HYDROCARBON.
US8702164B2 (en) * 2010-05-27 2014-04-22 W.E.T. Automotive Systems, Ltd. Heater for an automotive vehicle and method of forming same
US8283800B2 (en) 2010-05-27 2012-10-09 Ford Global Technologies, Llc Vehicle control system with proximity switch and method thereof
DE102011105675A1 (en) 2010-07-15 2012-01-19 W.E.T. Automotive Systems Ag Electrical cable for resistance device in e.g. contacting device for keeping e.g. airplane wing at moderate temperature in interior component of e.g. vehicle, has substrate support arranged in limiting substrate
WO2012033914A1 (en) 2010-09-09 2012-03-15 Battelle Memorial Institute Heating a short section of tape or wire to a controlled temperature
US9326498B2 (en) * 2010-09-14 2016-05-03 JAB Distributors, LLC Heatable enclosure for pest eradication
DE102011114949A1 (en) 2010-10-19 2012-04-19 W.E.T. Automotive Systems Ag Electrical conductor
CA2821260C (en) 2010-12-16 2018-09-11 Scion Neurostim, Llc Systems, devices and methods for bilateral caloric vestibular stimulation
KR101237911B1 (en) 2010-12-24 2013-02-27 한국패션산업연구원 Manufacturing method for garment type pressure sensor package
WO2012125916A2 (en) * 2011-03-16 2012-09-20 Augustine Temperature Management, Llc Heated under-body warming system
DE102012000977A1 (en) 2011-04-06 2012-10-11 W.E.T. Automotive Systems Ag Heating device for complex shaped surfaces
US8975903B2 (en) 2011-06-09 2015-03-10 Ford Global Technologies, Llc Proximity switch having learned sensitivity and method therefor
US8928336B2 (en) 2011-06-09 2015-01-06 Ford Global Technologies, Llc Proximity switch having sensitivity control and method therefor
US10004286B2 (en) 2011-08-08 2018-06-26 Ford Global Technologies, Llc Glove having conductive ink and method of interacting with proximity sensor
DE202011109990U1 (en) 2011-09-14 2012-12-17 W.E.T. Automotive Systems Ag Tempering device
US20130068753A1 (en) * 2011-09-21 2013-03-21 Chung-Yeng Lin Electrothermal article with a foldable structure
US9143126B2 (en) 2011-09-22 2015-09-22 Ford Global Technologies, Llc Proximity switch having lockout control for controlling movable panel
US9491806B2 (en) * 2011-09-30 2016-11-08 Ppg Industries Ohio, Inc. Heatable transparency
US8994228B2 (en) 2011-11-03 2015-03-31 Ford Global Technologies, Llc Proximity switch having wrong touch feedback
US10112556B2 (en) 2011-11-03 2018-10-30 Ford Global Technologies, Llc Proximity switch having wrong touch adaptive learning and method
US8878438B2 (en) 2011-11-04 2014-11-04 Ford Global Technologies, Llc Lamp and proximity switch assembly and method
CN103959898B (en) * 2011-12-09 2016-02-03 日产自动车株式会社 Cloth-like heater
US9184745B2 (en) 2012-04-11 2015-11-10 Ford Global Technologies, Llc Proximity switch assembly and method of sensing user input based on signal rate of change
US9531379B2 (en) 2012-04-11 2016-12-27 Ford Global Technologies, Llc Proximity switch assembly having groove between adjacent proximity sensors
US9831870B2 (en) 2012-04-11 2017-11-28 Ford Global Technologies, Llc Proximity switch assembly and method of tuning same
US9219472B2 (en) 2012-04-11 2015-12-22 Ford Global Technologies, Llc Proximity switch assembly and activation method using rate monitoring
US9568527B2 (en) 2012-04-11 2017-02-14 Ford Global Technologies, Llc Proximity switch assembly and activation method having virtual button mode
US9559688B2 (en) 2012-04-11 2017-01-31 Ford Global Technologies, Llc Proximity switch assembly having pliable surface and depression
US8933708B2 (en) 2012-04-11 2015-01-13 Ford Global Technologies, Llc Proximity switch assembly and activation method with exploration mode
US9065447B2 (en) 2012-04-11 2015-06-23 Ford Global Technologies, Llc Proximity switch assembly and method having adaptive time delay
US9520875B2 (en) 2012-04-11 2016-12-13 Ford Global Technologies, Llc Pliable proximity switch assembly and activation method
US9197206B2 (en) 2012-04-11 2015-11-24 Ford Global Technologies, Llc Proximity switch having differential contact surface
US9287864B2 (en) 2012-04-11 2016-03-15 Ford Global Technologies, Llc Proximity switch assembly and calibration method therefor
US9944237B2 (en) 2012-04-11 2018-04-17 Ford Global Technologies, Llc Proximity switch assembly with signal drift rejection and method
US9660644B2 (en) 2012-04-11 2017-05-23 Ford Global Technologies, Llc Proximity switch assembly and activation method
US9136840B2 (en) 2012-05-17 2015-09-15 Ford Global Technologies, Llc Proximity switch assembly having dynamic tuned threshold
US8981602B2 (en) 2012-05-29 2015-03-17 Ford Global Technologies, Llc Proximity switch assembly having non-switch contact and method
US9337832B2 (en) 2012-06-06 2016-05-10 Ford Global Technologies, Llc Proximity switch and method of adjusting sensitivity therefor
DE102013006410A1 (en) 2012-06-18 2013-12-19 W.E.T. Automotive Systems Ag Sheet installed in function region, used as floor mat for e.g. motor car, has heating device including electrodes which are arranged spaced apart from electrical resistor, and sensor for detecting temperature of environment
GB201211253D0 (en) 2012-06-25 2012-08-08 Jemella Ltd Hair dryer
GB2500733B (en) * 2012-06-25 2014-05-21 Jemella Ltd Hair styling appliance
US9641172B2 (en) 2012-06-27 2017-05-02 Ford Global Technologies, Llc Proximity switch assembly having varying size electrode fingers
DE102012017047A1 (en) 2012-08-29 2014-03-06 W.E.T. Automotive Systems Ag Electric heater
US8922340B2 (en) 2012-09-11 2014-12-30 Ford Global Technologies, Llc Proximity switch based door latch release
US8796575B2 (en) 2012-10-31 2014-08-05 Ford Global Technologies, Llc Proximity switch assembly having ground layer
GB2508590C (en) 2012-12-03 2021-05-05 Jemella Ltd Hair styling apparatus
DE102012024903A1 (en) 2012-12-20 2014-06-26 W.E.T. Automotive Systems Ag Flat structure with electrical functional elements
US9311204B2 (en) 2013-03-13 2016-04-12 Ford Global Technologies, Llc Proximity interface development system having replicator and method
US9408939B2 (en) 2013-03-15 2016-08-09 Medline Industries, Inc. Anti-microbial air processor for a personal patient warming apparatus
US9668303B2 (en) 2013-04-17 2017-05-30 Augustine Biomedical And Design, Llc Flexible electric heaters
KR101774798B1 (en) 2013-05-02 2017-09-05 젠썸 캐나다 유엘씨 Liquid resistant heating element
PL2826902T3 (en) * 2013-07-19 2019-05-31 Kufner Holding Gmbh Method for producing a textile planar heating element und warp knitting or Raschel machine with weft insertion system
EP2846606A1 (en) * 2013-09-05 2015-03-11 Leifheit Ag Electrical heating device
WO2015157684A1 (en) 2014-04-10 2015-10-15 Augustine Biomedical And Design, Llc Underbody warming systems with core temperature monitoring
KR101602880B1 (en) * 2014-06-18 2016-03-11 (주)유니플라텍 Positive temperature coefficient using conductive liquid emulsion polymer composition, manufacturing method of thereoff, Face heater with it
US20150367604A1 (en) * 2014-06-19 2015-12-24 Grand Designs, Inc. Cover assembly for temperature-sensitive cartons or articles
US20160194792A1 (en) * 2014-07-09 2016-07-07 Mas Innovation (Private) Limited Electrically conductive textile assemblies and manufacture thereof
US10038443B2 (en) 2014-10-20 2018-07-31 Ford Global Technologies, Llc Directional proximity switch assembly
US10206248B2 (en) 2014-11-13 2019-02-12 Augustine Temperature Management LLC Heated underbody warming systems with electrosurgical grounding
US9829203B2 (en) * 2014-11-19 2017-11-28 University of Alaska Anchorage Self-heated enclosure with carbon fiber
FI10797U1 (en) * 2014-12-04 2015-03-10 Wicetec Oy A conductor joint for connecting a copper conductor
DE102015012906A1 (en) 2015-02-27 2016-09-01 Gentherm Gmbh Sleeve, contacting device and method for welding thin strand-shaped conductors by means of ultrasound
US9654103B2 (en) 2015-03-18 2017-05-16 Ford Global Technologies, Llc Proximity switch assembly having haptic feedback and method
US9548733B2 (en) 2015-05-20 2017-01-17 Ford Global Technologies, Llc Proximity sensor assembly having interleaved electrode configuration
FR3049153B1 (en) * 2016-03-21 2018-04-06 Valeo Systemes D'essuyage HEATED ELECTRICAL CIRCUIT AND HEATER ELEMENT FOR WIPER BLADE, METHOD FOR PRODUCING HEATING ELEMENT, AND WIPER BLADE
GB2557326B (en) * 2016-12-07 2019-07-10 Survitec Group Ltd Liferaft storage container with heated cover sheet
DE102017001097A1 (en) 2017-02-07 2018-08-09 Gentherm Gmbh Electrically conductive foil
US10856364B2 (en) * 2017-06-28 2020-12-01 Kurabe International Co. Ltd. Heat generating apparatus
FR3072178B1 (en) * 2017-10-10 2019-10-11 Autoliv Development Ab ELECTRIC DEVICE OF VEHICLE
US11166344B2 (en) * 2018-01-25 2021-11-02 University Of Massachusetts Electrically-heated fiber, fabric, or textile for heated apparel
IL261096A (en) * 2018-08-10 2020-02-27 Ez Pack Water Ltd System and Method for Storage of Renewable Energy as Hot or Cold Water in Flexible Heating Tanks
EP3621409A1 (en) * 2018-09-10 2020-03-11 Wißmann, Wilhelm Heating film and heating plate
US11317661B2 (en) * 2019-01-04 2022-05-03 Matthew Winningham Arm warming device
US10765580B1 (en) 2019-03-27 2020-09-08 Augustine Biomedical And Design, Llc Patient securement system for the surgical trendelenburg position
WO2021155370A1 (en) * 2020-01-30 2021-08-05 Liquid X Printed Metals, Inc. Force sensor controlled conductive heating elements
CA3166473A1 (en) * 2020-01-31 2021-08-05 Richard P. Nardo Ptc heating element and warming device including same for use in a patient warming system
KR102397448B1 (en) * 2020-02-07 2022-05-12 주식회사 케이티앤지 Heater for aerosol generating device
CH719590A1 (en) * 2022-04-12 2023-10-31 Graphenaton Tech Sa Multilayer electrothermal structure.
US11844733B1 (en) 2022-06-23 2023-12-19 Augustine Biomedical And Design, Llc Patient securement system for the surgical Trendelenburg position
CN117500104B (en) * 2024-01-03 2024-03-22 黑龙江省奥普瑞石油科技有限公司 Self-limiting temperature electric tracing band

Family Cites Families (30)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1703005A (en) * 1928-01-05 1929-02-19 Frank W Hewitt Electric heating pad and fabric
US2496279A (en) * 1945-02-10 1950-02-07 Safeway Heat Elements Inc Flexible electric heater for deicing airfoils
NL130393C (en) 1964-05-29
US3349359A (en) 1964-12-18 1967-10-24 Templeton Coal Company Electrical heating elment
US3657516A (en) 1969-11-10 1972-04-18 Kansai Hoon Kogyo Kk Flexible panel-type heating unit
JPS513097B1 (en) 1970-09-21 1976-01-31
NL7315574A (en) 1973-11-14 1975-05-16 Benoit De La Bretoniere Andre TISSUE.
US3935422A (en) 1974-02-12 1976-01-27 Burlington Industries, Inc. Electrically heated laminate with a glass heating fabric
US4654511A (en) * 1974-09-27 1987-03-31 Raychem Corporation Layered self-regulating heating article
US4149066A (en) 1975-11-20 1979-04-10 Akitoshi Niibe Temperature controlled flexible electric heating panel
US4100673A (en) * 1977-05-05 1978-07-18 Leavines Joseph E Method of making high temperature parallel resistance pipe heater
US4250397A (en) 1977-06-01 1981-02-10 International Paper Company Heating element and methods of manufacturing therefor
US4309596A (en) 1980-06-24 1982-01-05 Sunbeam Corporation Flexible self-limiting heating cable
US4485297A (en) * 1980-08-28 1984-11-27 Flexwatt Corporation Electrical resistance heater
US4436986A (en) * 1981-11-23 1984-03-13 Sunbeam Corporation Electric blanket safety circuit
DE3313011A1 (en) 1983-04-12 1984-10-18 Girmes-Werke Ag, 4155 Grefrath HEATING ELEMENT FOR TEXTILES
US4825049A (en) 1984-11-16 1989-04-25 Northrop Corporation Carbon film coated refractory fiber cloth
US4722860A (en) * 1985-03-20 1988-02-02 Northrop Corporation Carbon film coated refractory fiber cloth
US4764665A (en) 1985-07-02 1988-08-16 Material Concepts, Inc. Electrically heated gloves
JPS62100968A (en) 1985-10-29 1987-05-11 東レ株式会社 String heater element and manufacture of the same
JP2719946B2 (en) 1988-12-24 1998-02-25 繁之 安田 Self-regulating heating element and flexible planar heating element using the same
US4952783A (en) * 1989-03-20 1990-08-28 W. H. Brady Co. Light transmitting flexible film electrical heater panels
US5023433A (en) 1989-05-25 1991-06-11 Gordon Richard A Electrical heating unit
US5111025A (en) * 1990-02-09 1992-05-05 Raychem Corporation Seat heater
JP2934046B2 (en) 1991-03-22 1999-08-16 帝人株式会社 Tire warmer
US5412181A (en) * 1993-12-27 1995-05-02 The B. F. Goodrich Company Variable power density heating using stranded resistance wire
FR2744872B1 (en) * 1996-02-08 1998-04-10 Eurocopter France DEVICE FOR HEATING AN AERODYNAMIC PROFILE
US5801914A (en) * 1996-05-23 1998-09-01 Sunbeam Products, Inc. Electrical safety circuit with a breakable conductive element
US5824996A (en) 1997-05-13 1998-10-20 Thermosoft International Corp Electroconductive textile heating element and method of manufacture
US6229123B1 (en) * 1998-09-25 2001-05-08 Thermosoft International Corporation Soft electrical textile heater and method of assembly

Cited By (68)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050082280A1 (en) * 2001-12-14 2005-04-21 Patrick Ferguson Flexible electric circuit for heating comprising a metallised fabric
GB2383197A (en) * 2001-12-14 2003-06-18 Nel Technologies Ltd Metallised fabric electric circuit
GB2383197B (en) * 2001-12-14 2005-09-07 Nel Technologies Ltd Flexible electric circuit
US7115844B2 (en) 2001-12-14 2006-10-03 Nel Technologies, Ltd. Flexible electric circuit for heating comprising a metallised fabric
US8766142B2 (en) 2002-11-21 2014-07-01 W.E.T. Automotive Systems Ag Heater for an automotive vehicle and method of forming same
US7741582B2 (en) 2002-11-21 2010-06-22 W.E.T. Automotive Systems Ag Heater for automotive vehicle and method of forming same
US9578690B2 (en) 2002-11-21 2017-02-21 Gentherm Gmbh Heater for an automotive vehicle and method of forming same
US8507831B2 (en) 2002-11-21 2013-08-13 W.E.T. Automotive Systems Ag Heater for an automotive vehicle and method of forming same
US20080179306A1 (en) * 2002-11-21 2008-07-31 W.E.T. Automotives Systems Ag Heater for automotive vehicle and method of forming same
US9315133B2 (en) 2002-11-21 2016-04-19 Gentherm Gmbh Heater for an automotive vehicle and method of forming same
US8006633B2 (en) * 2003-05-31 2011-08-30 Koninklijke Philips Electronics N.V. Embroidered electrode
US20070028821A1 (en) * 2003-05-31 2007-02-08 Koninklijke Philips Electronics N.V. Embroidered electrode
US7375308B2 (en) 2003-06-02 2008-05-20 Nel Technologies Limited Garment incorporating functional electrical circuit
US7767936B2 (en) 2003-06-02 2010-08-03 Nel Technologies Limited Functional therapeutic heater
US20070187392A1 (en) * 2003-06-02 2007-08-16 Patrick Ferguson Functional heater for formed components
US8674271B2 (en) 2003-06-02 2014-03-18 Nel Technologies Limited Method of using a topical application device
EP2364057A3 (en) * 2003-06-02 2012-04-25 NEL Technologies Limited Functional therapeutic heater
US20070108190A1 (en) * 2003-06-02 2007-05-17 Nel Technologies Limited Functional therapeutic heater
US8546733B2 (en) 2003-06-02 2013-10-01 Nel Technologies Limited Method of manufacturing a shaped component
US20070089318A1 (en) * 2003-06-02 2007-04-26 Nel Technologies Limited Heater element for the inner sole of a footwear
US7569795B2 (en) 2003-06-02 2009-08-04 Nel Technologies Limited Heater element incorporating functional electrical circuit
US20060231547A1 (en) * 2003-06-02 2006-10-19 Patrick Ferguson Garment incorporating functional electrical circuit
US7767939B2 (en) 2003-06-02 2010-08-03 Nel Technologies Limited Functional heater for formed components
US20070210051A1 (en) * 2003-06-02 2007-09-13 Nel Technologies Limited Garment incorporating functional electrical circuit
US8445819B2 (en) 2003-06-02 2013-05-21 Nel Technologies Limited Functional therapeutic heater element
US20100308490A1 (en) * 2003-06-02 2010-12-09 Nel Technologies Limited Method of manufacturing a shaped component
US20100308033A1 (en) * 2003-06-02 2010-12-09 Nel Technologies Limited Formed component heater element
US20100312200A1 (en) * 2003-06-02 2010-12-09 Nel Technologies Limited Method of using a topical application device
US20100312313A1 (en) * 2003-06-02 2010-12-09 Nel Technologies Limited Functional therapeutic heater element
US8410407B2 (en) 2003-06-02 2013-04-02 Nel Technologies Limited Formed component heater element
US8291612B2 (en) 2003-06-02 2012-10-23 Nel Technologies Limited Heater element for the inner sole of a footwear
WO2004107816A1 (en) * 2003-06-02 2004-12-09 Nel Technologies Limited Functional therapeutic heater
US20050091410A1 (en) * 2003-09-12 2005-04-28 Gibart Anthony G. Safety controller with simplified interface
US8288693B2 (en) * 2004-03-08 2012-10-16 W.E.T. Automotive Systems Ag Flat heating element
US20070278214A1 (en) * 2004-03-08 2007-12-06 Michael Weiss Flat Heating Element
WO2006111823A1 (en) * 2005-04-18 2006-10-26 Suntech S.R.L. Heating Insole or Shoe
US20080237220A1 (en) * 2005-07-22 2008-10-02 Gerard Sekrane Device For Protection Against Frost and Uses Thereof
WO2007065773A1 (en) * 2005-12-07 2007-06-14 Gino Tonello Heating element particularly for obtaining an electric blanket
US20080093356A1 (en) * 2006-10-18 2008-04-24 Gian Vittorio Pizzi Portable hypothermia treatment pad and kit
US20110068098A1 (en) * 2006-12-22 2011-03-24 Taiwan Textile Research Institute Electric Heating Yarns, Methods for Manufacturing the Same and Application Thereof
US20100206863A1 (en) * 2007-09-07 2010-08-19 Benecke-Kaliko Ag Electrically conductive, flexible web material
WO2009034037A1 (en) 2007-09-07 2009-03-19 Benecke-Kaliko Ag Electrically conductive, flexible web material
US20110004984A1 (en) * 2008-03-17 2011-01-13 Snjezana First Rogale Controllable ribbed thermoinsulative chamber of continually adjustable thickness and its application
US20110047957A1 (en) * 2009-08-25 2011-03-03 Chi-Hsueh Richard Conductive yarn and cloth containing the same
US20110233193A1 (en) * 2010-03-29 2011-09-29 Chen San Cheng Flexible, flat heating strip using carbon filaments as heating element
US20130279892A1 (en) * 2010-12-15 2013-10-24 Contitech Schlauch Gmbh Heatable connection apparatus including media-conducting, electrically heatable hoses
US9366454B2 (en) * 2010-12-15 2016-06-14 Contitech Schlauch Gmbh Heatable connection apparatus including media-conducting, electrically heatable hoses
US9671132B2 (en) * 2011-07-07 2017-06-06 Nv Bekaert Sa Tank with heating element for selective catalytic reduction
US20140153912A1 (en) * 2011-07-07 2014-06-05 Nv Bekaert Sa Tank with heating element for selective catalytic reduction
US20130186884A1 (en) * 2012-01-20 2013-07-25 W.E.T. Automotive Systems, Ltd. Felt heater and method of making
US10201039B2 (en) * 2012-01-20 2019-02-05 Gentherm Gmbh Felt heater and method of making
US20140138992A1 (en) * 2012-11-22 2014-05-22 Hon Hai Precision Industry Co., Ltd. Heatable seat
US9022464B2 (en) * 2012-11-22 2015-05-05 Tsinghua University Heatable seat
WO2017082452A1 (en) * 2015-11-11 2017-05-18 주식회사 창민테크론 Planar heating element
US11089659B2 (en) 2015-11-11 2021-08-10 Changmin Techron Co., Ltd Planar heating element
US20170164664A1 (en) * 2015-12-11 2017-06-15 International Business Machines Corporation Actively controlled performance clothing
US10219556B2 (en) * 2015-12-11 2019-03-05 International Business Machines Corporation Actively controlled performance clothing
WO2018170020A1 (en) * 2017-03-14 2018-09-20 Encompass Group, Llc Metalized fabric heating blanket and method of manufacturing such
EP3389337A1 (en) * 2017-04-12 2018-10-17 Carmming International Energy-saving heating wearable apparatus
CN108720137A (en) * 2017-04-19 2018-11-02 科茗国际股份有限公司 Heat object wearing device
US10257885B2 (en) 2017-06-08 2019-04-09 Carmming International Energy-saving heating wearable apparatus
WO2020159428A1 (en) 2019-02-01 2020-08-06 Kjell Lindskog Apparatus and method for a heating mat
EP3918879A4 (en) * 2019-02-01 2022-11-23 Kjell Lindskog Apparatus and method for a heating mat
WO2020174000A1 (en) * 2019-02-26 2020-09-03 Iee International Electronics & Engineering S.A. Flexible and stretchable electric heater based on electrically conductive textile material and method of manufacturing same
CN113545167A (en) * 2019-02-26 2021-10-22 Iee国际电子工程股份公司 Flexible and stretchable electric heater based on conductive fabric material and manufacturing method thereof
LU101201B1 (en) * 2019-04-30 2020-10-30 Iee Sa Flexible and Stretchable Electric Heater based on Electrically Conductive Textile Material and Method of Manufacturing Same
US20210185771A1 (en) * 2019-12-13 2021-06-17 Goodrich Corporation Internal heating trace assembly
US11903101B2 (en) * 2019-12-13 2024-02-13 Goodrich Corporation Internal heating trace assembly

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