Water heater leak detection system

Information

  • Patent Grant
  • 10692351
  • Patent Number
    10,692,351
  • Date Filed
    Friday, August 3, 2018
    5 years ago
  • Date Issued
    Tuesday, June 23, 2020
    4 years ago
Abstract
The disclosure reveals a system for detecting moisture or water in a particular location. The system may incorporate a moisture detector having a control module connected to an appliance, a moisture detection circuit connected to the control module, and a voltage source connected to the moisture detection circuit and to the control module. The voltage source and the moisture detection circuit may provide voltage levels to the control module when the moisture detection circuit detects dry or wet conditions, or conditions between those conditions. A voltage level to the control module may indicate whether the appliance, such as a water heater, a washing machine, or a dish washer, has a leak. If the leak is deemed by a voltage level from the circuit to be worthy of concern, then a display, an alarm, message, or other notice mechanism may indicate an issue or what action needs to be taken.
Description
BACKGROUND

The present disclosure pertains to detectors and particularly to leak detectors.


SUMMARY

The disclosure reveals a system for detecting moisture or water in a particular location. The system may incorporate a moisture detector having a control module, a moisture detection circuit connected to the control module, and a voltage source connected to the moisture detection circuit and to the control module. The voltage source and the moisture detection circuit may provide a voltage level to the control module when the moisture detection circuit detects dry condition. Another voltage level may go to the to the control module when the moisture detection circuit detects a wet condition. Still another voltage level may go to the control module when the moisture detection circuit detects a condition between the dry condition and the wet condition. A voltage level to the control module may indicate whether an appliance, such as a water heater, a washing machine, or a dish washer, which the control module controls, has a leak. If the leak is deemed by a voltage level from the circuit to be worthy of concern, then a display, an alarm, a message, or other notice may indicate an issue or what action needs to be taken.





BRIEF DESCRIPTION OF THE DRAWING


FIG. 1 is a diagram of a circuit for water leak detection;



FIG. 2 is a diagram that reveals a graph showing an effect of moisture on a material used in a sensing element;



FIG. 3 is another diagram that reveals a graph showing an effect of moisture on the material used in a sensing element;



FIG. 4 is a diagram of another circuit used in lieu of the circuit of FIG. 1, for water leak detection;



FIG. 5 is a diagram of blocks or symbols illustrating the various conditions from dry to wet on a leak sensor;



FIG. 6 is a diagram of a leak sensor similar to the leak sensor of FIG. 4 but not connected across the terminals of a voltage source;



FIG. 7 is a diagram of a leak sensor similar to the leak sensor of FIG. 1 but not connected across the terminals of a voltage source;



FIG. 8 is a diagram of an alarm speaker power circuit for leak detection systems of FIG. 6 and FIG. 7;



FIG. 9 is a diagram of another version of the alarm speaker power circuit shown in FIG. 8;



FIG. 10 is a diagram of another circuit for water leak detection that appears similar to but with some different connections from the circuit shown in FIG. 1;



FIG. 11 is a diagram of a circuit for water leak detection that has a leak sensor utilizing a moisture, water, humidity or other kind of detector, different from the circuit of FIG. 1;



FIG. 12 is a diagram of a circuit for water leak detection that appears similar to but with some different connections from the circuit shown in FIG. 11; and



FIG. 13 is a diagram of water leak detection system for an appliance in general.





DESCRIPTION

The present system and approach may incorporate one or more processors, computers, controllers, user interfaces, wireless and/or wire connections, and/or the like, in an implementation described and/or shown herein.


This description may provide one or more illustrative and specific examples or ways of implementing the present system and approach. There may be numerous other examples or ways of implementing the system and approach.


Water heaters, or other water utilizing types of appliances, may have a natural risk of leaking and causing water damage to property. A water heater may be used as an illustrative example incorporating the present system and approach. A leak may not necessarily be noticed by a home owner until the damage has already occurred. An approach of detecting and alerting the home owner to a leak appears to be needed.


The present system may locate a sensor on the floor at the base of a water heater where any leaking water would first begin to pool. The sensor may be connected to thermopile voltage input. When the sensor is dry, it may have a large resistance and essentially be an open circuit. When the sensor becomes wet, its resistance may decrease. The decreased resistance may represent a current load to the thermopile and draw down the voltage available to the water heater control. Design of the sensor's resistance may allow the voltage to the control to be reduced either 1) just enough to be reliably detected by the control, or 2) enough to shut down the control.


In the first case, the control's software may recognize the detection of a leak through a fairly rapid and sustained decrease in thermopile voltage and then may take action such as going into a pilot only mode and flashing an error code. This may allow the water to have some level of warmth, but it may be cool enough that the home owner may likely investigate it very soon, discover the leak and the flashing error code, and take action to prevent damage to the home. The home owner may also reset the control, possibly by turning the control knob, to have the water heater start functioning again. The controller may then go into a mode that recognizes the leak, but allows the water heater to function for a period of time, possibly a week, without flagging another error. This may be beneficial if the leak is not going to cause damage because the home owner may continue to use the water heater until such time as it could be replaced or repaired.


The second case may be useful for an upgrade to controls that do not necessarily have software to respond to the sensor, such as the Vesta™ controls that may be currently installed in homes. The sensor may reduce the voltage available to the control enough so that the control would shut down. The water may become cold, so the home owner would again investigate and discover the leak. Cold water is undesirable, but not necessarily nearly as undesirable as water damage to one's home. The disadvantages of this system compared to the first may be 1) there would be no flashing error code to communicate the leak to the home owner, so if the leak were not obvious, the home owner may be confused as to why the controller shut down, 2) the water may become cold, not just cool or moderately warm, and 3) the only way to allow the control to turn back on so the heater could be used may be to either move the sensor out of the water or to remove the sensor altogether. One recommendation may be to position the sensor in easy view so the first disadvantage would not necessarily be an issue.


The sensor may be made of a material that would have a very high electrical resistance when it is dry and would be a good electrical conductor when it is wet. A fixed resistor may likely be wired in series with this sensor and its value chosen to provide a voltage reduction as described herein. The two leads may then be connected at the same location as the thermopile connection on the water heater control so that it is in parallel with the thermopile.


The sensor material may be made from a number of compounds. Such a compound may need to be easily partially dissolved and ionized by water, which would allow it to conduct, such as a salt. The material may be such that it would not necessarily become entirely liquid or would be contained in a way that would prevent the material from leaking out of the sensor. The material may be made so it would never leak out of the sensor, but it may be acceptable to allow it to leak at a slow rate so the sensor will function for a limited period of time after it becomes wet. If the material could leak out, the sensor may effectively be a onetime-use sensor; but if the water heater is leaking, that may be probably ok. The material should be in a container that will allow the water in.


An alternate construction for the sensor may be having two wires forming a gap and using water between them as a conductor. Such an approach may be very inexpensive, but may also be dependent on the ion content of the water to reduce its resistance.


The sensor may be connected to an electrical input connector on the water heater (WH) control. The sensor may provide a specified electrical signal to this input when dry, most likely a large resistance, and a different signal when wet, most likely a low resistance. When the sensor becomes wet, the water heater control may recognize this condition and perform certain actions to alert the home owner. Such actions may include, but would not necessarily be limited to, 1) sounding an audible alarm, 2) putting the water heater control in a pilot only mode or idle mode, or reducing the temperature set point to significantly reduce the water temperature or change an operating level, 3) flashing an error code, and/or 4) sending an electronic message.


The sensor may use any type of electrical signal, could be passive (unpowered) or active (powered), but may most likely be resistive. If the sensor is resistive, it may essentially be an open circuit when dry, and essentially be a short circuit when wet.


The sensor may be made of a material that would have a very high electrical resistance when it is dry and would be a good electrical conductor when it is wet. A fixed resistor may likely be wired in series with this sensor and its value chosen to provide a voltage reduction as described herein. The two leads may then be connected at the same location as the thermopile connection on the water heater control so that it is in parallel with the thermopile.


The sensor material may be made from a number of compounds. Such a compound may need to be easily partially dissolved and ionized by water, which may allow it to conduct, such as a salt. The material may be such that it would not necessarily become entirely liquid or would be contained in a way that would prevent the material from leaking out of the sensor. The material may be made so it would never leak out of the sensor, but it may be acceptable to allow it to leak at a slow rate so the sensor will function for a limited period of time after it becomes wet. If the material could leak out, the sensor may effectively be a onetime-use sensor, but if the water heater is leaking, that may be probably ok. The material should be in a container that will allow the water in.


An alternate construction for the sensor may be having two wires forming a gap and using water between them as a conductor. Such an approach may be rather inexpensive, but would also be dependent on the ion content of the water to reduce its resistance.


The water heater control may be upgraded from current designs to include a small, but loud alarm speaker. Such a speaker may be applied to water heater controls that are powered from wall power, 24V volts, or thermopiles. In wall powered or 24V systems, the speaker may be driven directly and provide pretty much any sound desired, using digital sound generating or transformation circuitry. In thermopile powered systems, the control may include some type of power storage system such as a battery or a super capacitor to provide power to drive the speaker. A capacitor circuit may take excess power from the thermopile to charge the super cap and provide the audible alarm whenever the super cap had sufficient power to do so. Such an audible alarm may most likely have to be a short, loud, high frequency noise sounded periodically. The speaker may be any type of speaker, but the lower the power consumption the better, at least for thermopile powered controls.



FIG. 1 is a diagram of a circuit for water leak detection. A leak sensor 11 may be situated in an area where water from a water heater or other appliances may gather if the heater or other appliance is to spring a leak, even if very small. Leak sensor 11 may contain a sensing element 12 that may have a very large resistance when it is dry. The sensing element may have a significantly lower resistance when it becomes moist or wet. A thermopile 13 may provide a voltage to a water heater 16 control module 14 for its operation at a connection 15. Leak sensor may be connected in parallel with thermopile 13. If sensing element becomes moist or wet, then a significant load may be applied to thermopile 13 which reduces its output. The lower output voltage to heater control module 14 may result in a shutdown of control module 14 and in turn water heater 16 controlled by control module 14, a reduction in operation of water heater 16, or other action relative to control module 14 and water heater 16. Resistor 17 may be connected in series with one of the connections of sensing element 12 to adjust the effect of sensing element 12 on thermopile 13.



FIG. 2 is a diagram that reveals a graph 21 showing an effect of moisture on a material used in sensing element 12. Curve 22 is a plot of resistance of sensing element 12 in terms of K-ohms versus dry to wet conditions of the material. Curve 23 is a plot of current flow in sensing element 12 in terms of milliamps versus dry to wet conditions of the material.



FIG. 3 is another diagram that reveals a graph 25 showing an effect of moisture on the material used in sensing element 12. Curve 22 is a plot of current flow in sensing element 12 versus dry to wet conditions like that of curve 22 in graph 21 of FIG. 2. A curve 26 is a plot of voltage provided at connection 15 to heater control module 14 versus dry to wet conditions.



FIG. 4 is a diagram of another circuit in lieu of the circuit of FIG. 1, for water leak detection. A leak sensor 28 may be used in lieu of leak sensor 11. Leak sensor 28 may have two leads, wires or probes 31 and 32 having a gap between them and using water as a conductor to short out the gap. Sensor 28 may use a signal amplifier 27 to detect the current between the two wires/conductors. Amplifier 27 may be incorporated in sensor 28 or in water heater control module 14.



FIG. 5 is a diagram of blocks or symbols illustrating the various conditions from dry to wet on a leak sensor. Symbol 41 may indicate a dry condition around a water heater. Here, sensor resistance may be very large. Voltage to a water heater control module may be nominal. No action is necessarily needed by the control module.


A symbol 42 may indicate a very slow leak condition of the water heater. The floor around may have a very small damp area near the heater but not enough to spread. The leak sensor may become slightly damp and the sensor resistance may be reduced slightly. The voltage to the heater control module may incur a minor reduction. Action relative to the slightly damp condition is not necessarily taken.


A symbol 43 may indicate a leak that may increase slightly resulting in a small area of pooled water that forms. The leak sensor may become moist with the sensor resistance reduced slightly. A further reduction in voltage to the heater control module may be past an initial threshold. This situation may result in a flash of an error code. A Wi-Fi signal may be sent if equipped.


In symbol 44, a leak may be revealed to increase to a point where action is needed to prevent damage. The leak sensor may become wet and the sensor resistance may be reduced significantly. A voltage to the heater control module may drop past a critical threshold. The heater control module may go into a pilot only mode and flash an error code, or the module may shut down. An audible alarm may be sounded. A Wi-Fi signal may be sent if equipped. For the case described in symbol 44, it may also be that the sensor responds like a switch, going from high resistance or open circuit to low resistance or closed circuit essentially instantly. Basically, the sensor may detect water to some threshold, then indicate it as a leak. Until that point, the sensor has necessarily no effect on a leak detection system.



FIG. 6 is a diagram of a leak sensor 46 similar to leak sensor 28 of FIG. 4 but not connected across the terminals of a thermopile voltage source 13. Leak sensor 46 may be connected to a water heater control with an external power source, for example 24 VAC or line voltage, such as a Power Vent water heater control. Leak sensor 46 may have water heater control module 47 via a dedicated connection or an RS232 connection 48, among other types of connections. Control module 47 may have a speaker 49 for alarms, notices, announcements, and the like. Speaker 49 may also or instead be incorporated in leak sensor 46. Leak sensor 46 may have leads, electrodes or bare wire ends 51 and 52 at a floor surface near a water heater that is being monitored for leaks. Sensor 28 may use a signal amplifier 53 to better detect a current between the two wires or conductors. Amplifier 27 may be incorporated in sensor 46 or in water heater control module 47.



FIG. 7 is a diagram of a leak sensor 55 similar to leak sensor 11 of FIG. 1 but not connected across the terminals of a thermopile voltage source 13. The connection from leak sensor 55 to control module 47 may be dedicated. Various other kinds of connections may be incorporated as a connection 56. Leak sensor 55 may have a sensing element 57 that detects dry, damp, moist and wet conditions. Sensing element 57 may contain a material like that of sensing element 12 of FIG. 2. Characteristics of the material are illustrated in the graphs 21 and 25 of FIG. 2 and FIG. 3, respectively. A resistor 58 may be connected in series with one of the leads of sensing element 57 to connection 56 of heater control module 47. Heater control module 47 in FIG. 6 and FIG. 7 may be connected to a water heater 16. In the configuration of FIG. 7, it may be advantageous for refined detection to have a connection 59 between sensing element 57 and resistor 58 to sense a voltage at that point. Connection 59 may be optional.



FIG. 8 is a diagram of an alarm speaker power circuit for leak detection systems of FIG. 6 and FIG. 7. A thermopile 61 may have one terminal connected to a current limiting resistor 62. The other end of resistor 62 may be connected to a drain-terminal of an N-channel MOSFET 63. A source terminal of FET 63 may be connected to a first electrode of a super capacitor 64. The second electrode of capacitor 64 may be connected to another terminal of thermopile 61. A microcontroller 65 may provide a signal to a gate of FET 63 to control an amount of current from thermopile 61 to charge capacitor 64. Super capacitor 64 may be charged from excess thermopile power and stored for used by a speaker 66. One terminal of speaker 66 may be connected to the second electrode of capacitor 64. The other terminal of speaker 66 may be connected to a source of an N-channel MOSFET 67. A drain of FET 67 may be connected to the first electrode of capacitor 64. FET 67 may control an amount of current from super capacitor 65 to speaker with a signal from microcontroller 65 to a gate of FET 67. A current control component may incorporate another kind of electronic device besides a FET. The power or voltage source may be another kind of device besides a thermopile.



FIG. 9 is a diagram where FET 63 may instead be connected below the super cap 64. Speaker 66 may be placed above the FET item 67. One terminal of voltage source 61 may be connected to one end of current limiting resistor 62 and another terminal connected to a source of FET 63 and a source of FET 67. The other end of resistor 62 may be connected to a first electrode of super capacitor 64 and to a terminal of speaker 66. A second electrode of capacitor 64 may be connected to a drain of FET 63. A signal from microcontroller 65 to charge up capacitor 64 may go along a line to FET 63. Another signal from microcontroller 65 to drive speaker 66 may go along a line to a gate of FET 67. Another terminal of speaker 66 may be connected to a drain of FET 67.


A power vent does not necessarily require the capacitor 64 circuit version for providing power to speaker 66. The power vent may drive speaker 66 directly in the systems shown by diagrams of FIG. 6 and FIG. 7.



FIG. 10 is a diagram of another circuit for water leak detection that appears similar to the circuit shown in FIG. 1. However, leak sensor 11 is connected in series with voltage source 13 in the circuit of FIG. 10 rather than in parallel as in the circuit of FIG. 1. In this case, the sensing element may be of low resistance or a closed circuit when dry and of high resistance or an open circuit when wet.



FIG. 11 is a diagram of a circuit for water leak detection system that has a leak sensor 71 utilizing a moisture, water or humidity or other kind of detector 72. Detector 72 may be a switch that indicates a presence of dryness and wetness with an open or closed switch. Leak sensor 71 may detect moisture in a manner different than that of leak sensors 11, 28, 46 and 55, of circuits in the diagrams of FIGS. 1 and 9, 4 and 10, 6, and 7, respectively. Leak sensor 71 may be constructed as a switch or other electrical mechanism that does not necessarily have a change in resistance in a presence of water from, for example, water heater 16. An indication of moisture or water may be indicated on a display, an audible alarm may sound, a light may flash, or a communication may be sent, and so forth. For an example of power for an indication, an alarm, a light, a communication, a display, and so on, may be powered by a thermopile, a super capacitor, a battery, or other source of power.


A connection 74 to water heater control module 14 may be a dedicated connection, an RS232 connection, a voltage source connection such as that of a thermopile, or some other kind of connection.



FIG. 12 is a diagram of a circuit for a water leak detection system like that shown in the diagram of FIG. 11. One difference is that leak sensor 71 may instead be connected in series with source 73 rather than in parallel.



FIG. 13 is a diagram of water leak detection system for an appliance in general. A leak detector 81 may be connected to an appliance control module 82, a power source 83 and an information indicating mechanism 84. Appliance control module 82 may be connected to an appliance 85.


To recap, a moisture detector may incorporate a water heater control module, a moisture detection circuit connected to the water heater control module, and a voltage source connected to the moisture detection circuit and to the water heater control module. The voltage source and the moisture detection circuit may provide a first voltage level to the water heater control module when the moisture detection circuit detects a dry condition. The voltage source and the moisture detection circuit may provide a second voltage level to the water heater control module when the moisture detection circuit detects a wet condition. The voltage source and the moisture detection circuit may provide a third voltage level to the water heater control module when the moisture detection circuit detects a condition between the dry condition and the wet condition.


A voltage level to the water heater control module may indicate whether a water heater that the water heater control module controls, has a leak.


The second voltage level may indicate a condition of moisture that causes the water heater control module to reduce a water temperature set point of the water heater, flash an error code, or send an electronic message, to indicate a presence of moisture due to a leak in the water heater, or the second voltage level may indicate a wet condition that uses the water heater control module to go to a pilot light only mode for the water heater, flash an error code, shut down the water heater, sound an audible alarm, or send an electronic message, indicating that action is needed to prevent water damage.


When the third voltage level is at the first voltage level or the second voltage level, no action is necessarily needed relative to the water heater having a leak. When the third voltage level is at the second voltage level, action may be needed relative to the water heater having a leak.


The voltage source and the moisture detection circuit may be connected in series.


The voltage source and the moisture detection circuit may be connected in parallel.


The audible alarm may be powered by a super capacitor that is charged by power from the voltage source.


The moisture detection circuit may incorporate a sensing element that has a resistance that changes upon contact with moisture, or the moisture detection circuit may incorporate a sensing element that indicates contact with moisture without a change in resistance.


An approach for detection of a leak from a water heater may incorporate connecting a moisture detector to a control module for a water heater, and connecting a voltage source to the moisture detector. The moisture detector may have has a resistance that changes upon contact with moisture. Changes of the resistance of the moisture detector may change the voltage of the voltage source. Changes of the voltage of the voltage source may be detected by the control module and interpreted by the control module as a change in a level of moisture detected by the moisture detector. The moisture detector may be situated in a place where if the water heater has a leak, moisture from the leak would gather at the place.


The approach may further incorporate equating an amount of a change of voltage of the voltage source, detected by the control module to an amount of change of moisture detected by the moisture detector.


A first level of voltage may indicate a lack of moisture in the place where the moisture detector is situated. A second level of voltage may indicate wetness in the place where the moisture detector is situated. A third level of voltage may indicate a condition of moisture between a lack of moisture and wetness in the place where the moisture detector is situated.


The first level of voltage detected by the control module may result in no action needed relative to the water heater. The second level of voltage detected by the control module may result in going to a pilot light only mode for the water heater, flashing an error code, shutting down the water heater, sounding an audible alarm, or sending an electronic message, to indicate that action is needed to prevent or minimize water damage caused by a leak in the water heater.


The control module may be powered by the voltage source. The voltage source may be an item selected from a group incorporating thermopiles, line power, batteries, solar cells, charged super capacitors, and wind generators.


An appliance leak detection system may incorporate a leak sensor, a control module connected to an appliance, and a voltage source connected to the leak sensor and the control module. The appliance may be selected from a group incorporating a water heater, a dishwasher and a washing machine. The leak sensor may be located in an area where dampness or wetness would appear if the appliance had a leak, and would be sensed by the leak sensor.


The leak sensor may have a resistance of an open circuit when situated in an area of dryness, and have a resistance of a short circuit when situated in an area of wetness.


The leak sensor may be selected from a group of items incorporating non-discrete variable resistance moisture detectors, discrete variable resistance moisture detectors and moisture sensitive switches.


The leak sensor may have a resistance of a closed circuit when situated in an area of dryness, and have a resistance of an open circuit when situated in an area of wetness.


The leak sensor may have a resistance that changes according to an amount of dampness or wetness detected by the leak sensor. A magnitude of voltage from the voltage source may be present at the control module. When a resistance of the leak sensor changes, the magnitude of voltage present at the control module may change.


When the magnitude of voltage present at the control module changes, the control module may recognize a change of an amount of dampness or wetness detected by the leak sensor.


The amount of dampness or wetness detected by the leak sensor may vary from dry to wet.


A dry condition may indicate zero percent moisture and a wet condition may indicate one hundred percent moisture. A level one may be a dry condition. A level two may be a predetermined percent of moisture greater than zero percent. A level three may be a predetermined percentage of moisture greater than that of level two and less than one hundred percent moisture. A level four may be a wet condition.


At level one the control module may operate in a routine manner. At level two, the control module may operate in a routine manner. At level three the control module may flash an error code, change an operating level or reduce a water temperature set point of the appliance, or send a Wi-Fi signal to indicate a presence of moisture, or shut down the appliance and sound an audible alarm. At level four, the control module may go to an idle mode for the appliance, flash an error code, shut down the appliance, sound an audible alarm, or send a Wi-Fi signal indicating action is needed to prevent water damage.


The voltage source may be selected from a group incorporating thermopiles, line power, batteries, solar cells, charged super capacitors, and wind generators.


U.S. patent application Ser. No. 14/225,282, filed Mar. 25, 2014, is hereby incorporated by reference. U.S. patent application Ser. No. 14/225,308, filed Mar. 25, 2014, is hereby incorporated by reference.


Any publication or patent document noted herein is hereby incorporated by reference to the same extent as if each publication or patent document was specifically and individually indicated to be incorporated by reference.


In the present specification, some of the matter may be of a hypothetical or prophetic nature although stated in another manner or tense.


Although the present system and/or approach has been described with respect to at least one illustrative example, many variations and modifications will become apparent to those skilled in the art upon reading the specification. It is therefore the intention that the appended claims be interpreted as broadly as possible in view of the related art to include all such variations and modifications.

Claims
  • 1. A moisture detection system comprising: a thermopile configured to generate a thermopile voltage;a control module configured to control operation of a water heater;a moisture detection circuit connected to the control module, wherein the moisture detection circuit is configured to: have a first resistance when dry such that a draw down of the thermopile voltage caused by the first resistance is insufficient to cause the control module to shut down; andhave a decreased resistance compared to the first resistance in the presence of moisture or water such that a draw down of the thermopile voltage caused by the decreased resistance is sufficient to cause the control module to shut down.
  • 2. The moisture detection system of claim 1, further comprising a power storage system configured to charge from the thermopile voltage, wherein the power storage system comprises a capacitor.
  • 3. The moisture detection system of claim 2, wherein the control module is configured to control an amount of current delivered from the thermopile to the power storage system.
  • 4. The moisture detection system of claim 2, further comprising: an information indicating mechanism powered by the power storage system,wherein the control module is configured to cause the information indicating mechanism to generate information indicating a presence of moisture or water in response to determining that the moisture or the water is present.
  • 5. The moisture detection system of claim 4, wherein the information indicating mechanism comprises a speaker and wherein the information indicating the presence of moisture or water comprises an audible alarm, wherein the power storage system provides powers to the speaker.
  • 6. The moisture detection system of claim 1, wherein the control module is configured to send a Wi-Fi signal indicating that action is needed in response to determining that the moisture or the water is present.
Parent Case Info

This application is a Continuation of U.S. patent application Ser. No. 15/617,905, filed Jun. 8, 2017, and entitled Water Leak Detection System, which is a Continuation of U.S. patent application Ser. No. 15/061,520, filed Mar. 4, 2016, and entitled Water Leak Detection System, which claims the benefit of U.S. Provisional Application Ser. No. 62/128,956, filed Mar. 5, 2015, and entitled “Water Heater Leak Detection System”. U.S. Provisional Application Ser. No. 62/128,956, filed Mar. 5, 2015, is hereby incorporated by reference. U.S. patent application Ser. No. 15/061,520, filed Mar. 4, 2016, is hereby incorporated by reference. U.S. patent application Ser. No. 15/617,905, filed Jun. 8, 2017, is hereby incorporated by reference.

US Referenced Citations (270)
Number Name Date Kind
2331718 Newtown Oct 1943 A
2920126 Hajny Jan 1960 A
3272432 Davidson Sep 1966 A
3289936 Coburn Dec 1966 A
3523175 Gygax Aug 1970 A
3759279 Smith, Jr. Sep 1973 A
3833428 Snyder et al. Sep 1974 A
3847350 Thompson Nov 1974 A
3849350 Matsko Nov 1974 A
3909816 Teeters Sep 1975 A
3948439 Heeger Apr 1976 A
4041375 Polukhina Aug 1977 A
4127380 Straitz, III Nov 1978 A
4131413 Ryno Dec 1978 A
4211735 Berlin Jul 1980 A
4221557 Jalics Sep 1980 A
4257389 Texidor et al. Mar 1981 A
4305547 Cohen Dec 1981 A
4324207 Leuthard Apr 1982 A
4324944 Weihrich et al. Apr 1982 A
RE30936 Kmetz et al. May 1982 E
4333002 Kozak Jun 1982 A
4421062 Padilla, Sr. Dec 1983 A
4438728 Fracaro Mar 1984 A
4467178 Swindle Aug 1984 A
4483672 Wallace et al. Nov 1984 A
4495488 Streib Jan 1985 A
4507938 Hama et al. Apr 1985 A
4508261 Blank Apr 1985 A
4511790 Kozak Apr 1985 A
4568821 Boe Feb 1986 A
4588875 Kozak et al. May 1986 A
4598273 Bryan, Jr. et al. Jul 1986 A
4638789 Ueki et al. Jan 1987 A
4655705 Shute et al. Apr 1987 A
4692598 Yoshida et al. Sep 1987 A
4696639 Bohan, Jr. Sep 1987 A
4705936 Fowler Nov 1987 A
4734658 Bohan, Jr. Mar 1988 A
4742210 Tsuchiyama et al. May 1988 A
4770629 Bohan, Jr. Sep 1988 A
4778378 Dolnick et al. Oct 1988 A
4830601 Dahlander et al. May 1989 A
4834284 Vandermeyden May 1989 A
4901751 Story Feb 1990 A
4906337 Palmer Mar 1990 A
4965232 Mauleon et al. Oct 1990 A
4977885 Herweyer et al. Dec 1990 A
4984981 Pottebaum Jan 1991 A
4986468 Deisinger et al. Jan 1991 A
5007156 Hurtgen Apr 1991 A
5008650 Hoiberg Apr 1991 A
5037291 Clark Aug 1991 A
5077550 Cormier Dec 1991 A
5090871 Story Feb 1992 A
5103078 Boykin et al. Apr 1992 A
5112217 Ripka et al. May 1992 A
5125068 McNair et al. Jun 1992 A
5126721 Butcher et al. Jun 1992 A
5222888 Jones et al. Jun 1993 A
5232582 Takahashi et al. Aug 1993 A
5236328 Tate et al. Aug 1993 A
5280802 Comuzie, Jr. Jan 1994 A
5317670 Elia Mar 1994 A
5334973 Furr Aug 1994 A
5391074 Meeker Feb 1995 A
5424554 Marran et al. Jun 1995 A
5442157 Jackson Aug 1995 A
5467077 Wunderlich et al. Nov 1995 A
5546009 Raphael Aug 1996 A
5567143 Servidio Oct 1996 A
5622200 Schulze Apr 1997 A
5660328 Momber Aug 1997 A
5779143 Michaud et al. Jul 1998 A
5791890 Maughan Aug 1998 A
5797358 Brandt et al. Aug 1998 A
5857845 Paciorek Jan 1999 A
5896089 Bowles Apr 1999 A
5968393 Demaline Oct 1999 A
5971745 Bassett et al. Oct 1999 A
5975884 Dugger Nov 1999 A
6053130 Shellenberger Apr 2000 A
6059195 Adams et al. May 2000 A
6069998 Barnes et al. May 2000 A
6075923 Wu Jun 2000 A
6080971 Seitz et al. Jun 2000 A
6208806 Langford Mar 2001 B1
6212894 Brown et al. Apr 2001 B1
6236321 Troost, IV May 2001 B1
6246831 Seitz Jun 2001 B1
6261087 Bird Jul 2001 B1
6271505 Henderson Aug 2001 B1
6286464 Abraham et al. Sep 2001 B1
6293471 Stettin et al. Sep 2001 B1
6299433 Gauba et al. Oct 2001 B1
6350967 Scott Feb 2002 B1
6351603 Waithe et al. Feb 2002 B2
6363218 Lowenstein et al. Mar 2002 B1
6371057 Henderson Apr 2002 B1
6375087 Day et al. Apr 2002 B1
6389881 Yang et al. May 2002 B1
6390029 Alphs May 2002 B2
RE37745 Brandt et al. Jun 2002 E
6410842 McAlonan Jun 2002 B1
6450966 Hanna Sep 2002 B1
6455820 Bradenbaugh Sep 2002 B2
6489895 Apelman Dec 2002 B1
6553946 Abraham et al. Apr 2003 B1
6560409 Troost, IV May 2003 B2
6606968 Iwama et al. Aug 2003 B2
6629021 Cline et al. Sep 2003 B2
6631622 Ghent et al. Oct 2003 B1
6633726 Bradenbaugh Oct 2003 B2
6684821 Lannes et al. Feb 2004 B2
6701874 Schultz et al. Mar 2004 B1
6732677 Donnelly et al. May 2004 B2
6794771 Orloff Sep 2004 B2
6795644 Bradenbaugh Sep 2004 B2
6832407 Salem et al. Dec 2004 B2
6835307 Talbert et al. Dec 2004 B2
6845110 Gibson Jan 2005 B2
6861621 Ghent Mar 2005 B2
6880493 Clifford Apr 2005 B2
6920377 Chian Jul 2005 B2
6934862 Sharood et al. Aug 2005 B2
6936798 Moreno Aug 2005 B2
6955301 Munsterhuis et al. Oct 2005 B2
6959876 Chian et al. Nov 2005 B2
6967565 Lingemann Nov 2005 B2
6973819 Ruhland et al. Dec 2005 B2
6973828 Zimmermann Dec 2005 B2
6995301 Shorrosh Feb 2006 B1
7032542 Donnelly et al. Apr 2006 B2
7065431 Patterson et al. Jun 2006 B2
7076373 Munsterhuis et al. Jul 2006 B1
7088238 Karaoguz et al. Aug 2006 B2
7103272 Baxter Sep 2006 B2
7117825 Phillips Oct 2006 B2
7137373 Seymour, II et al. Nov 2006 B2
7142123 Kates Nov 2006 B1
7162150 Welch et al. Jan 2007 B1
7167813 Chian et al. Jan 2007 B2
7221862 Miller May 2007 B1
7250547 Hofmeister et al. Jul 2007 B1
7252502 Munsterhuis Aug 2007 B2
7255285 Troost et al. Aug 2007 B2
7298968 Boros et al. Nov 2007 B1
7317265 Chian et al. Jan 2008 B2
7346274 Bradenbaugh Mar 2008 B2
7373080 Baxter May 2008 B2
7380522 Krell et al. Jun 2008 B2
7432477 Teti Oct 2008 B2
7434544 Donnelly et al. Oct 2008 B2
7469550 Chapman, Jr. et al. Dec 2008 B2
7506617 Paine Mar 2009 B2
7526539 Hsu Apr 2009 B1
7603204 Patterson et al. Oct 2009 B2
7613855 Phillips et al. Nov 2009 B2
7623771 Lentz et al. Nov 2009 B2
7634976 Gordon et al. Dec 2009 B2
7672751 Patterson et al. Mar 2010 B2
7712677 Munsterhuis et al. May 2010 B1
7744007 Beagen et al. Jun 2010 B2
7744008 Chapman, Jr. et al. Jun 2010 B2
7770807 Robinson et al. Aug 2010 B2
7798107 Chian et al. Sep 2010 B2
7804047 Zak et al. Sep 2010 B2
7902959 Yamada et al. Mar 2011 B2
7932480 Gu et al. Apr 2011 B2
7934662 Jenkins May 2011 B1
7970494 Fima Jun 2011 B2
7973667 Crnkovich et al. Jul 2011 B2
7974527 Adler Jul 2011 B1
8031079 Kates Oct 2011 B2
8061308 Phillips Nov 2011 B2
8074894 Beagen Dec 2011 B2
8083104 Roetker et al. Dec 2011 B2
8111980 Bradenbaugh Feb 2012 B2
8165726 Nordberg et al. Apr 2012 B2
8204633 Harbin, III et al. Jun 2012 B2
8245987 Hazzard et al. Aug 2012 B2
8248256 Gerardi et al. Aug 2012 B1
8322312 Strand Dec 2012 B2
8360334 Nold et al. Jan 2013 B2
8367984 Besore et al. Feb 2013 B2
8422870 Nelson et al. Apr 2013 B2
8485138 Leeland Jul 2013 B2
8498527 Roetker et al. Jul 2013 B2
8600556 Nesler et al. Dec 2013 B2
8606092 Amiran et al. Dec 2013 B2
8660701 Phillips et al. Feb 2014 B2
8667112 Roth et al. Mar 2014 B2
8726789 Clark May 2014 B2
8770152 Leeland et al. Jul 2014 B2
9080769 Bronson et al. Jul 2015 B2
9122283 Rylski et al. Sep 2015 B2
9195242 Zobrist et al. Nov 2015 B2
9228746 Hughes et al. Jan 2016 B2
9249986 Hazzard et al. Feb 2016 B2
9262909 Grant Feb 2016 B1
9268342 Beyerle et al. Feb 2016 B2
9310098 Buescher et al. Apr 2016 B2
9433742 Manzke et al. Sep 2016 B2
9799201 Hazzard et al. Oct 2017 B2
9920930 Heil et al. Mar 2018 B2
10088852 Hazzard et al. Oct 2018 B2
10132510 Heil et al. Nov 2018 B2
20020000049 Woerdehoff et al. Jan 2002 A1
20020099474 Khesin Jul 2002 A1
20030093186 Patterson et al. May 2003 A1
20040042772 Whitford et al. Mar 2004 A1
20040060346 Bonne et al. Apr 2004 A1
20040079152 Sorenson Apr 2004 A1
20040079749 Young et al. Apr 2004 A1
20040261504 Hutchinson Dec 2004 A1
20050067049 Fima Mar 2005 A1
20050138990 Phillips et al. Jun 2005 A1
20050225335 Filipkowski Oct 2005 A1
20050275528 Kates Dec 2005 A1
20060007008 Kates Jan 2006 A1
20060027571 Miyoshi et al. Feb 2006 A1
20060044133 Lou Mar 2006 A1
20060174692 Bonne Aug 2006 A1
20060272830 Giovanni Dec 2006 A1
20070023333 Mouhebaty et al. Feb 2007 A1
20070208517 Glenn et al. Sep 2007 A1
20070210177 Karasek Sep 2007 A1
20070292810 Maiello et al. Dec 2007 A1
20080003530 Donnelly et al. Jan 2008 A1
20080023564 Hall Jan 2008 A1
20080048046 Wagner et al. Feb 2008 A1
20080188995 Hotton et al. Aug 2008 A1
20080197206 Murakami et al. Aug 2008 A1
20090117503 Cain May 2009 A1
20090139301 Gunsay Jun 2009 A1
20090224927 Sudy et al. Sep 2009 A1
20100065764 Canpolat Mar 2010 A1
20100102082 Ebrom Apr 2010 A1
20100163016 Pan Jul 2010 A1
20100182015 Gunsay Jul 2010 A1
20100188232 Lambert Jul 2010 A1
20100315245 Wofford Dec 2010 A1
20110054711 Kucera Mar 2011 A1
20110093220 Yang Apr 2011 A1
20110254661 Fawcett et al. Oct 2011 A1
20110259322 Davis et al. Oct 2011 A1
20110305444 Pussell Dec 2011 A1
20120060771 Brian et al. Mar 2012 A1
20120060829 DuPlessis et al. Mar 2012 A1
20130021159 Timm Jan 2013 A1
20130037129 Murphy Feb 2013 A1
20130104814 Reyman May 2013 A1
20130154441 Redmond Jun 2013 A1
20130182360 Stevens Jul 2013 A1
20140060457 Hill et al. Mar 2014 A1
20140202549 Hazzard et al. Jul 2014 A1
20140203093 Young et al. Jul 2014 A1
20140212821 Banu et al. Jul 2014 A1
20150000380 Cho et al. Jan 2015 A1
20150011206 Wellinger Jan 2015 A1
20150083384 Lewis, Jr. et al. Mar 2015 A1
20150120067 Wing et al. Apr 2015 A1
20150276268 Hazzard et al. Oct 2015 A1
20150277463 Hazzard et al. Oct 2015 A1
20150354833 Kreutzman Dec 2015 A1
20160080553 Dempster Mar 2016 A1
20160172570 Wright et al. Jun 2016 A1
20170167736 Heil et al. Jun 2017 A1
20180231430 Kim et al. Aug 2018 A1
20180233022 Nguyen et al. Aug 2018 A1
Foreign Referenced Citations (28)
Number Date Country
2158120 Mar 1997 CA
201772614 Mar 2011 CN
201909441 Jul 2011 CN
102213489 Oct 2011 CN
203203717 Sep 2013 CN
0356609 Mar 1990 EP
0531072 Mar 1993 EP
0699316 Jul 1999 EP
0967440 Dec 1999 EP
1148298 Oct 2004 EP
1621814 Feb 2006 EP
1178748 Oct 2006 EP
2108140 Jun 2012 EP
2820206 Aug 2002 FR
2211331 Jun 1989 GB
H08264469 Oct 1996 JP
2005283039 Oct 2005 JP
2006084322 Mar 2006 JP
2008008548 Jan 2008 JP
2011220560 Nov 2011 JP
2012052168 Mar 2012 JP
2012052700 Mar 2012 JP
1431223 Mar 2014 TW
9718417 May 1997 WO
2008102263 Aug 2008 WO
2009022226 Feb 2009 WO
2009061622 May 2009 WO
2011104592 Sep 2011 WO
Non-Patent Literature Citations (29)
Entry
Reliance Water Heaters, “Service Handbook for Standard Residential FVIR Gas Water Heaters, Models: G/LORT, G/LORS, G/LBRT, G/LBRS/ G/LBCT, G/LBCS, G/LKRT, G/LKRS, G/LKCT, G/LART, G/LARS, G/LXRT, GLQRT—Series 200/201 and Series 202/203,” 44 pages, Nov. 2009.
“Results and Methodology of the Engineering Analysis for Residential Water Heater Efficiency Standards,” 101 pages, Oct. 1998.
AO Smith, “IComm Remote Monitoring System, Instruction Manual,” 64 pages, Jun. 2009.
Filibeli et al., “Embedded Web Server-Based Home Appliance Networks,” Journal of Network and Computer Applications, vol. 30, pp. 499-514, 2007.
Halfbakery.com, “Hot Water Alarm,” 2 pages, Sep. 4, 2002.
Heat Transfer Products Inc., “Specification for Heat Transfer Products, Inc., Vision 3 System,” 2 pages, Mar. 17, 2006.
Hiller, “Dual-Tank Water Heating System Options,” ASHRAE Transactions: Symposia, pp. 1028-1037, Downloaded Nov. 16, 2012.
Honeywell International Inc., “CS8800 General Assembly, Drawing No. 50000855,” 2 pages, Oct. 24, 2008.
Honeywell International Inc., “Thermopile Assembly, Drawing No. 50006821,” 1 page, Jun. 18, 2010.
Honeywell International Inc., “Thermopile Element, Drawing No. 50010166,” 1 page, Apr. 1, 2005.
Honeywell International Inc., “Thermopile General Assembly, Drawing No. 50006914,” 1 page, Jan. 12, 2006.
Honeywell International Inc., Photograph of a CS8800 Thermocouple Assembly, 1 page, saved Oct. 9, 2014.
http://nachi.org/forum/f22/dual-water-heater-installations-36034/, “Dual Water Heater Installation,” 10 pages, printed Oct. 1, 2012.
http://www.whirlpoolwaterheaters.com/learn_more/energysmartelectricwaterheateroperation.aspx, link no longer functions, “Energy Smart Electric Water Heater Operation,” 3 pages, prior to Nov. 13, 2012.
http://www.whirlpoolwaterheaters.com/learn-more/eletric-water-heaters/6th-sense%E2% . . . , “Whirlpool Energy Smart Electric Water Heater, Learn More,” 3 pp., printed Jan. 15, 2015.
Industrial Controls, “Basics of PID Control (Proportional+Integral+Derivative),” downloaded from https://web.archive.org/web/20110206195004/http://wwww.industrialcontrolsonline.com /training/online/basics-pid-control-proportionalintegralderivative, 4 pages, Feb. 6, 2011.
InspectAPedia, “Guide to Alternative Hot Water Sources,” 6 pages, printed Oct. 1, 2012.
Johnson Controls, “K Series BASO Thermocouples, Heating Line Product Guide 435.0, Thermocouples Section, Product Bulletin K Series,” 8 pages, Oct. 1998.
Lennox, “Network Control Panel, User's Manual,” 18 pages, Nov. 1999.
Moog, “M3000 Control System, RTEMP 8, Remote 8-Channel Temperature Controller with CanOpen Interface,” 6 pages, Nov. 2004.
Process Technology, “Troubleshooting Electric Immersion Heaters,” downloaded from http://www.processtechnology.com/troubleshootheaters.html, 3 pages, Mar. 22, 2010.
Raychem, “HWAT-ECO,” Tyco Thermal Control, 4 pages, 2012.
Techno Mix, “Installation-Series and Parallel,” downloaded from www.chinawinds. co.uk/diy_tips/installation_series_and_parallel.html, 5 pages, printed Oct. 1, 2012.
Triangle Tube, “Prestige Solo Condensing High Efficiency Gas Boiler,” 4 pages, revised Apr. 30, 2012.
Ellis “Detecting Alarm Sounds,” Department of Electrical Engineering, Columbia University, New York, NY, USA, www.ee.columbia.edu, 4 pages, prior to Sep. 27, 2016.
George Risk Industries, “WS-20 Home Water Leak Alarm System,” 3 pages, Jun. 20, 2008.
Light Engineered Displays, Inc., “Aqua Alert Advanced Water Leak Detection Systems,” 2 pages, accessed on or about to Jul. 20, 2016.
Prosecution History from U.S. Appl. No. 15/061,520, dated Nov. 3, 2016 through Jun. 15, 2017, 34 pp.
Prosecution History from U.S. Appl. No. 15/617,905, dated Oct. 18, 2017 through Jul. 13, 2018, 41 pp.
Related Publications (1)
Number Date Country
20180342146 A1 Nov 2018 US
Provisional Applications (1)
Number Date Country
62128956 Mar 2015 US
Continuations (2)
Number Date Country
Parent 15617905 Jun 2017 US
Child 16054788 US
Parent 15061520 Mar 2016 US
Child 15617905 US