Water delivery system
11853086 ยท 2023-12-26
Assignee
Inventors
- Hans L. Kuster (Barrington, RI, US)
- Michael McNamara (Coventry, RI, US)
- Michael Ferruccio (Warwick, RI, US)
Cpc classification
F24D2220/0257
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D17/0078
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G05D23/025
PHYSICS
Y10T137/6497
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A system for controlling water delivery throughout a household water delivery network that includes bathroom and kitchen sinks, as well as other equipment for dispensing water, said system including a controller disposed at a site, the temperature of the water of which is to be controlled; said controller including a temperature probe for detecting the water temperature at the site; a pump for circulating water from a water heater to the site; and a wireless communication network that interconnects the controller with the pump in order to control hot water delivered from the water heater based on sensed temperature at the temperature probe. Also a process for controlling the water temperature of a water delivery system that includes a pump, either via a wifi hub or a system APP. Also disclosed is a novel adjustment ring associated with the valve.
Claims
1. A recirculation valve for use with a water heater in a system that includes hot and cold water fixtures and a cold water supply, said recirculation valve comprising: a valve body having multiple connections in the form of a tee structure that has an internal chamber; a thermostatic element that is at least partially disposed in the internal chamber of the valve body; said thermostatic element including a support base constructed and arranged within the valve body and a thermal actuation piston that is responsive to water temperature within the valve body; said thermal actuation piston constructed and arranged to have a retracted position in which the thermal actuation piston is retracted into the support base, and an extended position in which the thermal actuation piston extends longitudinally away from the support base; a cap piece that engages with the thermal actuation piston; an end adjustment ring that engages with the valve body and that includes a center hole; said adjustment ring adapted for engagement with the cap piece to either open or close the hole in the adjustment ring in order to maintain a predetermined temperature.
2. The recirculation valve of claim 1 further including a spring that is disposed about the cap piece.
3. The recirculation valve of claim 2 wherein the spring is a coil spring.
4. The recirculation valve of claim 3 including an O-ring and the cap piece is pushed by the thermal actuation piston in order to seal against the O-ring.
5. The recirculation valve of claim 4 wherein one end of the coil spring rests against the adjustment ring and an opposite end of the coil spring rests against the cap piece.
6. The recirculation valve of claim 5 wherein a gap is defined between the annular support base and the valve body to enable flow in an open position.
7. The recirculation valve of claim 6 wherein the adjustment ring is adjusted by rotation to change a distance relative to the valve body.
8. The recirculation valve of claim 1 further including a spring that is disposed about the cap piece and has one end that abuts the adjustment ring.
9. The recirculation valve of claim 8 wherein the spring is a coil spring.
10. The recirculation valve of claim 1 including an O-ring that is disposed in the hole of the adjustment ring.
11. The recirculation valve of claim 10 wherein and the cap piece is extended by the thermal actuation piston in order to seal against the O-ring in a closed position of the valve.
12. The recirculation valve of claim 11 wherein and the cap piece is retracted by the thermal actuation piston in order to disengage from the O-ring in an open position of the valve.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) It should be understood that the drawings are provided for the purpose of illustration only and are not intended to define the limits of the disclosure. The foregoing and other objects and advantages of the embodiments described herein will become apparent with reference to the following detailed description when taken in conjunction with the accompanying drawings in which:
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DETAILED DESCRIPTION
(14) This invention is for a novel recirculation system for dedicated return line installations and one pipe systems. Refer to the drawings including
(15) The controller T connects to the tracking by-pass valve V which houses the temperature probe P for detecting the water temperature at the site, a receiver or Smart plug to receive a signal from the controller, a pump U that plugs into the receiver for circulating water from a water heater W to the site, and a wireless communication network to execute demand for hot water temperature in degrees based on the controller and APP program.
(16) In one embodiment the pump U uses a built in valve that turns on the pump if the temperature at the sink drops below 85 F or 90 F. The water that turned lukewarm in the hot pipe because no one used water for a while activates the pump at say 85 F and turns off when the following water arrives at the sink with 105 F water.
(17) Outdoor pump systems may be set to 115 F-125 F. Instead of dumping the water while waiting, we transfer the lukewarm water by means of a by-pass valve X under the sink into the cold line C. The drawings illustrate both the cold lines C and the hot lines H. Instead of using a valve in the pump, one can use a thermostatic by-pass valve to do the same. When the pump is installed in the garage or attic or outside, the ambient temperature may never drop to the above settings to start the pump. The concept of the present invention is to measure the temperature under the sink in a conditioned room. A controller (board) T keeps sensing the temperature continually or say every minute, 2 minutes, or 5 minutes. The controller T is preferably battery operated. The battery operated controller uses power as it does this. However, the measuring of temperature does not draw a lot of power. The sending of the command to turn on the pump does drain the battery. The pump probably turns on maybe 4 times an hour. When the controller measure the cut off temp of 105 or 125 for outdoor, the pump shuts off. By measuring the temperature inside, we are not affected by hot attic temperatures, or garage temperatures of 110 F, for example. Outdoor temperatures can be above the 115 F temperature and the pump does not turn on even when someone takes a shower and wants hot water.
(18) Thus, in accordance with the present invention the problem of various conditions as mentioned above is overcome by measuring the temperature at the particular site, send a signal via the WIFI network to the receiver Y where the pump U is plugged in. Refer to
(19) The receiver Y receives signals from the controller T to operate the pump U. This control is such that the pump turn on and off at certain controlled temperatures. The receiver Y is connected through a WIFI network; controlled from the controller T. The use of an APP enables extensive control of operation of the pump U on any desired basis. Refer to, for example,
(20) In
(21) The controller includes a temperature probe for detecting and reacting to the water temperature at the site, a tracking valve for housing the temperature sensor, a pump for circulating water from a water heater/tankless heater to the site, and a wireless communication network (WIFI), that interconnects the controller with the receiver near the pump in order to control hot water that is delivered from the water heater based on sensed temperature at the temperature probe. In accordance with other aspects of the present invention there is provided a tracking bypass valve which is disposed at the site and the temperature probe senses at the bypass valve. The sensor has a low voltage supply from the controller which varies the current or voltage in the power supply. The controller interprets these variations as specific temperature changes. At predetermined temperatures, the controller transmits signals using WIFI wireless networking technology to a smart plug (receiver) to turn the pump on or off.
(22) When the pump moves the hot water from the hot water heater to the point of use, cooling hot water in the hot water supply line moves out of the hot water supply line by means of the Aqua-Tracker by-pass valve which connects the hot water supply line to the cold-water supply line at the point of use. The cooling hot water is then returned to the hot water heater through the cold water supply line. A check valve Z in the Aqua-Tracker bypass valve V only allows water to flow from the hot water supply to the cold-water supply. Hot water temperatures are hereby maintained between a minimum and a maximum temperature or specific temperature.
(23) Using WIFI is important in that electricity is usually not available at the sink. Part of the system of the present invention is to have an APP where the homeowner can schedule when he or she wants hot water with a timer on the APP or make it ON Call where the user calls for hot water on the phone or on schedule.
(24) In accordance with the present invention, the controller logic is designed to use little power, so that the battery can last 12 to 16 month. By not running the pump and the heater during multiple hour segments, but on the APP with exact input at what temperature one wants to turn on the pump, one can have lower electric bills for the pump, and also lower gas bills to fire the tankless heaters or hot water tank.
(25) System Capability
(26) The system works with HubsEcho Dot (Alexa/Amazon) Home Pod (Siri/Apple) Nest (Google) etc. or hub less. It may operate for a few hours a few times a day. It includes an App that is hub and hub less and smart plug compatible. App set up is an option or ON DEMAND option that defines when it operates.
(27) Schedules can be different for every day of the week or user can set up any start or stop by using the App or hub. The end user can start the kit even during times that are not part of the routine with the App or hub, however, they will have to stop it with the App or hub also. If they do not stop it, the kit will continue to operate until the end of the next cycle in the routine.
(28) The system and algorithm can operate continuously, hub or hub less if the App and smart plug are compatible with each other and/or with the hub if one is used.
(29) ON DEMAND (ON CALL) End user calls for hot water ON DEMAND. (Currently the hubs or routines have the ability to have the end user start and then stop the kit with the App or hub. The Controller electronics have a switch for ON CALL or Standard operation. When the switch is set to ON CALL, the electronics know not to restart the kit when the temperatures drop. Standard operation is 24/7 application. The battery-operated controller is designed to last 12-16 month without battery change.
(30) In accordance with the present invention, particularly as presented in
(31) In accordance with another embodiment of the present invention, there is provided a recirculation valve for use with a tankless water heater. This valve is not connected with the Aqua-Tracker. It is a by-pass valve that maintains 93 F at the faucet when the pump is running. The pump can be used with a built-in timer or separate timer or it can be used with the smart controller. The controller is not like other devices because, in accordance with the present invention, one can program run and end time and multiple cycles. In accordance with the present invention, we precisely control temperature and the length of time it takes to get water to the point of use. Thus, more energy savings and lower cost. It is a finely tuned machine with an APP.
(32) The ODR2 valve is used with a pump with built-in or no timer, external timer or APP to schedule run time. Using the controller battery to turn on the pump uses too much battery power. Instead we use an RF signal to turn the pump on/off for scheduled programs.
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(36) The valve construction is comprised of a valve body 11 that has an internal chamber 21, and an adjustment ring 12. The thermostatic element 13 is to be disposed within the valve body and is comprised of an annular support base 24 and a thermal actuation piston 26. The valve is further comprised of a cap piece 14, coil spring 15, and O-ring 16.
(37) The adjustment ring 12 is embedded with the valve body and can be rotated in opposite directions depending upon the temperature setpoint of which the valve is to be controlled. For this purpose, the adjustment ring 12 may have an outer slot 30. A screwdriver or the like can be inserted into the slot 30 for the purpose of adjusting the position of the ring 12.
(38) Thus, the adjustment ring 12 provides for a calibration of the valve to operate from a specific open/closed starting point based upon temperature. For example, this may be adjusted to provide operating temperature between 93 F and 105 F or any other ranges. The cap 14 is engaged over the piston 26. Thus, the cap 14 is pushed by the piston 26 to seal against the O-ring 16. Refer to
(39) The cap piece 14 thus opens and closes the center hole 22 of the adjustment ring 12 in order to maintain the temperature within the set range. The support base 24 of the thermostatic element 13 is illustrated as having a gap 23 between the support base 24 and the valve body 11. Refer in particular to
(40) The spring 15 is thus disposed between the cap piece 14 of the thermal actuation piston 26 and the adjustment ring 12. The spring is preferably a coil spring that extends about the cap piece 14. The O-ring and the cap piece are pushed by the thermal actuation piston in order to seal against the O-ring. One end of the coil spring rests against adjustment ring 12 and an opposite end of the coil spring rests against the cap piece 14. The adjustment ring 12 is adjusted by rotation to change the relative distance to the valve body.
(41) Reference is now made to a table that sets forth the various components and associated reference numbers.
(42) TABLE-US-00001 Valve components Reference Number Pump U Controller T Receiver Y Temperature Probe P Check Valve Z Water Source (Heater) W Bypass Line X Bypass Valve V Cold Water Line C Hot water Line H Wifi Network N Angle Stop S Tee E Valve Body 11 Adjustment Ring 12 Thermostatic Element 13 Cap Piece 14 Coil Spring 15 O-ring 16 Internal chamber 21 Adjustment Ring Center Hole 22 The gap between the support ring and the valve body 23 Support Base of Thermostatic Element 24 Valve Body Edge 25 Thermal Actuation Piston of the Thermostatic Element 26 Cap Piece Post 28
(43) Having now described a limited number of embodiments of the present invention, it should now be apparent to those skilled in the art that numerous other embodiments and modifications thereof are contemplated as falling within the scope of the present invention, as defined by the appended claims.