Various household and industrial activities can benefit from the delivery of liquids at a designated temperature and a designated flow rate. Heretofore systems have been available for controlling the temperature of liquids flowing through an outlet such as a faucet or a shower head; however, none has provided constant monitoring and correction of both the temperature and the flow rate of a liquid.
In accordance with an embodiment of the present invention a liquid supply system comprises a user interface for setting a designated temperature and a designated flow rate and a system of actuator controlled valves for delivering the liquid to a specified outlet at the designated temperature and designated flow rate. The user interface receives input from a user and comprises a control unit for communicating received inputs to components of the system, calculating needed temperature and flow rates from multiple supply lines, and receiving feedback from monitoring and control devices throughout the system. The system of controlled valves comprises at least two supply lines, each supply line comprising a valve, a servo actuator for controlling the valve, a temperature sensor for measuring the temperature of liquids flowing through the valve, and a flow rate sensor for measuring the rate of flow of liquids flowing through the valve. The supply lines extend to a receiving line comprising a dual outlet valve, a servo actuator for controlling the valve, a temperature sensor for measuring the temperature of liquids flowing through the dual outlet valve, and a flow rate sensor for measuring the rate of flow of liquids flowing through the dual outlet valve. Beyond the dual outlet valve a primary outlet discharges the liquid at the designated temperature and the designated flow rate.
A user enters a desired temperature and desired flow rate into the user interface. The user interface relays the specified temperature and specified flow rate to a control unit which, based on initial temperature and flow rate measurements from the supply lines, determines whether the desired temperature and flow rate can be achieved and if so the necessary flow rates through each of the valves. Once liquid flows through the supply lines and into the dual outlet valve the temperature and the flow rate of the liquid flowing through the valve are directed to the control unit. If the temperature and flow rate are equal to the designated temperature and the designated flow rate the dual outlet valve directs the liquid to the primary outlet. If either the temperature or the flow rate does not correspond to either the designated temperature or the designated flow rate the control unit recalculates the needed flow rates and instructs the servo actuators to adjust the valves accordingly. The flow rates through the valves are continuously adjusted and monitored to assure continuity of the designated temperature and the designated flow rate.
The control unit continuously communicates with the temperature sensors TS1 and TS2, the flow rate sensors FR1 and FR2, and the servo actuators SA1 and SA2 in order to maintain a current measurement of the temperatures and the flow rates of liquids flowing through each valve. Once a user has designated the desired temperature Td and flow rate Fd to be received at the primary outlet the control unit calculates the needed flow rate for each line L1 and L2 according to the temperatures T1 and T2 in order to achieve the designated temperature Td. If at the time the designated temperature Td and/or the designated flow rate Fd are entered the control unit determines that the designated temperature Td and/or the designated flow rate Fd cannot be achieved the control unit sends a signal to the user interface informing the user that the desired temperature Td and/or flow rate Fd cannot be achieved and requests further input.
The first supply line L1 and the second supply line L2 extend to a receiving line RL having a temperature sensor TS3 for measuring the temperature T3 of the liquid flowing through a dual outlet valve V3 controlled by a third servo actuator SA3 and a flow rate sensor FR3 for measuring the rate at which liquid is flowing through valve V3. As the liquids are received from the first and second supply lines L1 and L2 and blended within the receiving line RL the temperature T3 and flow rate F3 of the combined liquid are measured and communicated back to the control unit. If both the temperature T3 and flow rate F3 equal the designated temperature Td and the designated flow rate Fd the liquid is directed from the dual outlet valve V3 and through the primary outlet.
If either the temperature T3 or flow rate F3 does not equal either the designated temperature Td or the designated flow rate Fd the control unit sends a signal to the third actuator SA3 to direct the liquid through the dual outlet valve V3 to an alternate outlet where the liquid may either be discarded through a drain or re-directed through one or both of the first or second supply lines. The control unit recalculates the needed flow rates through the fast and second valves V1 and V2 based on the combined temperature T3, the combined flow rate F3, and the current temperatures T1 and T2 of both the first and second supply lines L1 and L2 and sends a signal to the first and second actuators SA1 and SA2 to adjust the flow rates accordingly. The above described process for correcting the combined temperature T3 and flow rate F3 is repeated until the combined temperature T3 equals the designated temperature Td and the combined flow rate F3 equals the designated flow rate Fd.
Although preferred embodiments of the invention have been illustrated in the accompanying Drawings and described in the foregoing Detailed Description, it will be understood that the invention is not limited to the embodiments disclosed, but is capable of numerous rearrangements, modifications, and substitutions of parts and elements without departing from the spirit of the invention.
Applicant claims priority based on U.S. Provisional Patent Application No. 60/948,064 filed Jul. 5, 2007, the entire content of which is incorporated herein by reference.
| Number | Date | Country | |
|---|---|---|---|
| 60948064 | Jul 2007 | US |