User interface for a faucet

Information

  • Patent Grant
  • 8365767
  • Patent Number
    8,365,767
  • Date Filed
    Tuesday, October 21, 2008
    16 years ago
  • Date Issued
    Tuesday, February 5, 2013
    11 years ago
Abstract
An electronic user interface for use with a water delivery device, such as a faucet.
Description
BACKGROUND AND SUMMARY OF THE INVENTION

The present invention relates generally to water delivery systems, such as faucets, and more particularly to user inputs for faucets.


Faucets have traditionally been controlled by a manual user input, such as a single handle which is coupled to a mixing valve to proportion the flow of hot and cold water to a delivery spout, or two handles which utilize two separate valves to control the flow of hot and cold water. Typically, a user operates either the single handle or the two handles to regulate the flow of hot water and cold water, and hence both the flow rate and the temperature of a mixed water. Additionally, electronic user interfaces are known to control actuation of one or more valves to control the flow of mixed water through a delivery spout.


According to an illustrative embodiment of the present disclosure, a water delivery system includes at least one valve in fluid communication with a cold water source and a hot water source, the at least one valve including at least one actuator. An outlet is in fluid communication with the at least one valve, and a controller is operably coupled to the at least one actuator. An electronic user interface includes a first touch slider user input operably coupled to the controller, wherein the controller is configured to control the at least one valve such that the at least one valve delivers a desired flow rate of water to the outlet based upon the first touch slider user input. A second touch slider user input is operably coupled to the controller, wherein the controller is configured to control the at least one valve such that the at least one valve delivers a desired temperature of water to the outlet based upon the second touch slider user input. An indicator is operably coupled to the controller and is configured to provide an indication of the desired flow rate of water and the desired temperature of water.


According to another illustrative embodiment of the present disclosure, an electronic user interface for a water delivery device includes a first user input to control the flow rate of water delivered to an outlet, and a second user input to control the temperature of water delivered to an outlet. An indicator includes a colored light source, wherein the light source changes the magnitude of light emitted based upon the flow rate selected by the first user input and the light source changes the color of light emitted depending upon the temperature selected by the second user input.


According to a further illustrative embodiment of the present disclosure, an apparatus for controlling the provision of water above a sink deck from a source of cold water and a source of hot water includes a mixing valve in fluid communication with the source of cold water and the source of hot water, the mixing valve being located beneath the sink deck. An electronic user interface is located above the sink deck, and a spout is in fluid communication with an outlet of the mixing valve. A controller is operably coupled to the electronic user interface and to the mixing valve, wherein the electronic user interface includes a first touch slider user input for setting a desired water temperature and a second touch slider user input for setting a desired flow rate. The electronic user interface further includes a plurality of preset task inputs, and an indicator configured to provide an indication of the desired water temperature and the desired flow rate.


Additional features and advantages of the present invention will become apparent to those skilled in the art upon consideration of the following detailed description of the illustrative embodiment exemplifying the best mode of carrying out the invention as presently perceived.





BRIEF DESCRIPTION OF THE DRAWINGS

The detailed description of the drawings particularly refers to the accompanying figures in which:



FIG. 1 is a diagrammatic representation of an illustrative embodiment water delivery device;



FIG. 2 is a perspective view of an illustrative embodiment delivery spout of the water delivery device of FIG. 1;



FIG. 3 is a diagrammatic representation of an illustrative user interface operably coupled to a controller for controlling the temperature and flow rate of water delivered by a mixing valve to a diverter valve;



FIG. 4 is an exploded perspective view of the user interface of FIG. 2;



FIG. 5 is a perspective view of the user interface of FIG. 2, showing a full hot temperature selection at the first touch slider user input, a low flow selection at the second touch slider user input, and a corresponding visual indication by the indicator;



FIG. 6 is a perspective view of the user input similar to FIG. 5, showing a mixed temperature selection at the first touch slider user input, a medium flow selection at the second touch slider user input, and a corresponding visual indication by the indicator;



FIG. 7 is perspective view of the user interface similar to FIG. 5, showing a full cold temperature selection at the first touch slider user input, a full flow selection at the second touch slider user input, and a corresponding visual indication by the indicator;



FIG. 8 is a cross-sectional view taken along line 8-8 of FIG. 2



FIG. 9 is a cross-sectional view taken along line 9-9 of FIG. 2; and



FIG. 10 is a schematic representation of touch sensors of FIG. 4.





DETAILED DESCRIPTION OF THE DRAWINGS

The embodiments of the invention described herein are not intended to be exhaustive or to limit the invention to precise forms disclosed. Rather, the embodiments elected for description have been chosen to enable one skilled in the art to practice the invention. Although the disclosure is described in connection with water, it should be understood that additional types of fluids may be used.


Referring initially to FIG. 1, a diagrammatic representation of a water delivery device 10 is shown. In the illustrative embodiment, the water delivery device 10 is fluidly coupled to a hot water source 12 and a cold water source 14. The water delivery device 10 illustratively includes a delivery spout 16 coupled to and supported above a mounting deck 18. Illustrative mounting decks 18 include a countertop, a sink top, a tub, a wall, and other suitable mounting structures.


In one illustrative embodiment, the water delivery device 10 is a residential kitchen faucet and the mounting deck 18 is one of a countertop or sink. As shown in FIG. 2, the delivery spout 16 includes a base portion 20 and an outlet portion 22. Both the base portion 20 and the outlet portion 22 are tubular members defining a passageway extending therethrough for receiving at least one tubular waterway 24. The base portion 20 includes a coupler, such as a threaded nut 25 engaging a tubular mounting shank 26 for securing the delivery spout 16 to the mounting deck 18. The outlet portion 22 supports an outlet 28, illustratively in a spray head member 30 including a central output 32 and a second, surrounding output 34 (FIG. 4). In one illustrative embodiment, the outlet portion 22 may swivel or rotate relative to the base portion 20 about a swivel coupling 36. In a further illustrative embodiment, the outlet portion 22 may include a pull-out wand portion of the type disclosed in U.S. patent application Ser. No. 11/700,556, Publication No. 2007/0246564, titled “PULL-OUT WAND,” the disclosure of which has been expressly incorporated by reference herein.


Base portion 20 of the delivery spout 16 is coupled to the mounting deck 18, while the outlet portion 22 is supported by the base portion 20. In the illustrative embodiment, the waterway 24 extends through the delivery spout 16 and is in fluid communication with a mixing valve 38 (FIG. 1). The mixing valve 38 is in fluid communication with the hot water source 12 and the cold water source 14 through waterways 40 and 42, respectively. Based upon input provided by a user interface 50 to a controller 52, the mixing valve 38 regulates the temperature and/or flow rate of water supplied to the waterway 24 of delivery spout 16.


In the illustrative embodiment of FIG. 1, the mixing valve 38 provides water on/off control, water flow regulation, and water temperature regulation. In one illustrative embodiment, the mixing valve 38 is comprised of multiple valve members 54 coupled to at least one actuator 56 and which together provide on/off control, water flow regulation, and/or water temperature regulation. Exemplary valves are detailed in U.S. patent application Ser. No. 11/737,727, Publication No. 2007/0246550, titled “ELECTRONIC USER INTERFACE FOR ELECTRONIC MIXING OF WATER FOR RESIDENTIAL FAUCETS,” the disclosure of which has been expressly incorporated by reference herein. While the illustrated embodiment shows a single mixing valve 38, it should be appreciated that separate valves may be fluidly coupled to the hot water source 12 and the cold water source 14 to provide similar water on/off control, water flow regulation, and/or water temperature regulation. Illustrative valves are detailed in U.S. patent application Ser. No. 11/109,281, Publication No. 2006/0231638, titled “ELECTRONIC PROPORTIONING VALVE,” the disclosure of which is expressly incorporated by reference herein.


The mixing valve 38 and the controller 52 are illustratively positioned on opposite sides of the mounting deck 18 as the base portion 20 and the outlet portion 22 of the delivery spout 16. In one illustrative embodiment, both the mixing valve 38 and the controller 52 are positioned on the same side of mounting deck 18 as the base portion 20. In a further illustrative embodiment, one or both of the mixing valve 38 and the controller 52 are incorporated into one of the base portion 20 and the outlet portion 22 of the delivery spout 16. In another illustrative embodiment, the controller 52 includes a first controller positioned in the outlet portion 22 of the delivery spout 16 and a second controller positioned in one of the base portion 20 and on an opposite side of the mounting deck 18. The first controller positioned in the outlet portion 22 interfaces with sensors included in the outlet portion 22, such as a temperature input 72a, a flow rate input 72b and/or a proximity sensor 70 (FIG. 3). The second controller positioned in the base portion 20 or on the opposite side of the mounting deck 18 interfaces with the mixing valve 38. The first controller and the second controller may be in communication with each other through either a wired or wireless connection. In a wireless connection, such as radio frequency (RF), the outlet portion 22 includes a battery to power the first controller.


Illustratively, the user interface 50 indirectly interacts with the mixing valve 38, such as by providing one or more inputs to the controller 52. Referring to FIG. 3, a diagrammatic representation of an illustrative embodiment of the user interface 50 is shown in communication with the controller 52 for controlling mixing valve 38. The mixing valve 38 may be in fluid communication with a diverter valve 58 via the waterway 24. Illustratively, the waterway 24 may be made of a cross-linked polyethylene (PEX) material. However, the waterway 24 and any of the additional waterways disclosed herein may be made of other materials, including metals or polymers. For example, waterway 24 may be formed of a polyethylene (PE), polypropylene (PP) or polybutylene (PB). It is further envisioned that the waterway 24 and any of the additional waterways disclosed herein could be formed of cross-linked polyvinylchloride (PVCX) using silene free radical initiators, from cross-linked polyurethane, or cross-linked propylene (XLPP) using peroxide or silene free radical initiators.


The diverter valve 58 is in fluid communication with two waterways 60 and 62 which are in fluid communication with a first output 64 and a second output 66, respectively, defined by the central output 32 and the surrounding output 34 of the spray head member 30 (FIG. 4). In one illustrative embodiment, the first output 64 defined by the central output 32 is configured to provide water in a stream configuration and the second output 66 defined by the surrounding output 34 is configured to provide water in a spray configuration.


As is known in the art, a diverter valve diverts the flow of a fluid from one of a plurality of potential fluid outlets based upon the configuration of the valve. By adjusting the configuration of the valve, the fluid outlet to which fluid is provided may be selected. Illustratively, the diverter valve 58 is a manual diverter valve including a rocker or toggle switch 68 (FIG. 4) configured to switch between the waterways 60 and 62 and the first and second outputs 64 and 66, respectively, in response to manual input from a user. The manual diverter valve 58 may be replaced with an electronically controller diverter valve, typically including a solenoid valve.


With further reference to FIG. 3, the user interface 50 includes a plurality of sensors operably coupled to the controller 52, through either a wired or wireless connection. In one illustrative embodiment, one or more of the sensors provide an indication of the presence of an object, such as a user's hands or other presentments, in a detection zone. Further, in an illustrative embodiment, one or more of the sensors detect the presence of touch by a user.


In the illustrative embodiment of FIGS. 3 and 4, the sensors include proximity sensor 70 and a plurality of touch sensors 72a, 72b, 74, 76, and 78. The proximity sensor 70 may be of conventional design as including an IR emitter which emits IR energy into a detection zone 79 and an IR detector which receives reflected IR energy from the detection zone 79 (FIG. 2). When an object, such as a user's hands, is detected in the detection zone 79, due to the amount of IR energy received by the IR detector, the proximity sensor 70 provides an indication thereof to the controller 52. In one illustrative embodiment, the controller 52 monitors a voltage corresponding to the IR level detected by the IR detector to determine whether user's hands are present in the detection zone 79. In another illustrative embodiment, the proximity sensor 70 is a capacitive proximity sensor. In one example, the range of the capacitive proximity sensor (i.e. detection zone 79) is about three inches from the outlet 28.


As further detailed herein, each touch sensor 72, 74, 76, 78 monitors a region of the user interface 50 supported by the outlet portion 22 and provides an indication to the controller 52 of a user touching that region. In one illustrative embodiment, touch sensors 72, 74, 76, 78 are capacitive sensors wherein the controller 52 monitors each capacitive touch sensor 72, 74, 76, 78 to determine when the user touches the region corresponding to the respective touch sensor 72, 74, 76, 78.


Referring now to FIGS. 2 and 4, illustrative user interface 50 is shown supported by the outlet portion 22 of the delivery spout 16. The user interface 50 includes a housing 80 received within the outlet portion 22 and supporting a removable cover 82. A lower end of the cover 82 includes a pair of hooks 84 which are coupled to anchors or pegs 86 of the housing 80. A fastener, such as a screw 88, may be used to couple the upper end of the cover 82 to the housing 80. The proximity sensor 70 is illustratively oriented downwardly from the housing 80. The spray head member 30 is fluidly coupled to the waterway 24 and may be removably docked with the bottom of the housing 80 in instances where the spray head member 30 forms part of a pull-out wand of the outlet portion 22. The spray head member 30 may be secured in a docked position through various means, such as a magnet or a bayonet coupling.


In one illustrative embodiment, the housing 80 and cover 82 are made of non-metallic material. Such illustrative non-metallic materials include polymers, for example thermoplastic or thermoset materials, such as polyesters, melamine, melamine urea, melamine phenolic, and phenolic.


As noted above, the proximity sensor 70 monitors detection zone 79 positioned on or below the end face of the outlet portion 22 of delivery spout 16. In one illustrative embodiment, the proximity sensor 70 is oriented to monitor a different detection zone 79, such as forward of, or forward and downward of, the outlet portion 22.


With further reference to FIGS. 3 and 4, the user interface 50 includes a touch sensor assembly 71 having a plurality of touch sensors 72a 72b, 74, 76, 78. Touch sensors 72a, 72b are slide sensors which monitor the position of a user's finger along a corresponding region 92a, 92b of the cover 82, respectively. Touch sensors 74, 76, 78a, 78b, 78c, 78d illustratively monitor regions 94, 96, 98a, 98b, 98c, 98d of cover 82, respectively.


Regions 92a, 92b associated with sensors 72a, 72b extend between opposing lower and upper ends 100a, 100b and 102a, 102b, respectively. A plurality of segments 104, 106 extend between the ends 100a, 100b and 102a, 102b of the regions 92a, 92b, respectively. While ten different segments 104, 106 are illustrated in FIG. 4 for each region 92a, 92b, it should be appreciated that the number may vary depending upon the application of the respective sensors 72a, 72b. Moreover, in certain embodiments, the regions 92a, 92b may be continuously variable between lower and upper ends 100a, 100b, and 102a, 102b.


A user may adjust the desired temperature by touching one of the segments 104 within region 92a associated with the sensor 72a. By touching a segment 104 closer to the lower end 100a, a lower temperature is selected, while touching a segment 104 closer to the upper end 102 selects a higher temperature. A user may simply touch a segment 104 of region 92a corresponding to the desired temperature, or may contact a different segment 104 and drag the finger to the segment 104 corresponding to the desired temperature.


A user may adjust the desired flow rate by touching one of the segments 106 within region 92b associated with the sensor 72b. By touching a segment 106 closer to the lower end 100b, a lower flow rate is selected. Similarly, by touching a segment 106 closer to the upper end 102b, a higher flow rate is selected. A user may simply touch a segment 106 of region 92b corresponding to the desired flow rate, or may contact a different segment 106 and drag the finger to the segment 106 corresponding to the desired flow rate. The selected temperature and flow rate from sensors 72a and 72b, respectively, are communicated to the controller 52 which adjusts mixing valve 38 to provide the desired temperature and flow rate.


Sensors 74, 76, and 78 illustratively have predefined functions defined by the controller 52. Illustratively, when a user touches the region 94 associated with sensor 74, the controller 52 either turns on (activates) or turns off (deactivates) the water flow through the outlet 28 by controlling mixing valve 38. Subsequent touches of region 94 successively deactivates and activates (i.e., toggles) the water flow through mixing valve 38. Further illustratively, when a user touches the region 96 associated with sensor 76, the controller 52 turns on (activates) and turns off (deactivates) the proximity sensor 70.


Sensors 78a, 78b, 78c, 78d and associated regions 98a, 98b, 98c, 98d define preset or task buttons that may permit a user to rapidly switch between different tasks, such as from a hot water task like washing pots and pans to a cold water task like obtaining drinking water. Illustratively, the user may make adjustments to the water characteristics defined by a preset by selecting a different temperature with region 92a and/or selecting a different flow rate with region 92b. In one illustrative embodiment, the task sensors 78a, 78b, 78c, 78d are adjustable by the user such that the user may provide customized characteristics for a given sensor 78a, 78b, 78c, 78d.


In one illustrative embodiment, the cover 82 may include indicia (not shown) to indicate to a user the location of the touch regions 92a, 92b, 94, 96, 98a, 98b, 98c, 98d and a function associated with each corresponding sensor 72a, 72b, 74, 76, 78a, 78b, 78c, 78d. The function corresponds to the actions taken by the controller 52 based on the detection of the touch by the user. Examples of input indicia and the corresponding action taken by the controller relative to a mixing valve and/or diverter valve are provided in U.S. patent application Ser. No. 11/737,727, filed Apr. 18, 2007, titled “ELECTRONIC USER INTERFACE FOR ELECTRONIC MIXING OF WATER FOR RESIDENTIAL FAUCETS,” the disclosure of which has been expressly incorporated by reference herein.


As stated above, the sensors 72a, 72b are illustratively slide touch sensors. As shown in FIGS. 4 and 8, sensors 72a and 72b are both illustratively supported on a common base member 110. Touch sensor 72b is substantially the same as touch sensor 72a. As such, the following discussion relative to touch sensor 72a is equally applicable to touch sensor 72b.


The base member 110 supporting sensors 72a and 72b is illustratively formed of an electrically insulating, flexible material, such as Mylar®. While the base member 110 in FIG. 4 is shown to be in a substantially planar configuration, upon assembly within the user interface 50, the base member 110 conforms to a non-linear profile similar to that shown in FIG. 8 by adhering to the curved inner surface 112 of the cover 82. The inner surface 112 illustratively follows the general curvature of the outer surface 114 of the cover 82 which, in turn, is configured to conform to the shape of the outlet portion 22 of the delivery spout 16. An adhesive member 116, such as a double-faced adhesive tape, is used to adhere the base member 110 to the inner surface 112 of the cover 82.


With reference to FIGS. 4 and 10, the touch sensor 72a includes a plurality of contacts 118 that define the segments 104 of region 92a. The contacts 118 are illustratively formed by an electrically conductive material, such as copper applied to an outer surface 120 of the base member 110. Each contact 118 is electrically separated from an adjacent contact by a boundary 122. The boundaries 122 are illustratively formed in a saw tooth pattern such that a touch by a user bridging adjacent contacts 118 may be proportioned between such adjacent contacts 118. Illustratively, circuitry of controller 52 interpreting input from the sensors 72a, 72b may be manufactured by Cypress of San Jose, Calif.


The sensors 74, 76, and 78 are also illustratively formed by an electrically conductive material, such as copper, applied to the outer surface 120 of the base member 110. With reference to FIG. 10, traces or connecting paths 124 are also illustratively formed of an electrically conductive material, such as copper, and are electrically coupled to the contacts 118 of sensors 72a, 72b, and the sensors 74, 76, 78a, 78b, 78c, 78d. More particularly, the traces 124 provide electrical communication between the sensors 72a, 72b, 74, 76, 78a, 78b, 78c, 78d and a connector 126. The connector 126 is illustratively electrically coupled to a receptacle 128 within the housing 80 of the user interface 50 which, in turn, is electrically coupled to the controller 52.


With reference to FIGS. 3 and 4, indicator 130 is also provided within the user interface 50. More particularly, the indicator 130 includes a plurality of light sources 132 and 134, illustratively light emitting diodes (LEDs), supported on a base member 136, illustratively a printed circuit board. The base member 136 may be formed of an electrically insulating, flexible material, such as Mylar®.


While the base member 136 in FIG. 4 is shown to be in a substantially planar configuration, upon assembly within the user interface 50, the base member 136 conforms to a non-linear profile similar to that shown in FIG. 9 by adhering to the curved inner surface 138 of the base member 110 of the touch sensor assembly 71. More particularly, an adhesive member 140, such as double-faced adhesive tape, is used to adhere the outer surface 142 of the base member 136 to the inner surface 138 of the base member 110. A connector 144 is illustratively in electrical communication with the light sources 132, 134. The connector 144 is configured to be electrically coupled to a receptacle 146 within the user interface 50 (FIG. 4) which, in turn, is electrically coupled to the controller 52.


In one illustrative embodiment, the light sources 132 and 134 are surface mount LEDs available from Liteon of Milpitas, Calif. The LEDs 132, 134 are illustratively received within a slot 148 formed within the base member 110 of the touch sensor assembly 71. A window 150 is formed within the cover 82 and extends between lower and upper ends 152 and 154. The window 150 permits light generated by the indicator 130 to be visible from the exterior of the cover 82. Illustratively, the indicator 130 indicates a selected parameter of one or both of the sensors 72a, 72b. In one illustrative embodiment, the indicator 130 displays a current value of the parameter controlled by the input to sensor 72a. In a further illustrative embodiment, the indicator 130 indicates a current value of the parameter controlled by sensor 72b. In yet another illustrative embodiment, as further detailed herein, the indicator 130 indicates current values of the parameters controlled by both sensors 72a and 72b.


As shown in the illustrative embodiment of FIG. 4, the LEDs 132 are interspaced with the LEDs 134. Illustratively, LEDs 132 are configured to emit a blue color, while LEDs 134 are configured to emit a red color. By varying the number of blue LEDs 132 illuminated relative to the number of red LEDs 134 illuminated, the displayed color changes. As further detailed below, the ratio of LEDs 132 illuminated relative to LEDs 134 (i.e., color) indicates the value of the parameter (e.g. temperature) controlled by sensor 72a, while the total number of combined LEDs 132 and 134 illuminated (i.e., magnitude or light level) indicates the value of the parameter (e.g. flow rate) controlled by sensor 72b.


While longitudinally-spaced apart blue and red LEDs 132 and 134 are illustrated, it should be appreciated that variations may be substituted therefor. For example, each blue LED 132 may be spaced laterally adjacent a red LED 134, wherein a plurality of these laterally spaced combinations of blue and red LEDs 132 and 134 are longitudinally spaced apart from each other. In yet another illustrative embodiment, separate blue and red LEDs 132 and 134 may be replaced by a plurality of bi-color LEDs.


In the illustrative embodiment as shown in FIGS. 5-7, the indicator 130 provides a combined indication of parameters (e.g. temperature and flow rate) controlled by both sensors 72a and 72b through user input to regions 92a and 92b, respectively. In the illustrative embodiment detailed herein, input to region 92a and first sensor 72a controls temperature, while input to region 92b and second sensor 72b controls flow rate.


A hot water, low flow condition is represented by the indicator 130 in FIG. 5. More particularly, a user contacts segment 104j of region 92a corresponding to contact 118j of sensor 72a, thereby instructing the controller 52 that the greatest value of the applicable parameter (i.e., temperature) is requested. When a user contacts segment 106a of region 92b corresponding to contact 118a of sensor 72b, the controller 52 is instructed that the lowest value of the applicable parameter (i.e., flow rate) is requested (represented by water stream 156 in FIG. 5). The controller 52 instructs the mixing valve 38 to operate at a hot water, low flow condition. This is indicated to the user by the controller 52 causing the indicator 130 to illuminate only red LEDs 132 with a low magnitude of light displayed. In other words the indicator 130 displays red LEDs with a low height level (i.e. close to lower end 152) within window 150.


A warm water, medium flow condition is represented by the indicator 130 in FIG. 6. More particularly, a user contacts segment 104e of region 92a corresponding to contact 118e of sensor 72, thereby instructing the controller 52 that a value of the applicable parameter (i.e. temperature) proportioned between ends 100a and 102a is requested. In this instance, contact 118e is the fifth contact from end 102a out of a total of ten contacts 118 such that the desired temperature is 50% of the maximum value of sensor 118j at end 100a. Similarly, the user contacts segment 106e of region 92b corresponding to contact 118e of sensor 72b, thereby instructing the controller 52 that a value of the applicable parameter (i.e., flow rate) proportioned between ends 100b and 102b is requested. Again, contact 118e is illustratively the fifth contact out of ten total contacts such that the desired flow rate is 50% of the maximum value of sensor 118j at end 100b (represented by water stream 158 in FIG. 6). The controller 52 instructs the mixing valve 38 to operate at this warm water, medium flow condition. This 50/50 hot/cold mixed water, 50% flow rate condition is indicated by indicator 130 by illuminating an equal ratio of blue LEDs 132 and red LEDs 134 (to display temperature as a purple color) and half of the total number of total LEDs 132 and 134 (to display half of the distance or height between the bottom and top 152 and 154 of the window 150).


A cold water, full flow condition is represented by the indicator 130 in FIG. 7. More particularly, a user contacts segment 104a of region 92a which corresponds to contact 118a of sensor 72a, thereby instructing the controller 52 that a maximum value of the applicable parameter (i.e., temperature) is desired. Similarly, the user contacts segment 106j of region 92b which corresponds to contact 118j of sensor 82b, thereby instructing the controller 52 that a maximum value of the applicable parameter (i.e., flow rate) is desired (represented by water stream 160 in FIG. 7). The controller 52 instructs the mixing valve 38 to operate at this cold water, full flow condition. The indicator 130, in turn, is directed by the controller 52 to illuminate only blue LEDs 132 (to display temperature) and all blue LEDs 132 (to display full height of LEDs 132 proximate the top 154 of window 150).


Although the invention has been described in detail with reference to certain preferred embodiments, variations and modifications exist within the spirit and scope of the invention as described and defined in the following claims.

Claims
  • 1. A water delivery system, comprising: at least one valve in fluid communication with a cold water source and a hot water source, the at least one valve including at least one actuator;an outlet in fluid communication with the at least one valve;a controller operably coupled to the at least one actuator; andan electronic user interface including: a first touch slider user input comprising a touch sensor that includes a plurality of contacts, the first touch slider user input operably coupled to the controller, wherein the controller is configured to control the at least one valve such that the at least one valve delivers a desired flow rate of water to the outlet based upon the first touch slider user input;a second touch slider user input comprising a touch sensor that includes a plurality of contacts, the second touch slider user input operably coupled to the controller, wherein the controller is configured to control the at least one valve such that the at least one valve delivers a desired temperature of water to the outlet based upon the second touch slider user input wherein the first touch slider user input is independent of the second touch slider user input, and the first touch slider user input is positioned in spaced relation to the second touch slider user input; andan indicator comprising a single light source array with first and second light source colors, said indicator operably coupled to the controller and configured to provide a combined indication of both the desired flow rate of water controlled by the first touch slider user input and the desired temperature of water controlled by the second touch slider user input.
  • 2. The water delivery system of claim 1, wherein the at least one valve comprises a mixing valve in fluid communication with both the cold water source and the hot water source.
  • 3. The water delivery system of claim 2, wherein the mixing valve includes a first valve member configured to control the temperature of water delivered to the outlet, and a second valve member configured to control the flow of water delivered to the outlet, and the at least one actuator includes a first actuator configured to move the first valve member, and a second actuator configured to move the second valve member.
  • 4. The water delivery system of claim 1, further comprising a delivery spout supporting the outlet, wherein the electronic user interface coupled to the spout.
  • 5. The water delivery system of claim 1, wherein the electronic user interface further includes a first task input, wherein in response to the selection of the first task input the controller controls the mixing valve to provide water having a predetermined temperature and a predetermined flow rate.
  • 6. The water delivery system of claim 1, further comprising a diverter valve in fluid communication with the at least one valve and having a first position corresponding to a stream flow pattern and a second position corresponding to a spray flow pattern.
  • 7. The water delivery system of claim 1, wherein each of the first touch slider and the second touch slider includes a base having a non-linear surface, and a capacitive sensing element supported on the non-linear surface.
  • 8. The water delivery system of claim 7, further comprising a spout supporting the outlet, and a cover coupled to the spout, the first touch slider and the second touch slider.
  • 9. The water delivery system of claim 1, wherein the indicator comprises a light source, the magnitude of the light emitted by the light source representing the flow rate of water selected for delivery to the outlet, and the color of the light emitted by the light source representing the temperature of the water selected for delivery to the outlet.
  • 10. The water delivery system of claim 1, wherein the indicator comprises a first set of light sources of first color, and a second set of light sources of a second color.
  • 11. The water delivery system of claim 10, wherein the first set of light sources comprises a plurality of blue light emitting diodes, and the second set of light sources comprises a plurality of red light emitting diodes, the number of combined blue light emitting diodes and red light emitting diodes illuminated being indicative of flow rate, and the ratio of red light emitting diodes and blue light emitting diodes illuminated being indicative of temperature.
  • 12. An electronic user interface for a water delivery device, the electronic user interface comprising: a first user input to control the flow rate of water delivered to an outlet;a second user input to control the temperature of water delivered to an outlet, wherein the second user input is independent of the first user input; andan indicator comprising a single light source array with first and second light source colors, wherein the light source array changes the magnitude of light emitted based upon the active flow rate selected by the first user input and the light source array changes the color of light emitted depending upon the temperature selected by the second user input, wherein the light source array provides an integrated display for active flow rate selected by the first user input and temperature selected by the second user input.
  • 13. The user interface of claim 12, wherein the light source includes a plurality of light emitting members arranged within a plane disposed intermediate the first user input and the second user input.
  • 14. The user interface of claim 12, wherein the light source includes a plurality of first light emitting members configured to emit light of a first color, and a plurality of second light emitting members configured to emit light of a second color, the magnitude of light emitted being determined by the total number of first light emitting members and second light emitting members illuminated, and the color of light emitted being determined by the number of first light emitting members illuminated relative to the number of second light emitting members illuminated.
  • 15. The user interface of claim 14, wherein the first color is blue and the second color is red, the number of first light emitting members illuminated relative to the number of second light emitting members illuminated increases as the temperature selected by the second user input decreases, and the number of second light emitting members illuminated relative to the number of first light emitting members illuminated increases as the temperature selected by the second user input increases.
  • 16. The user interface of claim 12, further comprising a controller operably coupled to the first user input and the second user input, and a mixing valve in fluid communication with a cold water source and a hot water source and controlled by the controller to adjust the flow rate of water and the temperature of water delivered to the outlet.
  • 17. The user interface of claim 16, further comprising a first task input, wherein in response to the selection of the first task input the controller controls the mixing valve to provide water having a predetermined temperature and a predetermined flow rate.
  • 18. The user interface of claim 12, wherein: the outlet is supported by a spout; andthe first user input, the second user input, and the indicator are supported by an end of the spout.
  • 19. The user interface of claim 18, wherein the spout includes a diverter valve in fluid communication with an internal waterway of the spout and having a first position corresponding to a stream flow pattern and a second position corresponding to a spray flow pattern.
  • 20. The user interface of claim 12, wherein the first user input comprises a first touch slider, the second user input comprises a second touch slider, and each of the first and second touch sliders comprises a touch sensor that includes a plurality of contacts.
  • 21. The user interface of claim 20, wherein each of the first touch slider and the second touch slider includes a base having a non-linear surface, and a capacitive sensing element supported on the non-linear surface.
  • 22. An apparatus for controlling the provision of water above a sink deck from a source of cold water and a source of hot water, the apparatus comprising: a mixing valve in fluid communication with the source of cold water and the source of hot water, the mixing valve being located beneath the sink deck;an electronic user interface located above the sink deck;a spout in fluid communication with an outlet of the mixing valve; anda controller operably coupled to the electronic user interface and to the mixing valve, wherein the electronic user interface includes a first touch slider user input for setting a desired water temperature and a second touch slider user input for setting a desired flow rate, each of the first and second touch slider user inputs comprising a touch sensor that includes a plurality of contacts, a plurality of preset task inputs corresponding to a plurality of predetermined water temperatures and active flow rates, and an indicator comprising a single light source array with first and second light source colors, said indicator configured to provide a combined indication of both the desired water temperature and the desired flow rate.
  • 23. The apparatus of claim 22, wherein the electronic user interface is incorporated into an end of the spout.
  • 24. The apparatus of claim 22, wherein the electronic user interface communicates wirelessly with the controller.
  • 25. The apparatus of claim 22, wherein the electronic user interface includes a first task input, the first task input having a graphical icon representing the task.
  • 26. The apparatus of claim 25, wherein in response to a selection of the first task input the controller controls the mixing valve to provide water having a predetermined temperature and a predetermined flow rate, the predetermined temperature and the predetermined flow rate corresponding to the task.
  • 27. The apparatus of claim 26, wherein the spout includes a diverter valve in fluid communication with at least one internal waterway of the spout and having a first position corresponding to a stream flow pattern and a second position corresponding to a spray flow pattern.
  • 28. The apparatus of claim 22, wherein the indicator comprises a light source, the magnitude of the light emitted by the light source representing the desired flow rate, and the color of the light emitted by the light source representing the desired water temperature.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation-in-part of U.S. patent application Ser. No. 11/700,556 now U.S. Pat. No. 8,118,240, filed Jan. 31, 2007, titled “PULL-OUT WAND,” which claims priority to U.S. Provisional Patent Application Ser. No. 60/794,229, filed Apr. 20, 2006, is a continuation-in-part of U.S. patent application Ser. No. 11/737,727 now U.S. Pat. No. 8,162,263, filed Apr. 19, 2007, titled “ELECTRONIC USER INTERFACE FOR ELECTRONIC MIXING OF WATER FOR RESIDENTIAL FAUCETS,” which claims priority to U.S. Provisional Patent Application Ser. No. 60/794,229, filed Apr. 20, 2006, the disclosures of which are expressly incorporated by reference herein.

US Referenced Citations (427)
Number Name Date Kind
2337321 Freeman Dec 1943 A
2991481 Book Jul 1961 A
3081594 Atkins et al. Mar 1963 A
3151340 Teshima Oct 1964 A
3254313 Atkins et al. May 1966 A
3314081 Atkins et al. Apr 1967 A
3406941 Ichimori et al. Oct 1968 A
3588038 Tanaka Jun 1971 A
3651989 Westrich Mar 1972 A
3672479 Schwertfeger et al. Jun 1972 A
3685541 Braucksick et al. Aug 1972 A
3705574 Duncan Dec 1972 A
3756456 Georgi Sep 1973 A
3762440 Bryant Oct 1973 A
3799171 Patel Mar 1974 A
3987819 Scheuermann Oct 1976 A
4172381 Aigner Oct 1979 A
4185336 Young Jan 1980 A
4200018 Sekiwa Apr 1980 A
4201518 Stevenson May 1980 A
4280530 Yi Jul 1981 A
4331292 Zimmer May 1982 A
4337388 July Jun 1982 A
4359186 Kiendl Nov 1982 A
4406313 Bennett et al. Sep 1983 A
4406398 Perkins Sep 1983 A
4407444 Knebel et al. Oct 1983 A
4409694 Barrett et al. Oct 1983 A
4410791 Eastep Oct 1983 A
4420811 Tarnay et al. Dec 1983 A
4421269 Ts'ao Dec 1983 A
4424767 Wicke et al. Jan 1984 A
4429422 Wareham Feb 1984 A
4436983 Solobay Mar 1984 A
4439669 Ryffel Mar 1984 A
4450829 Morita et al. May 1984 A
4459465 Knight Jul 1984 A
4503575 Knoop et al. Mar 1985 A
4532962 Campau Aug 1985 A
4537348 Gossi Aug 1985 A
4541562 Zukausky Sep 1985 A
4554688 Puccerella Nov 1985 A
4563780 Pollack Jan 1986 A
4567350 Todd, Jr. Jan 1986 A
4581707 Millar Apr 1986 A
4584463 Klages et al. Apr 1986 A
4604515 Davidson Aug 1986 A
4604764 Enzo Aug 1986 A
4606325 Lujan Aug 1986 A
4611757 Saether Sep 1986 A
4628902 Comber Dec 1986 A
4638147 Dytch et al. Jan 1987 A
4674678 Knebel et al. Jun 1987 A
4680446 Post Jul 1987 A
4682581 Laing et al. Jul 1987 A
4682728 Oudenhoven et al. Jul 1987 A
4688277 Kakinoki et al. Aug 1987 A
4693415 Sturm Sep 1987 A
4700884 Barrett et al. Oct 1987 A
4700885 Knebel Oct 1987 A
4709728 Ying-Chung Dec 1987 A
4713525 Eastep Dec 1987 A
4735357 Gregory et al. Apr 1988 A
4738280 Oberholtzer Apr 1988 A
4742456 Kamena May 1988 A
4750472 Fazekas Jun 1988 A
4753265 Barrett et al. Jun 1988 A
4756030 Juliver Jul 1988 A
4757943 Sperling et al. Jul 1988 A
4762273 Gregory et al. Aug 1988 A
4768705 Tsutsui et al. Sep 1988 A
4786782 Takai et al. Nov 1988 A
4798224 Haws Jan 1989 A
4808793 Hurko Feb 1989 A
4832259 Vandermeyden May 1989 A
4845316 Kaercher Jul 1989 A
4854498 Stayton Aug 1989 A
4869287 Pepper Sep 1989 A
4869427 Kawamoto et al. Sep 1989 A
4870986 Barrett et al. Oct 1989 A
4872485 Laverty Oct 1989 A
4875623 Garris Oct 1989 A
4893653 Ferrigno Jan 1990 A
4896658 Yonekubo et al. Jan 1990 A
4901915 Sakakibara Feb 1990 A
4909435 Kidouchi et al. Mar 1990 A
4914758 Shaw Apr 1990 A
4916613 Lange et al. Apr 1990 A
4917142 Laing et al. Apr 1990 A
4923116 Homan May 1990 A
4930551 Haws Jun 1990 A
4936289 Peterson Jun 1990 A
4936508 Ingalz Jun 1990 A
4941608 Shimizu et al. Jul 1990 A
4945942 Lund Aug 1990 A
4945943 Cogger Aug 1990 A
4955535 Tsutsui et al. Sep 1990 A
4965894 Baus Oct 1990 A
4967794 Tsutsui et al. Nov 1990 A
4969598 Garris Nov 1990 A
4970373 Lutz et al. Nov 1990 A
4971106 Tsutsui et al. Nov 1990 A
4998673 Pilolla Mar 1991 A
5009572 Imhoff et al. Apr 1991 A
5020127 Eddas et al. May 1991 A
5033508 Laverty Jul 1991 A
5033715 Chiang Jul 1991 A
5040106 Maag Aug 1991 A
5042524 Lund Aug 1991 A
5056712 Enck Oct 1991 A
5057214 Morris Oct 1991 A
5058804 Yonekubo et al. Oct 1991 A
5063955 Sakakibara Nov 1991 A
5073991 Marty Dec 1991 A
5074520 Lee et al. Dec 1991 A
5086526 Van Marcke Feb 1992 A
5092560 Chen Mar 1992 A
5095945 Jensen Mar 1992 A
5105846 Britt Apr 1992 A
5124934 Kawamoto et al. Jun 1992 A
5125433 DeMoss et al. Jun 1992 A
5129034 Sydenstricker Jul 1992 A
5133089 Tsutsui et al. Jul 1992 A
5139044 Otten et al. Aug 1992 A
5143049 Laing et al. Sep 1992 A
5148824 Wilson et al. Sep 1992 A
5170361 Reed Dec 1992 A
5170514 Weigert Dec 1992 A
5170816 Schnieders Dec 1992 A
5170944 Shirai Dec 1992 A
5174495 Eichholz et al. Dec 1992 A
5175892 Shaw Jan 1993 A
5183029 Ranger Feb 1993 A
5184642 Powell Feb 1993 A
5187816 Chiou Feb 1993 A
5202666 Knippscheer Apr 1993 A
5205318 Massaro et al. Apr 1993 A
5206963 Wiens May 1993 A
5217035 Van Marcke Jun 1993 A
5224509 Tanaka et al. Jul 1993 A
5224685 Chiang et al. Jul 1993 A
5226629 Millman et al. Jul 1993 A
5243717 Yasuo Sep 1993 A
D340279 Mattis Oct 1993 S
5257341 Austin et al. Oct 1993 A
5261443 Walsh Nov 1993 A
5262621 Hu et al. Nov 1993 A
5265318 Shero Nov 1993 A
5277219 Lund Jan 1994 A
5287570 Peterson et al. Feb 1994 A
5315719 Tsutsui et al. May 1994 A
5323803 Blumenauer Jun 1994 A
5325822 Fernandez Jul 1994 A
5334819 Lin Aug 1994 A
5341839 Kobayashi et al. Aug 1994 A
5351712 Houlihan Oct 1994 A
5358177 Cashmore Oct 1994 A
5361215 Tompkins et al. Nov 1994 A
5362026 Kobayashi et al. Nov 1994 A
5385168 Lund Jan 1995 A
5400961 Tsutsui et al. Mar 1995 A
5408578 Bolivar Apr 1995 A
5409037 Wheeler et al. Apr 1995 A
5419930 Schucker May 1995 A
5429272 Luigi Jul 1995 A
5431302 Tulley et al. Jul 1995 A
5433342 Luro Jul 1995 A
5437003 Blanco Jul 1995 A
RE35018 Homan Aug 1995 E
5438642 Posen Aug 1995 A
5467967 Gillooly Nov 1995 A
5479558 White et al. Dec 1995 A
5482250 Kodaira Jan 1996 A
5504306 Russell et al. Apr 1996 A
5504950 Natalizia et al. Apr 1996 A
5511579 Price Apr 1996 A
5511723 Eki et al. Apr 1996 A
5540555 Corso et al. Jul 1996 A
5550753 Tompkins et al. Aug 1996 A
5555912 Saadi et al. Sep 1996 A
5564462 Storch Oct 1996 A
5566702 Philipp Oct 1996 A
5570869 Diaz et al. Nov 1996 A
5572985 Benham Nov 1996 A
5575424 Fleischmann Nov 1996 A
5577660 Hansen Nov 1996 A
5584316 Lund Dec 1996 A
5586572 Lund Dec 1996 A
5588636 Eichholz et al. Dec 1996 A
5595342 McNair et al. Jan 1997 A
5603344 Hall Feb 1997 A
5610589 Evans et al. Mar 1997 A
5622203 Givler et al. Apr 1997 A
5623990 Pirkle Apr 1997 A
5627375 Hsieh May 1997 A
5634220 Chiu Jun 1997 A
5682032 Philipp Oct 1997 A
5694653 Harald Dec 1997 A
5730165 Philipp Mar 1998 A
5735291 Kaonohi Apr 1998 A
5758688 Hamanaka et al. Jun 1998 A
5769120 Laverty et al. Jun 1998 A
5775372 Houlihan Jul 1998 A
5784531 Mann et al. Jul 1998 A
5790024 Ripingill et al. Aug 1998 A
5812059 Shaw et al. Sep 1998 A
5813655 Pinchott et al. Sep 1998 A
5819366 Edin Oct 1998 A
5823229 Bertrand et al. Oct 1998 A
5829467 Spicher Nov 1998 A
5829475 Acker Nov 1998 A
5845844 Zosimodis Dec 1998 A
5853130 Ellsworth Dec 1998 A
5855356 Fait Jan 1999 A
5857717 Caffrey Jan 1999 A
5868311 Cretu-Petra Feb 1999 A
5872891 Son Feb 1999 A
5893387 Paterson et al. Apr 1999 A
5918855 Hamanaka et al. Jul 1999 A
5934325 Brattoli et al. Aug 1999 A
5941275 Laing Aug 1999 A
5944221 Laing et al. Aug 1999 A
5961095 Schrott Oct 1999 A
5963624 Pope Oct 1999 A
5966753 Gauthier et al. Oct 1999 A
5979776 Williams Nov 1999 A
5983922 Laing et al. Nov 1999 A
6000170 Davis Dec 1999 A
6003170 Humpert et al. Dec 1999 A
6003182 Song Dec 1999 A
6006784 Tsutsui et al. Dec 1999 A
6019130 Rump Feb 2000 A
6026844 Laing et al. Feb 2000 A
6029094 Diffut Feb 2000 A
6032616 Jones Mar 2000 A
6042885 Woollard et al. Mar 2000 A
6059192 Zosimadis May 2000 A
6061499 Hlebovy May 2000 A
6075454 Yamasaki Jun 2000 A
6082407 Paterson et al. Jul 2000 A
6093313 Bovaird et al. Jul 2000 A
6101452 Krall et al. Aug 2000 A
6132085 Bergeron Oct 2000 A
6167845 Decker, Sr. Jan 2001 B1
6175689 Blanco, Jr. Jan 2001 B1
6182683 Sisk Feb 2001 B1
6192192 Illy et al. Feb 2001 B1
6196065 Henksmeier et al. Mar 2001 B1
6202980 Vincent et al. Mar 2001 B1
6220297 Marty et al. Apr 2001 B1
6227235 Laing et al. May 2001 B1
6240250 Blanco, Jr. May 2001 B1
6250558 Dogre Cuevas Jun 2001 B1
6250601 Kolar et al. Jun 2001 B1
6273394 Vincent et al. Aug 2001 B1
6283139 Symonds et al. Sep 2001 B1
6286764 Garvey et al. Sep 2001 B1
6288707 Philipp Sep 2001 B1
6290139 Kolze Sep 2001 B1
6290147 Bertrand et al. Sep 2001 B1
6294786 Marcichow et al. Sep 2001 B1
6305075 Ersoy et al. Oct 2001 B1
6315208 Doyle Nov 2001 B1
6317717 Lindsey et al. Nov 2001 B1
6321785 Bergmann Nov 2001 B1
6337635 Ericksen et al. Jan 2002 B1
6340032 Zosimadis Jan 2002 B1
6341389 Philipps-Liebich et al. Jan 2002 B2
6351603 Waithe et al. Feb 2002 B2
6363549 Humpert et al. Apr 2002 B2
6377009 Philipp Apr 2002 B1
6381770 Raisch May 2002 B1
6389226 Neale et al. May 2002 B1
6438770 Hed et al. Aug 2002 B1
6445306 Trovato et al. Sep 2002 B1
6446875 Brooks et al. Sep 2002 B1
6452514 Philipp Sep 2002 B1
RE37888 Cretu-Petra Oct 2002 E
6457355 Philipp Oct 2002 B1
6466036 Philipp Oct 2002 B1
6473917 Mateina Nov 2002 B1
6474951 Stephan et al. Nov 2002 B2
6513787 Jeromson et al. Feb 2003 B1
6522078 Okamoto et al. Feb 2003 B1
6535200 Philipp Mar 2003 B2
6536464 Lum et al. Mar 2003 B1
6549816 Gauthier et al. Apr 2003 B2
6574426 Blanco, Jr. Jun 2003 B1
6588377 Leary et al. Jul 2003 B1
6588453 Marty et al. Jul 2003 B2
6598245 Nishioka Jul 2003 B2
6612267 West Sep 2003 B1
6619320 Parsons Sep 2003 B2
6622930 Laing et al. Sep 2003 B2
6629645 Mountford et al. Oct 2003 B2
6639209 Patterson et al. Oct 2003 B1
6644333 Gloodt Nov 2003 B2
6659048 DeSantis et al. Dec 2003 B1
6676024 McNerney et al. Jan 2004 B1
6684822 Lieggi Feb 2004 B1
6691338 Zieger Feb 2004 B2
6705534 Mueller Mar 2004 B1
6707030 Watson Mar 2004 B1
6734685 Rudrich May 2004 B2
6738996 Malek et al. May 2004 B1
6757921 Esche Jul 2004 B2
6768103 Watson Jul 2004 B2
6770869 Patterson et al. Aug 2004 B2
6779552 Coffman Aug 2004 B1
6805458 Schindler et al. Oct 2004 B2
6845526 Malek et al. Jan 2005 B2
6877172 Malek et al. Apr 2005 B2
6892952 Chang et al. May 2005 B2
6895985 Popper et al. May 2005 B2
6913203 DeLangis Jul 2005 B2
6955333 Patterson et al. Oct 2005 B2
6956498 Gauthier et al. Oct 2005 B1
6962162 Acker Nov 2005 B2
6962168 McDaniel et al. Nov 2005 B2
6964404 Patterson et al. Nov 2005 B2
6964405 Marcichow et al. Nov 2005 B2
6968860 Haenlein et al. Nov 2005 B1
6993607 Phillipp Jan 2006 B2
7025077 Vogel Apr 2006 B2
7069941 Parsons et al. Jul 2006 B2
7096517 Gubeli et al. Aug 2006 B2
7099649 Patterson et al. Aug 2006 B2
D528991 Katsuyama Sep 2006 S
7150293 Jonte Dec 2006 B2
7174577 Jost et al. Feb 2007 B2
7232111 McDaniel et al. Jun 2007 B2
7295190 Philipp Nov 2007 B2
7537195 McDaniel et al. May 2009 B2
7690395 Jonte et al. Apr 2010 B2
20010022352 Rudrich Sep 2001 A1
20010044954 DiCarlo Nov 2001 A1
20020007510 Mann Jan 2002 A1
20020015024 Westerman et al. Feb 2002 A1
20020113134 Laing et al. Aug 2002 A1
20020117122 Lindner Aug 2002 A1
20020148040 Mateina Oct 2002 A1
20020179723 Wack et al. Dec 2002 A1
20030001025 Quintana Jan 2003 A1
20030080194 O'Hara et al. May 2003 A1
20030088338 Phillips et al. May 2003 A1
20030089399 Acker May 2003 A1
20030125842 Chang et al. Jul 2003 A1
20030126993 Lassota et al. Jul 2003 A1
20030185548 Novotny et al. Oct 2003 A1
20030189108 Bosio Oct 2003 A1
20030201018 Bush Oct 2003 A1
20030213062 Honda et al. Nov 2003 A1
20030234769 Cross et al. Dec 2003 A1
20040011399 Segien, Jr. Jan 2004 A1
20040041033 Kemp Mar 2004 A1
20040041034 Kemp Mar 2004 A1
20040061685 Ostergard et al. Apr 2004 A1
20040088786 Malek et al. May 2004 A1
20040135010 Malek et al. Jul 2004 A1
20040144866 Nelson et al. Jul 2004 A1
20040149643 Vandenbelt et al. Aug 2004 A1
20040155116 Wack et al. Aug 2004 A1
20040195382 Anderson et al. Oct 2004 A1
20040204779 Mueller et al. Oct 2004 A1
20040206405 Smith et al. Oct 2004 A1
20040212599 Cok et al. Oct 2004 A1
20040255375 Scarlata Dec 2004 A1
20040262552 Lowe Dec 2004 A1
20050001046 Laing Jan 2005 A1
20050006402 Acker Jan 2005 A1
20050022871 Acker Feb 2005 A1
20050044625 Kommers Mar 2005 A1
20050082503 Patterson et al. Apr 2005 A1
20050086958 Walsh Apr 2005 A1
20050117912 Patterson et al. Jun 2005 A1
20050121529 DeLangis Jun 2005 A1
20050125083 Kiko Jun 2005 A1
20050127313 Watson Jun 2005 A1
20050133100 Bolderheij et al. Jun 2005 A1
20050146513 Hill et al. Jul 2005 A1
20050150552 Forshey Jul 2005 A1
20050150556 Jonte Jul 2005 A1
20050151101 McDaniel et al. Jul 2005 A1
20050167625 Deen Aug 2005 A1
20050194399 Proctor Sep 2005 A1
20050199841 O'Maley Sep 2005 A1
20050199843 Jost et al. Sep 2005 A1
20050236594 Lilly et al. Oct 2005 A1
20050273218 Breed et al. Dec 2005 A1
20060066991 Hirano et al. Mar 2006 A1
20060101575 Louis May 2006 A1
20060130907 Marty et al. Jun 2006 A1
20060130908 Marty et al. Jun 2006 A1
20060138246 Stowe et al. Jun 2006 A1
20060153165 Beachy Jul 2006 A1
20060186215 Logan Aug 2006 A1
20060200903 Rodenbeck et al. Sep 2006 A1
20060201558 Marty et al. Sep 2006 A1
20060202142 Marty et al. Sep 2006 A1
20060212016 Lavon et al. Sep 2006 A1
20060214016 Erdely et al. Sep 2006 A1
20060231638 Schmitt et al. Oct 2006 A1
20060231788 Cheng Oct 2006 A1
20060238428 Schmitt et al. Oct 2006 A1
20060238513 Phillip Oct 2006 A1
20060283511 Nelson Dec 2006 A1
20070001018 Schmitt et al. Jan 2007 A1
20070057215 Parsons et al. Mar 2007 A1
20070069168 Jonte Mar 2007 A1
20070069169 Lin Mar 2007 A1
20070157978 Jonte et al. Jul 2007 A1
20070170384 Goodman Jul 2007 A1
20070235672 McDaniel et al. Oct 2007 A1
20070246267 Koottungal Oct 2007 A1
20070246550 Rodenbeck et al. Oct 2007 A1
20070246564 Rodenbeck et al. Oct 2007 A1
20080178950 Marty et al. Jul 2008 A1
20080178957 Thomas et al. Jul 2008 A1
20080189850 Seggio et al. Aug 2008 A1
20080203195 Schmitt Aug 2008 A1
20080271238 Reeder et al. Nov 2008 A1
20090039176 Davidson et al. Feb 2009 A1
20090056011 Wolf et al. Mar 2009 A1
20100012194 Jonte et al. Jan 2010 A1
20100065764 Canpolat Mar 2010 A1
20100096017 Jonte et al. Apr 2010 A1
20100294641 Kunkel Nov 2010 A1
Foreign Referenced Citations (25)
Number Date Country
2492226 Jul 2005 CA
3339849 May 1985 DE
04401637 May 1998 DE
19815324 Nov 2000 DE
0961067 Apr 1999 EP
63111383 Oct 1986 JP
00073426 Dec 1998 JP
2003-20703 Jan 2003 JP
2003105817 Apr 2003 JP
2003293411 Oct 2003 JP
2004-092023 Mar 2004 JP
2005-146551 Jun 2005 JP
10-1997-0700266 Jan 1997 KR
10-2003-0008144 Jan 2003 KR
10-2003-0077823 Oct 2003 KR
20-0382786 Apr 2005 KR
WO 9117377 Nov 1991 WO
WO 0120204 Mar 2001 WO
WO 04001142 Dec 2003 WO
WO 2004094990 Nov 2004 WO
WO 2005057086 Jun 2005 WO
WO 2006136256 Dec 2006 WO
WO 2007059051 May 2007 WO
WO 2007082301 Jul 2007 WO
WO 2008094651 Aug 2008 WO
Non-Patent Literature Citations (26)
Entry
Phillip, “Tough Touch Screen”, appliance design, Feb. 2006, pp. 14-17.
Camacho et al., Freescale Semiconductor, “Touch Pad System Using MC34940/MC33794 E-Field Sensors,” Feb. 2006, 52 pgs.
Hego WaterDesign, “Touch Faucets—Amazing Futuristic Faucet Designs,” Oct. 6, 2009, 3 pgs.
Quantum Research Group, “E401 User Manual,” at least as early as Oct. 22, 2007, 15 pgs.
Quantum Research Group, “Gorenje Puts QSlideTM Technology into Next-Generation Kitchen Hob,” Feb. 8, 2006, http://www.qprox.com/news/gorenje.php, 3 pgs.
Quantum Research Group, “QproxTM Capacitive Touch Applications,” © 2005, http://www.qprox.com/background/applications.php, 8 pgs.
Quantum Research Group, “QT401 QSlide™ Touch Slider IC,” 2004, 16 pgs.
Quantum Research Group, “QT411-ISSG QSlide™ Touch Slider IC,” 2004-2005, 12 pgs.
Sequine et al., Cypress Perform, “Application Notes AN2292,” Oct. 31, 2005, 15 pgs.
Sequine et al., Cypress Perform, “Application Notes AN2233a,” Apr. 14, 2005, 6 pgs.
Sloan® Optima® i.q. Electronic Hand Washing Faucet, Apr. 2004, 2 pgs.
Symmons, Ultra-Sense, Battery-Powered Faucets with PDS and Ultra-Sense AC Powered Faucets, © 1999-2004, 2 pgs.
Symmons®, “Ultra-Sense® Sensor Faucets with Position-Sensitive Detection,” Aug. 2004, 4 pgs.
Symmons® Commercial Faucets: Reliability With a Sense of Style, at least as early as Jan. 4, 2006, 1 pg.
Symmons®, “Ultra-Sense® Battery-Powered, Sensor-Operated Lavatory Faucet S-6080 Series,” Oct. 2002, 4 pgs.
Symmons®, “Ultra-Sense® Sensor Faucets with Position-Sensitive Detection,” © 2001-2002, 2 pgs.
Technical Concepts International, Inc., Capri AutoFaucet® with Surround Sensor™ Technology, 500556, 500576, 500577, Aug. 2004, 1 pg.
Technical Concepts, AutoFaucet® with “Surround Sensor” Technology, Oct. 2005, 4 pgs.
Toto® Products, “Self-Generating EcoPower System Sensor Faucet, Standard Spout,” Specification Sheet, Nov. 2002, 2 pgs.
Various Products (available at least before Apr. 20, 2006), 5 pgs.
Zurn® Plumbing Products Group, “AquaSense® Sensor Faucet,” Jun. 9, 2004, 2 pgs.
Zurn® Plumbing Products Group, “AquaSense® Z6903 Series”, Installation, Operation, Maintenance and Parts Manual, Aug. 2001, 5 pgs.
KWC Armaturen, “Kitchen faucet,” 802285 installation and service instructions, Jul. 2005, 8 pgs.
Dave Van Ess, Capacitive Sensing Builds a Better Water-Cooler Control, Cypress Semiconductor Corp., Nov. 2007.
Aviation Faucet System, Product Brochure, Franke Aquarotter GmbH, downloaded Oct. 1, 2012.
Springking Industry Col, Limited, Touch Sensor Faucet, Product Specification, copyright 2010 downloaded Oct. 1, 2012.
Related Publications (1)
Number Date Country
20090039176 A1 Feb 2009 US
Provisional Applications (1)
Number Date Country
60794229 Apr 2006 US
Continuation in Parts (2)
Number Date Country
Parent 11700566 Jan 2007 US
Child 12255358 US
Parent 11737727 Apr 2007 US
Child 11700566 US