WO1990014473A1 - Solenoid operated faucet - Google Patents

Solenoid operated faucet Download PDF

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Publication number
WO1990014473A1
WO1990014473A1 PCT/US1990/002437 US9002437W WO9014473A1 WO 1990014473 A1 WO1990014473 A1 WO 1990014473A1 US 9002437 W US9002437 W US 9002437W WO 9014473 A1 WO9014473 A1 WO 9014473A1
Authority
WO
WIPO (PCT)
Prior art keywords
faucet
aperture
diaphragm
valve housing
solenoid
Prior art date
Application number
PCT/US1990/002437
Other languages
French (fr)
Inventor
Muhammad Iqbal
Jeffery J. Kreutzer
Carl R. Schwartz
Original Assignee
Kohler Co.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Kohler Co. filed Critical Kohler Co.
Priority to AT90908363T priority Critical patent/ATE91162T1/en
Publication of WO1990014473A1 publication Critical patent/WO1990014473A1/en

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Classifications

    • EFIXED CONSTRUCTIONS
    • E03WATER SUPPLY; SEWERAGE
    • E03CDOMESTIC PLUMBING INSTALLATIONS FOR FRESH WATER OR WASTE WATER; SINKS
    • E03C1/00Domestic plumbing installations for fresh water or waste water; Sinks
    • E03C1/02Plumbing installations for fresh water
    • E03C1/05Arrangements of devices on wash-basins, baths, sinks, or the like for remote control of taps
    • E03C1/055Electrical control devices, e.g. with push buttons, control panels or the like
    • E03C1/057Electrical control devices, e.g. with push buttons, control panels or the like touchless, i.e. using sensors
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T137/00Fluid handling
    • Y10T137/8593Systems
    • Y10T137/87571Multiple inlet with single outlet
    • Y10T137/87676With flow control
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T137/00Fluid handling
    • Y10T137/9464Faucets and spouts

Definitions

  • the present invention relates to faucets which incorporate a solenoid valve enabling the faucet to be operated by an electrical signal.
  • a solenoid valve enabling the faucet to be operated by an electrical signal.
  • it relates to such faucets controlled by a proximity detector which senses the presence of an object adjacent the faucet and activates the solenoid valve.
  • a lavatory faucet which can be turned on and off without requiring the user to touch the faucet.
  • the prior art is replete with devices for sensing the presence of a user and in response thereto activating a solenoid valve coupled to a faucet.
  • a common sensing technique involves transmitting an infrared light beam into a region in front of the faucet where a user may place his hands .
  • a sensor is mounted either in or adjacent the faucet to detect the infrared light reflected by the user, thereby sensing the presence of a user in front of the faucet.
  • the solenoid valve In response to sensing the reflected light, the solenoid valve is opened causing water to flow from the faucet. When the detection of reflected light ceases, the valve is deenergized.
  • a problem with such proximity activated faucets is that an inanimate object can be left within the sensing region (e.g. by vandals) thereby causing the water to flow continuously. This activation of the faucet not only wastes water, but may result in water overflowing the lavatory if some object is also blocking the drain and overflow openings.
  • the previous electrically activated faucets typically incorporated the solenoid valve assembly beneath the wash basin, totally separate from the faucet.
  • the proximity sensing circuitry was similarly housed in a separate enclosure. It is desirable in many applications of such faucets to reduce the amount of space consumed by the various components and integrate them into the faucet housing. However in doing so, it is important to be able to gain access to the different components in order to perform routine maintenance.
  • a faucet has a body within which is located a separable valve housing.
  • the valve housing forms an inlet chamber, which opens into an annular channel, and an outlet chamber with a opening centrally located relative to the annular channel.
  • a surface between the channel and the outlet chamber opening defines a valve seat.
  • a portion of the valve housing extends into a spout of the faucet body and has an aperture providing a conduit between the outlet chamber and the spout.
  • a resilient diaphragm abuts the valve seat and the housing to selectively seal the outlet chamber from the inlet chamber.
  • This diaphragm has a centrally located aperture which communicates with the outlet chamber and has a metering aperture which opens into the inlet chamber.
  • a taper pin on the valve housing passes through and restricts metering aperture when the diaphragm abuts the valve seat.
  • a diaphragm retainer is positioned in the central aperture of the diaphragm and includes an aperture which communicates with the outlet chamber.
  • a solenoid assembly is mounted on the valve housing to form a cavity therebetween into which the metering aperture and the diaphragm retainer aperture communicate.
  • the solenoid assembly includes a plunger biased by a spring against the retainer disc to releasably seal its aperture.
  • An electrical coil extends around the plunger.
  • the preferred embodiment of the faucet incorporates a proximity sensor for detecting the presence of an object adjacent the faucet and in response thereto for energizing the electrical coil.
  • the proximity sensor includes a safety shut off circuit which deenergizes the coil after a preset period even though an object may continue to be detected. Thereafter, the faucet is periodically opened as an alarm system until the object is removed.
  • a general objective of the present invention is to provide a solenoid operated faucet in which the solenoid is enclosed within the faucet housing. It is another objective to create a modular faucet assembly which can be disassembled easily for servicing.
  • Yet another objective of the present invention is to provide a proximity detector which will sense the presence of a user in front of the faucet and activate the solenoid to open the valve.
  • a still further objective is to provide a mechanism which minimizes the undesirable effects caused by an object being left within the sensing region of the faucet.
  • FIGURE 1 is an isometric view of a faucet according to the present invention mounted on a lavatory;
  • FIGURE 2 is a vertical cross sectional view of the faucet in Figure 1;
  • FIGURE 3 is a schematic block diagram of the electrical control circuit of the present invention.
  • FIGURES 4A and 4B are a flowchart of a program for the control circuit microcomputer.
  • a faucet 10 is mounted on a lavatory 11.
  • the faucet includes a body 12 having a tubular spout 13 extending over the bowl of the lavatory.
  • a conventional infrared proximity detector 14 At the front of the faucet body 12, beneath the spout 13, is a conventional infrared proximity detector 14 which senses the presence of an object, such as a person's hands, beneath the spout 13.
  • the faucet 10 also has a base 15 on which the faucet body 12 is mounted.
  • the base includes a temperature display 16 comprising an array of light emitting diodes (LED) forming a bar graph which provides a visual indication of the temperature of the water flowing from the spout.
  • LED light emitting diodes
  • the metal faucet body 12 has a hollow inner chamber 18 communicating with the spout 13 via a circular opening 19 in inner wall 25.
  • a solenoid valve assembly 20 that includes a valve housing 21 formed of a plastic material and having an inlet chamber 22 and an outlet chamber 23.
  • the upper end of the valve housing 21 adjacent the outlet chamber 23 is threaded into an adapter 26.
  • the adapter 26 has a non-threaded cylindrical portion 27 slid into the circular opening 19 between the inner chamber 18 and the spout 13.
  • the cylindrical portion 27 has an external peripheral groove 28 within which an 0-ring 29 is located to provide a water-tight seal between the adapter 26 and the faucet housing wall 25.
  • the valve housing 21 and the adapter 26 can be formed as a single unit. Therefore, the adapter 26 can be considered as part of the valve housing.
  • the lower end of the valve housing 21 is threaded into to a brass tube 24 which extends through aperture 47 in the base 15 and couples a water supply pipe (not illustrated) to the inlet chamber 22.
  • a water supply pipe (not illustrated)
  • a mixing valve could be included in the faucet body 12.
  • the tube 24 has an external flange 48 which is received in a rim 49 around the base aperture 47.
  • the flange 48 can be located on the lower end of the valve housing 21. The engagement of the flange 48 and the rim 49 holds the valve assembly 20 within the faucet preventing the cylindrical portion 27 from sliding out of the opening 19.
  • Both the inlet chamber 22 and the outlet chamber 24 communicate coaxially through the middle side of the valve housing 21.
  • the inlet chamber 22 communicates with a ring-shaped channel 32 and the outlet chamber 23 opens into the center 33 of the ring shaped channel. The intersection between the two openings forms a circular valve seat 30.
  • a resilient diaphragm 34 extends across the opening in the side of the valve housing 21.
  • the diaphragm 34 has a central aperture 35 through which a disk shaped retainer 36 extends with the diaphragm positioned in an external groove 37 of the retainer.
  • the retainer is tightly fitted within the central opening of the diaphragm so as to provide a water-tight seal therebetween.
  • the diaphragm retainer 36 has a central aperture 38 extending therethrough providing a passage connecting the outlet chamber 23 with a cavity 46 on the opposite side of the diaphragm.
  • the retainer 36 extends across the surface of the diaphragm 34 which is remote from the valve seat 30.
  • the diaphragm 34 also has a metering hole 41 through it aligned with a similar hole 42 in the retainer 36.
  • the valve housing 21 has a tapered pin 40 extending through both of these holes 41 and 42.
  • a plunger housing 44 abuts the periphery of the diaphragm 34 holding it tightly against the valve housing 21, forming a water-tight seal between the periphery of the diaphragm and the valve housing as well as the plunger housing.
  • the plunger housing 44 includes a cylindrical portion 55 extending centrally therefrom and terminating at a closed end. Cavity 46 is formed by the plunger housing 44, retainer 36 and diaphragm 34.
  • a conventional solenoid coil assembly 50 encircles the cylindrical portion 55 of the plunger housing 44 and includes an electrical coil 52 wound onto a plastic spool 53.
  • a U-shaped bracket 54 partially encompasses the coil 52 and has three screws (not shown) fastening the solenoid coil assembly 50 to the valve housing 21.
  • a cylindrical solenoid plunger 56 formed of magnetic material, is within the cylindrical portion 55 of the plunger housing.
  • the solenoid plunger has a resilient button 57 at one end which is biased against the retainer 36 by a spring 58 to seal the central aperture 38 when the solenoid coil 52 is deenergized.
  • the solenoid coil assembly 50 further includes a metallic plug 59 within the central opening of the spool 53 and across the end of the cylindrical portion 55 of the insert 44.
  • the infrared proximity detector 14 is located within the faucet body 12 behind a plastic window 17 which is transparent to infrared radiation.
  • a temperature sensor 60 such as a thermistor, extends through an opening in the valve housing 21 to sense the temperature of the water within the outlet chamber 23. The resistivity of the temperature sensor 60 varies with the water temperature.
  • An electrical control circuit is mounted on a printed circuit board 61 within the inner chamber 18 of the faucet housing 12. The details of this circuit are shown in Figure 3.
  • the control circuit is built around a commercially available microcomputer 62 which includes an integral analog-to-digital converter and a memory for storing a control program for the faucet.
  • An RC circuit consisting of resistor 65 and capacitor 66 is coupled to the clock input terminals of the microcomputer 62.
  • the temperature sensor 60 is connected to the analog-to- digital converter input of the microcomputer 62.
  • the analog-to-digital converter also receives a reference voltage from a voltage divider 64 for use in digitizing the signal from the temperature sensor 60.
  • the proximity detector 14 comprises an infrared light emitting diode (IR LED) 68 which is driven by an oscillator circuit 69 to emit pulses of light at a fixed frequency.
  • the infrared light from the LED 68 is transmitted through the window 17 of the faucet housing ( Figure 2) and radiates in a conical pattern in front of the faucet.
  • the proximity sensor array detector 14 also includes at least one infrared detector 70 which changes its conductivity in response to infrared light. If a wider sensing region is desired, additional detectors can be incorporated.
  • the infrared detector 70 is coupled to an input of a frequency detector 72 which is tuned to detect a pulsed signal having the same frequency as oscillator 69.
  • the frequency detector prevents ambient infrared light from triggering the circuit to open the solenoid valve.
  • the output signal of the frequency detector 72 is coupled by line 73 to an input of microcomputer 62 and indicates when light is reflected from LED 68 to the infrared detector 70.
  • the microcomputer 62 has two four-bit latched output ports, each bit line of which is coupled to one of the LED's in the display array 16. Another latched output line of the microcomputer 62 is connected to the input of a solenoid driver 74 whose output is coupled to the coil 52 of the solenoid assembly 50.
  • the control circuit also includes a power supply 75 which converts 120 volt alternating line current into the proper low DC voltage levels for powering the control circuit.
  • the high voltage portions of the power supply 75 are located away from the faucet body 12 to minimize the electrical shock hazard.
  • the power supply 57 also includes a power-on reset circuit that emits a pulse on line 76 for a brief period following the initial application of electricity to reset the microcomputer 62.
  • the modular configuration of the faucet 10 facilitates servicing its electrical and mechanical components. With the valve stem 24 uncoupled from the water supply and the lavatory 11, the base 15 can be removed from the faucet body 12. In this state of disassembly, the valve assembly 20 can be removed from within the faucet body by pulling the assembly out of engagement with the opening 19 in the inner wall 25.
  • valve assembly 20 By providing a sliding engagement of the valve assembly 20 with the faucet body 12 at opening 19, a more compact faucet body can be used than if a threaded interface was employed.
  • the inner chamber 18 of the faucet body has to be enlarged to allow the valve assembly to turn as it threaded into the opening 1.
  • the valve assembly 20 can be further disassembled to gain access to the diaphragm 34 or to replace the solenoid assembly 50.
  • the printed circuit board 61 can also be removed from the housing 12.
  • the operation of the faucet 10 will be described in terms of the flow chart in Figures 4A and 4B in conjunction with Figures 2 and 3.
  • the flow chart depicts the control program stored within the memory of the microcomputer 62.
  • the execution of the control program commences at step 100 where the microcomputer tests the input bit from the frequency detector 72 to determine if infrared light from the IR LED 68 has been reflected by an object in front of the faucet .
  • the frequency detector 72 provides a positive light detection signal to the microcomputer only when infrared light pulses are received at the same frequency as the oscillator 69.
  • the frequency detector 72 thereby prevents ambient infrared radiation from falsely opening the faucet . If the output of the frequency detector 72 does not indicate that proper infrared light has been detected, the program continues to cycle through the detection step 100.
  • step 102 the microcomputer 62 energizes the solenoid coil 52 by sending a positive output signal to driver 74.
  • the solenoid coil 52 when the solenoid coil 52 is energized, a magnetic field is created which draws the plunger 56 into the coil and away from abutment against the diaphragm retainer 36. This allows the pressurized water within the cavity 46 on the solenoid side of the diaphragm 34 to escape through the retainer aperture 38 into the outlet chamber 23.
  • the metering hole 41 is restricted by pin 40 so that water escaping through aperture 38 cannot be replaced as quickly by water from inlet 22.
  • a first software timer is started at step 104.
  • the first timer provides a safeguard so that after a given interval, the diaphragm 34 will be closed against the valve seat regardless of the continued presence of an object being detected. This prevents the water from flowing continuously if an object is left in front of the faucet.
  • the first timer is started, it is initialized for a time interval (e.g. thirty seconds) which is sufficiently long to enable a user to wash his or her hands. Thereafter, the timer is periodically decremented at a fixed rate so that it will reach zero when the selected interval has expired.
  • the microcomputer 62 reads the output from its integral analog-to-digital converter to determine the temperature of the water in the output chamber 23.
  • the sensed temperature is then used to set various ones of the output port lines which are connected to the display 16 to provide an indication of the sensed temperature. For example, if the range of temperatures for the outlet water is between 70 and 150 degrees Fahrenheit, each light emitting diode of the array 16 corresponds to a ten degree increment within that range. In this case, if the temperature of the output water is 130 degrees Fahrenheit, six LED's will be illuminated.
  • the microcomputer 62 checks the output from the frequency detector 72 again at step 108 to determine if infrared light from the IR LED 68 is still being received. If this light is no longer being detected, the program branches to step 110. A branch at this point indicates that the object, which triggered the flow of water, has been removed from the sensing region of the faucet. This may occur if the user has left the lavatory or if the user's hands have been removed temporarily from beneath the faucet, for example to apply soap. Since it is not desirable to turn off the water if the user has merely removed his hands to apply soap, the control program provides a delay before turning off the water. If an object is again detected within this delay period, the water is not turned off.
  • step 110 the off flag
  • the program branches to step 111 where it is set and then a second software timer for the shut-off delay is started at step 112.
  • the second timer may be initialized to provide a three second delay for shutting off the water.
  • step 106 the program returns to step 106 to update the temperature display and again check for the receipt of infrared light at step 108. If at step 108, pulsed infrared light is still not being sensed, the program advances through step 110 to step 113. At this point, the second timer is checked to determine if it has reached zero indicating that light has not been received for the three second water shut-off delay period. If this timer has not reached zero, the program execution returns from step 113 to step 106. However, when the second timer indicates that the shut-off delay interval has elapsed, the program advances to steps 114 and 115 where microcomputer 62 turns off the temperature display and resets the off flag.
  • the microprocessor 62 deenergizes the solenoid coil 52 to close the faucet valve at step 116.
  • the solenoid coil 52 is not generating a magnetic field
  • the force of spring 58 presses the sealing button 57 against the diaphragm retainer 36 (see Figure 2) .
  • This action seals the retainer aperture 38 causing the pressure in cavity 46 to increase above the pressure in outlet chamber 23 due to the water flow through holes 40 and 41.
  • the diaphragm 34 is forced against the valve seat 30 closing the passage between the inlet and outlet chambers 22 and 23.
  • the tapered pin 40 increasingly restricts the water flow through metering hole 41. This action reduces the speed of the final movement of the diaphragm 34 thereby minimizing the concussive shock (and thus noise) as the valve closes.
  • the pin 40 prevents particles in the water from blocking the metering holes 41 and 42.
  • step 118 the control program execution will advance from step 108 to step 118.
  • the off flag is reset in the event that it had been previously set by the temporary removal of the user's hands.
  • the program then checks the first software timer at step 119 to determine if the water has been turned on for longer than the thirty second operating interval. If the first timer has not expired, the program execution returns to step 106 to update the temperature display and again sense for infrared pulses at step 108.
  • step 120 the solenoid coil 52 is deenergized and the valve closed, notwithstanding the continued presence of the object being detected.
  • the solenoid coil 52 is deenergized and the valve closed, notwithstanding the continued presence of the object being detected.
  • the microcomputer 62 After closing the valve at step 120, the microcomputer 62 resets latches output port 63 so that temperature is not displayed when the valve is closed. The program then advances to step 122 on Figure 4B.
  • the section of the control program depicted in Figure 4B periodically opens the valve for a brief interval until the object is removed from the sensing area of the faucet 10.
  • the microcomputer 62 at step 122 initializes a third software timer with a relatively long interval, on the order of two hours for example.
  • the valve remains closed as long as the presence of the object continues to be sensed.
  • the execution of the control program enters a loop in which tests for the continued detection of pulsed infrared light at step 124. If light ceases to be detected, the program execution immediately returns to step 100 at the beginning of the control program. However, if pulsed light from IR LED 68 continues to be detected at step 124, the third timer is tested at step 125. If this timer has not expired, the program loops back to step 124.
  • step 126 the valve is opened by energizing the solenoid coil 52.
  • step 1208 a fourth software timer is started to measure a relatively small interval on the order of one to three seconds, during which the valve remains open.
  • the microcomputer 62 continues to sense the value of the fourth timer at step 130 until it has expired; at which point the program advances to step 132 where the valve is closed.
  • the program execution returns to step 122 where the third software timer is initialized for another relatively long interval.
  • the microprocessor 62 continuously executes the program loop of Figure 4B. In order to exit this loop, the object must be removed from the sensing region of the faucet upon which event the program execution returns from step 124 to step 100.
  • the control circuit By periodically opening the faucet 10 for a short interval, the control circuit provides an indication that an object remains within its sensing area, enabling a maintenance person to be warned of this condition and remove the object.
  • the cycling between open and closed states of the valve also distinguishes the mode of operation in which the faucet perceives the continued presence of an object from the condition where the faucet is inoperative due to a malfunction.
  • the relatively long interval of inoperability may be shortened in order to provide a more frequent indication of this mode of operation.

Abstract

A faucet (10) has a body (12) with a hollow inner cavity (18) and a spout (13) which opens into the inner cavity (18). A valve assembly (20) is located within the inner cavity (18) to control the flow of water from a source into the spout (13). The valve assembly (20) comprises a housing (21) with an inlet chamber (22) which opens into a ring-shaped channel (32), an outlet chamber (23) having an opening (33) centrally located with respect to the ring of the channel, and a diaphragm (34) to selectively close the communication of the inlet (22) and outlet (23) chambers. A solenoid (50) includes a plunger (56) that is biased by a spring (58) against the diaphragm (34) and an electromagnetic coil (52) to pull the plunger (56) away fron the diaphragm (34). A proximity sensor (14) is included to detect the presence of an object adjacent the faucet (10) and energize the coil (52). A safeguard alarm mechanism (61) is provided to deenergize the coil (52) after a given interval if the object continues to be detected and thereafter periodically briefly energize the solenoid (50) until the object is removed.

Description

SOLENOID OPERATED FAUCET
Bacftgrg-ffld Of The Invention
The present invention relates to faucets which incorporate a solenoid valve enabling the faucet to be operated by an electrical signal. In a preferred form, it relates to such faucets controlled by a proximity detector which senses the presence of an object adjacent the faucet and activates the solenoid valve.
In hospitals, public rest rooms, and other facilities, it is desirable to provide a lavatory faucet which can be turned on and off without requiring the user to touch the faucet. The prior art is replete with devices for sensing the presence of a user and in response thereto activating a solenoid valve coupled to a faucet. A common sensing technique involves transmitting an infrared light beam into a region in front of the faucet where a user may place his hands . A sensor is mounted either in or adjacent the faucet to detect the infrared light reflected by the user, thereby sensing the presence of a user in front of the faucet.
In response to sensing the reflected light, the solenoid valve is opened causing water to flow from the faucet. When the detection of reflected light ceases, the valve is deenergized. A problem with such proximity activated faucets is that an inanimate object can be left within the sensing region (e.g. by vandals) thereby causing the water to flow continuously. This activation of the faucet not only wastes water, but may result in water overflowing the lavatory if some object is also blocking the drain and overflow openings. The previous electrically activated faucets typically incorporated the solenoid valve assembly beneath the wash basin, totally separate from the faucet. In addition, the proximity sensing circuitry was similarly housed in a separate enclosure. It is desirable in many applications of such faucets to reduce the amount of space consumed by the various components and integrate them into the faucet housing. However in doing so, it is important to be able to gain access to the different components in order to perform routine maintenance.
Other problems with the prior art related to the operating of the closure mechanism of the solenoid valve, especially in the design of the metering hole used to permit closure.
fi_mmary Of ____£ Invention
A faucet has a body within which is located a separable valve housing. The valve housing forms an inlet chamber, which opens into an annular channel, and an outlet chamber with a opening centrally located relative to the annular channel. A surface between the channel and the outlet chamber opening defines a valve seat. A portion of the valve housing extends into a spout of the faucet body and has an aperture providing a conduit between the outlet chamber and the spout.
A resilient diaphragm abuts the valve seat and the housing to selectively seal the outlet chamber from the inlet chamber. This diaphragm has a centrally located aperture which communicates with the outlet chamber and has a metering aperture which opens into the inlet chamber. A taper pin on the valve housing passes through and restricts metering aperture when the diaphragm abuts the valve seat. A diaphragm retainer is positioned in the central aperture of the diaphragm and includes an aperture which communicates with the outlet chamber.
A solenoid assembly is mounted on the valve housing to form a cavity therebetween into which the metering aperture and the diaphragm retainer aperture communicate. The solenoid assembly includes a plunger biased by a spring against the retainer disc to releasably seal its aperture. An electrical coil extends around the plunger.
The preferred embodiment of the faucet incorporates a proximity sensor for detecting the presence of an object adjacent the faucet and in response thereto for energizing the electrical coil. The proximity sensor includes a safety shut off circuit which deenergizes the coil after a preset period even though an object may continue to be detected. Thereafter, the faucet is periodically opened as an alarm system until the object is removed.
A general objective of the present invention is to provide a solenoid operated faucet in which the solenoid is enclosed within the faucet housing. It is another objective to create a modular faucet assembly which can be disassembled easily for servicing.
Yet another objective of the present invention is to provide a proximity detector which will sense the presence of a user in front of the faucet and activate the solenoid to open the valve.
A still further objective is to provide a mechanism which minimizes the undesirable effects caused by an object being left within the sensing region of the faucet. Brief Description Of The Drawings
FIGURE 1 is an isometric view of a faucet according to the present invention mounted on a lavatory;
FIGURE 2 is a vertical cross sectional view of the faucet in Figure 1;
FIGURE 3 is a schematic block diagram of the electrical control circuit of the present invention; and
FIGURES 4A and 4B are a flowchart of a program for the control circuit microcomputer.
Descrip ion Ω__ _-_-S Preferred Embodiment
With initial reference to Figure 1, a faucet 10 is mounted on a lavatory 11. The faucet includes a body 12 having a tubular spout 13 extending over the bowl of the lavatory. At the front of the faucet body 12, beneath the spout 13, is a conventional infrared proximity detector 14 which senses the presence of an object, such as a person's hands, beneath the spout 13. The faucet 10 also has a base 15 on which the faucet body 12 is mounted. The base includes a temperature display 16 comprising an array of light emitting diodes (LED) forming a bar graph which provides a visual indication of the temperature of the water flowing from the spout. As shown in Figure 2, the metal faucet body 12 has a hollow inner chamber 18 communicating with the spout 13 via a circular opening 19 in inner wall 25. Located within the inner chamber 18 is a solenoid valve assembly 20, that includes a valve housing 21 formed of a plastic material and having an inlet chamber 22 and an outlet chamber 23. The upper end of the valve housing 21 adjacent the outlet chamber 23 is threaded into an adapter 26. The adapter 26 has a non-threaded cylindrical portion 27 slid into the circular opening 19 between the inner chamber 18 and the spout 13. The cylindrical portion 27 has an external peripheral groove 28 within which an 0-ring 29 is located to provide a water-tight seal between the adapter 26 and the faucet housing wall 25. Alternatively, the valve housing 21 and the adapter 26 can be formed as a single unit. Therefore, the adapter 26 can be considered as part of the valve housing.
The lower end of the valve housing 21 is threaded into to a brass tube 24 which extends through aperture 47 in the base 15 and couples a water supply pipe (not illustrated) to the inlet chamber 22. As the faucet 10 has a single water inlet chamber 22, hot and cold water may have to be premixed upstream from the faucet . Alternatively, a mixing valve could be included in the faucet body 12. The tube 24 has an external flange 48 which is received in a rim 49 around the base aperture 47. Alternatively, the flange 48 can be located on the lower end of the valve housing 21. The engagement of the flange 48 and the rim 49 holds the valve assembly 20 within the faucet preventing the cylindrical portion 27 from sliding out of the opening 19. Both the inlet chamber 22 and the outlet chamber 24 communicate coaxially through the middle side of the valve housing 21. The inlet chamber 22 communicates with a ring-shaped channel 32 and the outlet chamber 23 opens into the center 33 of the ring shaped channel. The intersection between the two openings forms a circular valve seat 30.
A resilient diaphragm 34 extends across the opening in the side of the valve housing 21. The diaphragm 34 has a central aperture 35 through which a disk shaped retainer 36 extends with the diaphragm positioned in an external groove 37 of the retainer. The retainer is tightly fitted within the central opening of the diaphragm so as to provide a water-tight seal therebetween. The diaphragm retainer 36 has a central aperture 38 extending therethrough providing a passage connecting the outlet chamber 23 with a cavity 46 on the opposite side of the diaphragm. The retainer 36 extends across the surface of the diaphragm 34 which is remote from the valve seat 30. The diaphragm 34 also has a metering hole 41 through it aligned with a similar hole 42 in the retainer 36. The valve housing 21 has a tapered pin 40 extending through both of these holes 41 and 42.
A plunger housing 44 abuts the periphery of the diaphragm 34 holding it tightly against the valve housing 21, forming a water-tight seal between the periphery of the diaphragm and the valve housing as well as the plunger housing. The plunger housing 44 includes a cylindrical portion 55 extending centrally therefrom and terminating at a closed end. Cavity 46 is formed by the plunger housing 44, retainer 36 and diaphragm 34.
A conventional solenoid coil assembly 50 encircles the cylindrical portion 55 of the plunger housing 44 and includes an electrical coil 52 wound onto a plastic spool 53. A U-shaped bracket 54 partially encompasses the coil 52 and has three screws (not shown) fastening the solenoid coil assembly 50 to the valve housing 21. A cylindrical solenoid plunger 56, formed of magnetic material, is within the cylindrical portion 55 of the plunger housing. The solenoid plunger has a resilient button 57 at one end which is biased against the retainer 36 by a spring 58 to seal the central aperture 38 when the solenoid coil 52 is deenergized. The solenoid coil assembly 50 further includes a metallic plug 59 within the central opening of the spool 53 and across the end of the cylindrical portion 55 of the insert 44.
The infrared proximity detector 14 is located within the faucet body 12 behind a plastic window 17 which is transparent to infrared radiation. A temperature sensor 60, such as a thermistor, extends through an opening in the valve housing 21 to sense the temperature of the water within the outlet chamber 23. The resistivity of the temperature sensor 60 varies with the water temperature.
An electrical control circuit is mounted on a printed circuit board 61 within the inner chamber 18 of the faucet housing 12. The details of this circuit are shown in Figure 3. The control circuit is built around a commercially available microcomputer 62 which includes an integral analog-to-digital converter and a memory for storing a control program for the faucet. An RC circuit consisting of resistor 65 and capacitor 66 is coupled to the clock input terminals of the microcomputer 62. The temperature sensor 60 is connected to the analog-to- digital converter input of the microcomputer 62. The analog-to-digital converter also receives a reference voltage from a voltage divider 64 for use in digitizing the signal from the temperature sensor 60. The proximity detector 14 comprises an infrared light emitting diode (IR LED) 68 which is driven by an oscillator circuit 69 to emit pulses of light at a fixed frequency. The infrared light from the LED 68 is transmitted through the window 17 of the faucet housing (Figure 2) and radiates in a conical pattern in front of the faucet. The proximity sensor array detector 14 also includes at least one infrared detector 70 which changes its conductivity in response to infrared light. If a wider sensing region is desired, additional detectors can be incorporated. The infrared detector 70 is coupled to an input of a frequency detector 72 which is tuned to detect a pulsed signal having the same frequency as oscillator 69. The frequency detector prevents ambient infrared light from triggering the circuit to open the solenoid valve. The output signal of the frequency detector 72 is coupled by line 73 to an input of microcomputer 62 and indicates when light is reflected from LED 68 to the infrared detector 70. The microcomputer 62 has two four-bit latched output ports, each bit line of which is coupled to one of the LED's in the display array 16. Another latched output line of the microcomputer 62 is connected to the input of a solenoid driver 74 whose output is coupled to the coil 52 of the solenoid assembly 50. The control circuit also includes a power supply 75 which converts 120 volt alternating line current into the proper low DC voltage levels for powering the control circuit. As is a customary practice, the high voltage portions of the power supply 75 are located away from the faucet body 12 to minimize the electrical shock hazard. The power supply 57 also includes a power-on reset circuit that emits a pulse on line 76 for a brief period following the initial application of electricity to reset the microcomputer 62. As illustrated in Figure 2, the modular configuration of the faucet 10 facilitates servicing its electrical and mechanical components. With the valve stem 24 uncoupled from the water supply and the lavatory 11, the base 15 can be removed from the faucet body 12. In this state of disassembly, the valve assembly 20 can be removed from within the faucet body by pulling the assembly out of engagement with the opening 19 in the inner wall 25. By providing a sliding engagement of the valve assembly 20 with the faucet body 12 at opening 19, a more compact faucet body can be used than if a threaded interface was employed. When a threaded interface is used, the inner chamber 18 of the faucet body has to be enlarged to allow the valve assembly to turn as it threaded into the opening 1. The valve assembly 20 can be further disassembled to gain access to the diaphragm 34 or to replace the solenoid assembly 50. The printed circuit board 61 can also be removed from the housing 12.
The operation of the faucet 10 will be described in terms of the flow chart in Figures 4A and 4B in conjunction with Figures 2 and 3. The flow chart depicts the control program stored within the memory of the microcomputer 62. The execution of the control program commences at step 100 where the microcomputer tests the input bit from the frequency detector 72 to determine if infrared light from the IR LED 68 has been reflected by an object in front of the faucet . The frequency detector 72 provides a positive light detection signal to the microcomputer only when infrared light pulses are received at the same frequency as the oscillator 69. The frequency detector 72 thereby prevents ambient infrared radiation from falsely opening the faucet . If the output of the frequency detector 72 does not indicate that proper infrared light has been detected, the program continues to cycle through the detection step 100.
Once infrared light reflected from the emitter 68 has been detected at step 100, the program advances to step 102 where the microcomputer 62 energizes the solenoid coil 52 by sending a positive output signal to driver 74. With reference to Figure 2, when the solenoid coil 52 is energized, a magnetic field is created which draws the plunger 56 into the coil and away from abutment against the diaphragm retainer 36. This allows the pressurized water within the cavity 46 on the solenoid side of the diaphragm 34 to escape through the retainer aperture 38 into the outlet chamber 23. It is noted that the metering hole 41 is restricted by pin 40 so that water escaping through aperture 38 cannot be replaced as quickly by water from inlet 22. With the plunger 36 no longer pressing against the retainer 36, and with the release of the pressure within cavity 46, the pressure of the water within the inlet chamber 22 pushes the diaphragm 34 toward the solenoid assembly 50 and away from abutment with the valve seat 30. This movement of the diaphragm 34 opens a more direct passage between the inlet chamber 22 and the outlet chamber 23 allowing water to flow through faucet and out the spout 13. This passage remains opened as long as the solenoid coil 52 is energized.
Referring once again to the flow chart of Figure 4, after the valve is opened, a first software timer is started at step 104. The first timer provides a safeguard so that after a given interval, the diaphragm 34 will be closed against the valve seat regardless of the continued presence of an object being detected. This prevents the water from flowing continuously if an object is left in front of the faucet. When the first timer is started, it is initialized for a time interval (e.g. thirty seconds) which is sufficiently long to enable a user to wash his or her hands. Thereafter, the timer is periodically decremented at a fixed rate so that it will reach zero when the selected interval has expired. At step 106, the microcomputer 62 reads the output from its integral analog-to-digital converter to determine the temperature of the water in the output chamber 23. The sensed temperature is then used to set various ones of the output port lines which are connected to the display 16 to provide an indication of the sensed temperature. For example, if the range of temperatures for the outlet water is between 70 and 150 degrees Fahrenheit, each light emitting diode of the array 16 corresponds to a ten degree increment within that range. In this case, if the temperature of the output water is 130 degrees Fahrenheit, six LED's will be illuminated.
The microcomputer 62 checks the output from the frequency detector 72 again at step 108 to determine if infrared light from the IR LED 68 is still being received. If this light is no longer being detected, the program branches to step 110. A branch at this point indicates that the object, which triggered the flow of water, has been removed from the sensing region of the faucet. This may occur if the user has left the lavatory or if the user's hands have been removed temporarily from beneath the faucet, for example to apply soap. Since it is not desirable to turn off the water if the user has merely removed his hands to apply soap, the control program provides a delay before turning off the water. If an object is again detected within this delay period, the water is not turned off. This is accomplished by initially testing a flag, designated as the off flag, which is stored within the memory of the microcomputer 62 and which indicates the first time that light is no longer detected after the presence of an object had been sensed. If at step 110, the off flag is not found to be set, the program branches to step 111 where it is set and then a second software timer for the shut-off delay is started at step 112. The second timer may be initialized to provide a three second delay for shutting off the water.
Once the second timer has been started, the program returns to step 106 to update the temperature display and again check for the receipt of infrared light at step 108. If at step 108, pulsed infrared light is still not being sensed, the program advances through step 110 to step 113. At this point, the second timer is checked to determine if it has reached zero indicating that light has not been received for the three second water shut-off delay period. If this timer has not reached zero, the program execution returns from step 113 to step 106. However, when the second timer indicates that the shut-off delay interval has elapsed, the program advances to steps 114 and 115 where microcomputer 62 turns off the temperature display and resets the off flag.
Next the microprocessor 62 deenergizes the solenoid coil 52 to close the faucet valve at step 116. When the solenoid coil 52 is not generating a magnetic field, the force of spring 58 presses the sealing button 57 against the diaphragm retainer 36 (see Figure 2) . This action seals the retainer aperture 38 causing the pressure in cavity 46 to increase above the pressure in outlet chamber 23 due to the water flow through holes 40 and 41. As a result of this pressure differential the diaphragm 34 is forced against the valve seat 30 closing the passage between the inlet and outlet chambers 22 and 23. As the diaphragm 34 approaches the valve seat 30, the tapered pin 40 increasingly restricts the water flow through metering hole 41. This action reduces the speed of the final movement of the diaphragm 34 thereby minimizing the concussive shock (and thus noise) as the valve closes. In addition, the pin 40 prevents particles in the water from blocking the metering holes 41 and 42.
As long as light pulses from the IR LED 68 continue to be reflected by an object to infrared detector 70, the control program execution will advance from step 108 to step 118. At this point, the off flag is reset in the event that it had been previously set by the temporary removal of the user's hands. The program then checks the first software timer at step 119 to determine if the water has been turned on for longer than the thirty second operating interval. If the first timer has not expired, the program execution returns to step 106 to update the temperature display and again sense for infrared pulses at step 108.
If the valve remains open for more than thirty seconds and the object's presence is still detected, the program will advance from step 119 to step 120 where the solenoid coil 52 is deenergized and the valve closed, notwithstanding the continued presence of the object being detected. In this case, it is assumed that an inanimate object has been left within the sensing area of the faucet. However, if a user is still at the lavatory 11 and desires additional water, the users hands merely have to be removed from the sensing region of the faucet 10 and then returned to that region to restore the flow of water. After closing the valve at step 120, the microcomputer 62 resets latches output port 63 so that temperature is not displayed when the valve is closed. The program then advances to step 122 on Figure 4B. The section of the control program depicted in Figure 4B periodically opens the valve for a brief interval until the object is removed from the sensing area of the faucet 10. The microcomputer 62 at step 122 initializes a third software timer with a relatively long interval, on the order of two hours for example.
During this interval the valve remains closed as long as the presence of the object continues to be sensed. After starting the third timer, the execution of the control program enters a loop in which tests for the continued detection of pulsed infrared light at step 124. If light ceases to be detected, the program execution immediately returns to step 100 at the beginning of the control program. However, if pulsed light from IR LED 68 continues to be detected at step 124, the third timer is tested at step 125. If this timer has not expired, the program loops back to step 124.
Once this relatively long interval has elapsed as indicated by a third timer reaching zero, the program execution advances to step 126 where the valve is opened by energizing the solenoid coil 52. Then at step 128, a fourth software timer is started to measure a relatively small interval on the order of one to three seconds, during which the valve remains open. The microcomputer 62 continues to sense the value of the fourth timer at step 130 until it has expired; at which point the program advances to step 132 where the valve is closed. Upon closing the valve, the program execution returns to step 122 where the third software timer is initialized for another relatively long interval.
As long as the presence of the object continues to be sensed by the control circuitry, the microprocessor 62 continuously executes the program loop of Figure 4B. In order to exit this loop, the object must be removed from the sensing region of the faucet upon which event the program execution returns from step 124 to step 100. By periodically opening the faucet 10 for a short interval, the control circuit provides an indication that an object remains within its sensing area, enabling a maintenance person to be warned of this condition and remove the object. The cycling between open and closed states of the valve also distinguishes the mode of operation in which the faucet perceives the continued presence of an object from the condition where the faucet is inoperative due to a malfunction. The relatively long interval of inoperability may be shortened in order to provide a more frequent indication of this mode of operation.

Claims

CL IMS
1. A faucet comprising: a faucet body having an inner chamber and a spout which opens into the inner chamber at an aperture through an inner wall of said body; a valve housing, mounted substantially entirely within the inner chamber of said faucet body and separable therefrom, having a inlet chamber opening transversely into an external annular channel and an outlet chamber having a first opening centrally located relative to said annular channel, said valve housing a first portion slidably disposed in the aperture and a second portion secured to said faucet body, said valve housing having an annular surface between the channel and the outlet chamber first opening thereby defining a valve seat; a resilient diaphragm having a first surface that releasably engages the valve seat and has a periphery which sealably engages said valve housing, said diaphragm including a central aperture and including a metering aperture communicating with the inlet chamber; a tapered pin extending from said valve housing into the metering aperture; a diaphragm retainer in the central aperture of said diaphragm and having an aperture therethrough which communicates with the outlet; and a solenoid assembly mounted on said valve housing to form a cavity between said diaphragm and said solenoid assembly into which the metering aperture communicates, said solenoid assembly including a plunger biased against said diaphragm retainer to releasably seal the aperture of said diaphragm retainer, and including a electrical coil around the plunger.
2. The faucet as recited in claim 1 wherein said first portion engages the inner wall of said faucet body thereby sealing the inner chamber from the spout with the portion of the valve housing having an aperture therethrough to provide a passage between the outlet chamber and the spout .
3. The faucet as recited in claim 1 wherein said first portion extends into the aperture of said faucet body thereby sealing the inner chamber from the spout with the portion of the valve housing having an aperture therethrough to provide a passage between the outlet chamber and the spout.
4. The faucet as recited in claim 1 wherein said valve housing is mounted within said faucet body with the outlet chamber positioned above the inlet chamber.
5. The faucet as recited in claim 1 further comprising a proximity sensing means for detecting the presence of an object adjacent the faucet and in response thereto for energizing the electrical coil.
6. The faucet as recited in claim 5 wherein said proximity sensing means comprises means for deenergizing the electrical coil if the presence of the object continues to be sensed for a predefined interval of time, and thereafter periodically energizing the electrical coil for a second predefined interval of time until the presence of the object is no longer sensed.
7. A faucet comprising: a housing having an inlet chamber and an outlet chamber communicating with the inlet chamber at an opening; a solenoid valve assembly mounted adjacent said housing which releasably seals the inlet chamber from the outlet chamber for controlling fluid flow therebetween; means for sensing the presence of an object in the proximity of said faucet and emitting a signal indicative of that presence; means, responsive to the signal from said means for sensing, for energizing said solenoid valve assembly to permit fluid flow when the presence of an object is sensed; first means for deenergizing the solenoid valve assembly to prevent fluid flow if after the presence of an object is detected, that presence is not detected for a first interval of time; and second means for deenergizing said solenoid valve assembly to prevent fluid flow after the solenoid valve assembly has been continuously energized for a second interval, notwithstanding the continued presence of the object being sensed, and thereafter periodically energizing said solenoid valve assembly to permit fluid flow for a third interval of time until the presence of the object is no longer sensed.
8. A faucet comprising: a base member: a faucet body, attached to said base member, having an inner chamber and a spout which opens into the inner chamber at an aperture; a valve housing, within the inner chamber of said faucet body and separable therefrom, having a inlet chamber opening into an external annular channel and an outlet chamber having a first opening centrally located relative to said annular channel, said housing having an annular surface between the channel and the outlet chamber first opening thereby defining a valve seat, said valve housing also having a first end portion extending into the aperture of said faucet body thereby sealing the inner chamber from the spout with the first end portion having a aperture therethrough to provide a passage between the outlet chamber and the spout, and having a second end portion; a tube attached to the second end portion of said valve housing in communication with the inlet chamber; one of said valve housing and said tube abutting said base thereby retaining said valve housing within said faucet body and holding said first end portion in the aperture of said faucet body; a resilient diaphragm having a first surface that releasably engages the valve seat and has a periphery which sealably engages said valve housing, said diaphragm including a central aperture and a metering aperture communicating with the inlet chamber; a tapered pin extending from said valve housing into the metering aperture; a diaphragm retainer in the central aperture of said diaphragm and having an aperture therethrough which communicates with the outlet chamber; a solenoid assembly mounted on said valve housing to form a cavity between said diaphragm and said solenoid assembly into which the metering aperture communicates, said solenoid assembly including a plunger biased by a spring against said diaphragm retainer to releasably seal the aperture in said diaphragm retainer and including a electrical coil around the plunger; and a means for sensing the presence of a user adjacent the faucet and in response thereto for energizing said electrical coil.
9. The faucet as recited in claim 8 further comprising a first means for deenergizing the solenoid valve assembly if after the presence of an object is detected, that presence is not detected for a first interval of time.
10. The faucet as recited in claim 9 further comprising a second means for deenergizing said solenoid valve assembly after the solenoid valve assembly has been continuously energized for second interval, notwithstanding the continued presence of the object being sensed, and thereafter periodically energizing said solenoid valve for a third interval of time until the presence of the object is no longer sensed.
PCT/US1990/002437 1989-05-18 1990-05-07 Solenoid operated faucet WO1990014473A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
AT90908363T ATE91162T1 (en) 1989-05-18 1990-05-07 WATER TAP CONTROLLED BY A MAGNETIC COIL.

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US353,569 1989-05-18
US07/353,569 US4915347A (en) 1989-05-18 1989-05-18 Solenoid operated faucet

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WO1990014473A1 true WO1990014473A1 (en) 1990-11-29

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US (1) US4915347A (en)
EP (2) EP0472619B1 (en)
JP (1) JPH04507120A (en)
AT (1) ATE129539T1 (en)
CA (1) CA2017009C (en)
DE (2) DE69023248T2 (en)
ES (2) ES2079767T3 (en)
GR (1) GR900100381A (en)
WO (1) WO1990014473A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0531646A1 (en) * 1991-07-31 1993-03-17 Hansa Metallwerke Ag Circuit arrangement for contactless controlling of a sanitary fitting and method for driving

Families Citing this family (104)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE4019927A1 (en) * 1990-06-22 1992-01-09 Hansa Metallwerke Ag METHOD FOR OPERATING A CIRCUIT ARRANGEMENT FOR A CONTACTLESSLY CONTROLLED SANITARY ARMATURE AND CIRCUIT ARRANGEMENT FOR IMPLEMENTING THIS METHOD
US5195720A (en) * 1992-07-22 1993-03-23 Sloan Valve Company Flush valve cover
US5349993A (en) * 1992-10-13 1994-09-27 Polster, Lieder, Woodruff & Lucchesi, Lc. Beverage dispensing apparatus and retrofitting kit
US5397099A (en) * 1993-03-31 1995-03-14 Pilolla; Joseph J. Sink arrangement with faucet having dual operational mode
US5508510A (en) * 1993-11-23 1996-04-16 Coyne & Delany Co. Pulsed infrared sensor to detect the presence of a person or object whereupon a solenoid is activated to regulate fluid flow
DE19508644B4 (en) * 1995-03-10 2004-05-19 Aquis Sanitär AG Water outlet fitting
US5555912A (en) * 1995-04-20 1996-09-17 Zurn Industries, Inc. Spout assembly for automatic faucets
US5984262A (en) * 1996-07-31 1999-11-16 Arichell Technologies, Inc. Object-sensor-based flow-control system employing fiber-optic signal transmission
US5738138A (en) * 1997-03-10 1998-04-14 The Horton Company Reduced water hammer control valve
CA2304091A1 (en) * 1997-09-18 1999-03-25 Alexander Mayer Improvements in automated fluid flow systems
US5911240A (en) * 1997-10-27 1999-06-15 Kohler Co. Self-closing solenoid operated faucet
US6089538A (en) * 1998-01-02 2000-07-18 Fluid Management Systems, Inc. Solenoid valve having hard tube fluid channels in valve seat and flexible sealing diaphragm
US6202980B1 (en) 1999-01-15 2001-03-20 Masco Corporation Of Indiana Electronic faucet
KR100353901B1 (en) * 2000-05-24 2002-09-27 장길용 automatic valve
US20030088338A1 (en) * 2001-11-01 2003-05-08 Synapse, Inc. Apparatus and method for electronic control of fluid flow and temperature
WO2003048463A2 (en) * 2001-12-04 2003-06-12 Arichell Technologies, Inc. Electronic faucets for long-term operation
US6695281B2 (en) * 2001-12-03 2004-02-24 Edward Chuck Williams, Jr. Water flow control device incorporating water limiting valve
WO2003058102A1 (en) * 2001-12-26 2003-07-17 Arichell Technologies, Inc Bathroom flushers with novel sensors and controllers
HUP0201392A2 (en) * 2002-04-29 2004-03-01 KEROX-Multipolár II. Ipari és Kereskedelmi Kft. Mixing faucet with electromagnetic valve
WO2004005628A2 (en) * 2002-06-24 2004-01-15 Arichell Technologies, Inc. Automated water delivery systems with feedback control
US6675826B1 (en) 2003-01-25 2004-01-13 Frederic M. Newman Automatic flood prevention system
US7650653B2 (en) * 2005-11-14 2010-01-26 Geberit Technik Ag Modular electrically-operated faucet
US8006712B2 (en) * 2006-10-27 2011-08-30 Kum F Boey Faucet control system and method
US8096445B2 (en) * 2007-02-01 2012-01-17 Simplehuman, Llc Electric soap dispenser
US8109411B2 (en) * 2007-02-01 2012-02-07 Simplehuman, Llc Electric soap dispenser
US8720728B2 (en) 2007-03-09 2014-05-13 Simplehuman, Llc Trash can
GB2467661B (en) 2007-09-20 2013-02-13 Bradley Fixtures Corp Lavatory system
PT2042791E (en) * 2007-09-26 2010-09-21 Fluehs Drehtechnik Gmbh Lateral valve
WO2009049360A1 (en) * 2007-10-16 2009-04-23 Microflow International Pty Limited Valve diaphragm
US7819136B1 (en) * 2007-12-10 2010-10-26 Eddy Zachary P Hand washing timer
US8569980B2 (en) * 2008-02-01 2013-10-29 Simplehuman, Llc Trash can with power operated lid
US20090241248A1 (en) * 2008-03-28 2009-10-01 Donald Albert Vollmar Automatic shutoff assembly for a water closet
US20100138988A1 (en) * 2008-12-04 2010-06-10 Kelly David Holmes Radio controlled shower head
US20110010845A1 (en) * 2009-07-14 2011-01-20 Su Huang Inductive faucet of which a detection range is adjustable
EP2486194B1 (en) 2009-10-07 2022-08-24 Bradley Fixtures Corporation Lavatory system with hand dryer
US9032565B2 (en) 2009-12-16 2015-05-19 Kohler Co. Touchless faucet assembly and method of operation
CN101725755B (en) * 2009-12-16 2012-07-04 上海科勒电子科技有限公司 Automatic water outlet control device and automatic water outlet device
US9434538B2 (en) 2010-03-12 2016-09-06 Simplehuman, Llc Trash can
US9303391B2 (en) 2010-09-16 2016-04-05 Kohler Co. Faucet mount assembly
ES2882776T3 (en) 2011-03-04 2021-12-02 Simplehuman Llc Soap dispenser units with non-drip valve
USD659452S1 (en) 2011-03-04 2012-05-15 Simplehuman, Llc Soap pump
US9695579B2 (en) 2011-03-15 2017-07-04 Sloan Valve Company Automatic faucets
CN105804166B (en) 2011-03-15 2019-03-26 仕龙阀门公司 Automatic faucet
US9267736B2 (en) 2011-04-18 2016-02-23 Bradley Fixtures Corporation Hand dryer with point of ingress dependent air delay and filter sensor
US9170148B2 (en) 2011-04-18 2015-10-27 Bradley Fixtures Corporation Soap dispenser having fluid level sensor
US9074357B2 (en) 2011-04-25 2015-07-07 Delta Faucet Company Mounting bracket for electronic kitchen faucet
US10279996B2 (en) 2011-09-16 2019-05-07 Simplehuman, Llc Receptacle with low friction and low noise motion damper for lid
US9057184B2 (en) 2011-10-19 2015-06-16 Delta Faucet Company Insulator base for electronic faucet
US9265383B2 (en) 2012-02-08 2016-02-23 Simplehuman, Llc Liquid dispensing units
EP2823107A4 (en) 2012-03-07 2016-06-15 Moen Inc Electronic plumbing fixture fitting
US9790025B2 (en) 2012-03-09 2017-10-17 Simplehuman, Llc Trash can with clutch mechanism
USD693597S1 (en) 2012-03-09 2013-11-19 Simplehuman, Llc Soap pump
US8872459B2 (en) 2012-03-09 2014-10-28 Simplehuman, Llc Trash cans with variable gearing assemblies
USD674636S1 (en) 2012-03-09 2013-01-22 Simplehuman, Llc Soap pump
CA2808725C (en) 2012-03-09 2020-03-24 Simplehuman, Llc Trash cans with features to aid in actuation
ES2682022T3 (en) 2012-03-21 2018-09-18 Bradley Fixtures Corporation Pile and hand drying system
US9074698B2 (en) 2012-08-24 2015-07-07 Kohler Co. System and method to detect and communicate faucet valve position
US9062790B2 (en) 2012-08-24 2015-06-23 Kohler Co. System and method to position and retain a sensor in a faucet spout
US9341278B2 (en) 2012-08-24 2016-05-17 Kohler Co. System and method for manually overriding a solenoid valve of a faucet
EP2959197B8 (en) * 2013-02-25 2022-02-09 Bruker Nano, Inc. Smart valve
USD699475S1 (en) 2013-02-28 2014-02-18 Simplehuman, Llc Soap pump
US9051093B2 (en) 2013-03-01 2015-06-09 Simplehuman, Llc Receptacle with motion damper near lid
US9333698B2 (en) 2013-03-15 2016-05-10 Delta Faucet Company Faucet base ring
US9458612B2 (en) 2013-03-15 2016-10-04 Delta Faucet Company Integrated solenoid valve for an electronic faucet
US9138109B1 (en) * 2013-07-26 2015-09-22 Orange Rock Consulting Llc Universal automated hands-free liquid dispenser pump
CN104344047B (en) 2013-08-07 2017-04-12 科勒公司 Sensor assembly for faucet
USD730008S1 (en) 2014-03-12 2015-05-19 Simplehuman, Llc Trash can
USD725861S1 (en) 2014-03-13 2015-03-31 Simplehuman, Llc Trash can
US9856080B2 (en) 2014-03-14 2018-01-02 Simplehuman, Llc Containers with multiple sensors
US9751692B2 (en) 2014-03-14 2017-09-05 Simplehuman, Llc Dual sensing receptacles
US10279997B2 (en) 2014-03-14 2019-05-07 Simplehuman, Llc Trash can assembly
WO2016054109A1 (en) 2014-10-01 2016-04-07 Frank Yang Trash cans
USD770798S1 (en) 2015-02-25 2016-11-08 Simplehuman, Llc Soap pump
US10076216B2 (en) 2015-02-25 2018-09-18 Simplehuman, Llc Foaming soap dispensers
USD771344S1 (en) 2015-03-05 2016-11-08 Simplehuman, Llc Trash can
USD759934S1 (en) 2015-03-05 2016-06-21 Simplehuman, Llc Trash can trim component
CA2922625A1 (en) 2015-03-06 2016-09-06 Simplehuman, Llc Foaming soap dispensers
USD773848S1 (en) 2015-03-06 2016-12-13 Simplehuman, Llc Liquid dispenser cartridge
US11242198B2 (en) 2015-11-10 2022-02-08 Simplehuman, Llc Household goods with antimicrobial coatings and methods of making thereof
USD804133S1 (en) 2015-12-09 2017-11-28 Simplehuman, Llc Trash can
USD785970S1 (en) 2016-01-25 2017-05-09 Simplehuman, Llc Soap pump head
US10494175B2 (en) 2016-03-03 2019-12-03 Simplehuman, Llc Receptacle assemblies with motion dampers
USD793642S1 (en) 2016-03-04 2017-08-01 Simplehuman, Llc Trash can
USD798016S1 (en) 2016-03-04 2017-09-19 Simplehuman, Llc Trash can
US10041236B2 (en) 2016-06-08 2018-08-07 Bradley Corporation Multi-function fixture for a lavatory system
US11015329B2 (en) 2016-06-08 2021-05-25 Bradley Corporation Lavatory drain system
USD835376S1 (en) 2016-11-14 2018-12-04 Simplehuman, Llc Trash can
EP3403555B1 (en) 2017-03-17 2021-01-06 Simplehuman LLC Soap pump
USD818741S1 (en) 2017-03-17 2018-05-29 Simplehuman, Llc Soap pump
DE202017103194U1 (en) * 2017-05-26 2018-08-28 Neoperl Gmbh sanitary valve
USD855919S1 (en) 2017-06-22 2019-08-06 Simplehuman, Llc Trash can
CN111971438B (en) 2017-11-21 2022-11-04 德尔塔阀门公司 Electronic faucet and wireless control module
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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4735357A (en) * 1986-03-07 1988-04-05 Stephen O. Gregory Modular water facuet with automatic water supply system
US4741363A (en) * 1986-10-29 1988-05-03 Hydrotek Corporation Fluid faucet
GB2206397A (en) * 1987-07-01 1989-01-05 Chong Lih Electric Industry Co Photoelectrically-controlled faucet structure
US4823414A (en) * 1986-01-22 1989-04-25 Water-Matic Corporation Automatic faucet-sink control system
EP0245577B1 (en) * 1986-05-12 1990-04-11 D.M.P. Electronics Soc.r.l. Tap for the delivery of liquids for the conversion from automatic to manual

Family Cites Families (22)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2461722A (en) * 1946-08-09 1949-02-15 Curtis C Coons Hanger device for automobile windows
AT279287B (en) * 1965-07-24 1970-02-25 Danfoss As SOLENOID VALVE FOR GASES
US3505692A (en) * 1967-09-18 1970-04-14 American Standard Inc Proximity control for a lavatory
GB1212780A (en) * 1967-11-27 1970-11-18 Omron Tateisi Electronics Co An automatic water supply system
DE2014087C3 (en) * 1969-04-15 1978-08-10 Lucifer S.A., Carouge, Genf (Schweiz) Use of a coupling between a valve closure piece and a valve drive element
US3576277A (en) * 1969-06-19 1971-04-27 Don Curl Sterile scrub apparatus with selection of washing liquid, and method
US3670167A (en) * 1970-05-14 1972-06-13 American Standard Inc Proximity switching equipment
US3639920A (en) * 1970-06-08 1972-02-08 American Standard Inc Programmed plumbing service
US3763881A (en) * 1971-08-25 1973-10-09 Jones H Gwynfryn Liquid level control devices
US3799198A (en) * 1972-01-27 1974-03-26 Aiden Kk Electronic automatic faucet device
US4222410A (en) * 1978-06-05 1980-09-16 Turk & Bolte Outlet fixture for fluid media
US4402095A (en) * 1981-03-26 1983-09-06 Pepper Robert B Ultrasonically operated water faucet
WO1984004145A1 (en) * 1983-04-13 1984-10-25 Auto Aqua Pty Ltd Faucet system
US4520516A (en) * 1983-09-23 1985-06-04 Parsons Natan E Ultrasonic flow-control system
US4651177A (en) * 1984-05-31 1987-03-17 Mitsubishi Paper Mills, Ltd. Thermal transfer recording material
US4604764A (en) * 1984-10-03 1986-08-12 Fava Enzo Tap for the delivery of liquids for the conversion from automatic to manual
US4558844A (en) * 1985-04-11 1985-12-17 Appliance Valves Corporation Direct acting valve assembly
US4681141A (en) * 1986-02-03 1987-07-21 Wang Wen Ching Light-detector, hand-controlled faucet with water temperature regulator
US4762273A (en) * 1986-03-07 1988-08-09 Stephen O. Gregory Electronic faucet with spout position sensing means
US4709728A (en) * 1986-08-06 1987-12-01 Ying Chung Chen Single-axis control automatic faucet
US4981158A (en) * 1987-08-27 1991-01-01 Brondolino Rose M Non-contact control
US4793588A (en) * 1988-04-19 1988-12-27 Coyne & Delany Co. Flush valve with an electronic sensor and solenoid valve

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4823414A (en) * 1986-01-22 1989-04-25 Water-Matic Corporation Automatic faucet-sink control system
US4735357A (en) * 1986-03-07 1988-04-05 Stephen O. Gregory Modular water facuet with automatic water supply system
EP0245577B1 (en) * 1986-05-12 1990-04-11 D.M.P. Electronics Soc.r.l. Tap for the delivery of liquids for the conversion from automatic to manual
US4741363A (en) * 1986-10-29 1988-05-03 Hydrotek Corporation Fluid faucet
GB2206397A (en) * 1987-07-01 1989-01-05 Chong Lih Electric Industry Co Photoelectrically-controlled faucet structure

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0531646A1 (en) * 1991-07-31 1993-03-17 Hansa Metallwerke Ag Circuit arrangement for contactless controlling of a sanitary fitting and method for driving

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ES2079767T3 (en) 1996-01-16
US4915347A (en) 1990-04-10
DE69023248D1 (en) 1995-11-30
ES2043377T3 (en) 1993-12-16
EP0530856B1 (en) 1995-10-25
DE69002101D1 (en) 1993-08-05
ATE129539T1 (en) 1995-11-15
DE69023248T2 (en) 1996-06-27
JPH04507120A (en) 1992-12-10
CA2017009C (en) 1996-01-16
CA2017009A1 (en) 1990-11-18
GR900100381A (en) 1991-10-10
EP0472619B1 (en) 1993-06-30
EP0530856A3 (en) 1993-04-21
DE69002101T2 (en) 1993-11-18
EP0472619A1 (en) 1992-03-04
EP0530856A2 (en) 1993-03-10

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