IP Library Granted Patent US 11,815,921
Granted Patent B2
US 11,815,921 · App. 17/512,324 · Granted Nov 14, 2023

Automated swimming pool heat pump flow rate controller

Inventors: Thomas P. Driscoll (St. Petersburg, FL); Jeffrey Tawney (St. Petersburg, FL); Stanford P. Hudson (St. Petersburg, FL); Michael Krasowski (St. Petersburg, FL)
Assignee: AquaCal AutoPilot, Inc.
G05D7/0623E04H4/129G05B11/011G05B19/43G05D23/193
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Quick Facts
Patent No.
US 11,815,921
App. No.
17/512,324
Granted
Nov 14, 2023
Kind
B2
Abstract

A flow rate component, such as a bypass valve with a motorized actuator, a variable speed circulation pump, or both, is controlled in realtime by an automatic controlled to regulate water flow rate through a swimming pool heater, such as a heat pump, to optimize heat transfer, minimize energy consumption, and improve life spans of components of the swimming pool circulation, filtering and heating system.

Claims (43)

1 . A method for controlling a flow rate through a swimming pool heat pump comprising:

receiving, by an electronic control circuit, a least three electronic temperature measurements comprising:

a first temperature measurement taken at a water input to a specific swimming pool heat pump, wherein the heat pump comprises a heat transfer device employing a refrigeration cycle;

a second temperature measurement taken at a water output fromthe swimming pool heat pump; and

a third temperature measurement taken in real-time of ambient conditions near a swimming pool associated with the swimming pool heat pump, or taken in real-time at a geothermal pool heat pump source water, or both;

determining, by an electronic control circuit, a target heat increase value across the swimming pool heat pump as an optimizing heat transfer function of at least three criteria including the third temperature measurement, a high capacity rating for the specific swimming pool heat pump, and a low capacity rating for the specific swimming pool heat pump;

determining, by an electronic control circuit, a realtime water temperature increase as a difference between the first temperature measurement and the second temperature measurement; and

responsive to comparing the realtime water temperature increase and the target heat increase value, commanding, by an electronic circuit, a swimming pool circulation flow control component to increase swimming pool water flow rate, decrease swimming pool water flow rate, or maintain swimming pool water flow rate through the swimming pool heat pump to adjust an amount of heat transferred to swimming pool water flowing through the swimming pool heat pump.

2 . The method as set forth in claim 1 wherein the flow control component comprises a bypass valve, wherein the commanding comprises applying a control voltage having a polarity to a motorized bypass valve actuator for a determined period of time to further open, further close or maintain a position of the bypass valve, and wherein the bypass valve allows water to flow to the swimming pool without flowing through the swimming pool heat pump when open.

3 . The method as set forth in claim 1 wherein the flow control component comprises a bypass valve, wherein the commanding comprises applying a control voltage having a determined magnitude to a variable speed circulation pump to further increase, further decrease, or maintain a speed of the circulation pump, and wherein the bypass valve allows water to flow to the swimming pool without flowing through the swimming pool heat pump when open.

4 . The method as set forth in claim 1 wherein the electronic control circuit comprises a microprocessor.

5 . The method as set forth in claim 4 wherein the microprocessor comprises an embedded controller within the swimming pool heat pump.

6 . The method as set forth in claim 4 wherein the microprocessor comprises an embedded controller external to the swimming pool heat pump.

7 . A computer program product for controlling a flow rate through a swimming pool heat pump comprising:

a tangible, computer readable memory which is not a propagating signal per se; and computer instructions encoded by the tangible, computer readable memory, which,

when executed by a computer, cause the computer to perform steps comprising:

receiving a least three electronic temperature measurements comprising:

a first temperature measurement taken at a water input to a swimming pool heat pump, wherein the heat pump comprises a heat transfer device employing a refrigeration cycle;

a second temperature measurement taken at a water output from the swimming pool heat pump; and

a third temperature measurement taken in real-time of ambient conditions near a swimming pool associated with the swimming pool heat pump, or taken in real-time at a geothermal pool heat pump source water, or both;

determining a target heat increase value across the swimming pool heat pump as an optimizing heat transfer function of at least three criteria including the third temperature measurement, a high capacity rating for the specific swimming pool heat pump, and a low capacity rating for the specific swimming pool heat pump;

determining a realtime water temperature increase as a difference between the first temperature measurement and the second temperature measurement; and

responsive to comparing the realtime water temperature increase and the target heat increase value, commanding a swimming pool circulation flow control component to increase swimming pool water flow rate, decrease swimming pool water flow rate, or maintain swimming pool water flow rate through the swimming pool heat pump to adjust an amount of heat transferred to swimming pool water flowing through the swimming pool heat pump.

8 . The computer program product as set forth in claim 7 wherein the flow control component comprises a bypass valve, wherein the commanding comprises applying a control voltage having a polarity to a motorized bypass valve actuator for a determined period of time to further open, further close or maintain a position of the bypass valve, and wherein the bypass valve allows water to flow to the swimming pool without flowing through the swimming pool heat pump when open.

9 . The computer program product as set forth in claim 7 wherein the flow control component comprises a bypass valve, and wherein the commanding comprises applying a control voltage having a determined magnitude to a variable speed circulation pump to further increase, further decrease, or maintain a speed of the circulation pump, and wherein the bypass valve allows water to flow to the swimming pool without flowing through the swimming pool heat pump when open.

10 . The computer program product as set forth in claim 7 wherein the computer comprises a microprocessor.

11 . The computer program product as set forth in claim 10 wherein the microprocessor comprises an embedded controller within the swimming pool heat pump.

12 . The computer program product as set forth in claim 10 wherein the microprocessor comprises an embedded controller external to the swimming pool heat pump.

13 . A system for controlling a flow rate through a swimming pool heat pump comprising:

a computer processor;

a tangible, computer readable memory which is not a propagating signal per se; and computer instructions encoded by the tangible, computer readable memory, which,

when executed by the computer processor, cause the computer processor to perform steps comprising:

receiving a least three electronic temperature measurements comprising:

a first temperature measurement taken at a water input to a swimming pool heat pump, wherein the heat pump comprises a heat transfer device employing a refrigeration cycle;

a second temperature measurement taken at a water output from the swimming pool heat pump; and

a third temperature measurement taken in real-time of ambient conditions near a swimming pool associated with the swimming pool heat pump, or taken in real-time at a geothermal pool heat pump source water, or both;

determining a target heat increase value across the swimming pool heat pump as an optimizing heat transfer function of at least three criteria including the third temperature measurement, a high capacity rating for the specific swimming pool heat pump, and a low capacity rating for the specific swimming pool heat pump;

determining a realtime water temperature increase as a difference between the first temperature measurement and the second temperature measurement; and

responsive to comparing the realtime water temperature increase and the target heat increase value, commanding a swimming pool circulation flow control component to increase swimming pool water flow rate, decrease swimming pool water flow rate, or maintain swimming pool water flow rate through the swimming pool heat pump to adjust an amount of heat transferred to swimming pool water flowing through the swimming pool heat pump.

14 . The system as set forth in claim 13 wherein the flow control component comprises a bypass valve, wherein the commanding comprises applying a control voltage having a polarity to a motorized bypass valve actuator for a determined period of time to further open, further close or maintain a position of the bypass valve, and wherein the bypass valve allows water to flow to the swimming pool without flowing through the swimming pool heat pump when open.

15 . The system as set forth in claim 13 wherein the flow control component comprises a bypass valve, wherein the commanding comprises applying a control voltage having a determined magnitude to a variable speed circulation pump to further increase, further decrease, or maintain a speed of the circulation pump, and wherein the bypass valve allows water to flow to the swimming pool without flowing through the swimming pool heat pump when open.

16 . The system as set forth in claim 13 wherein the computer processor comprises an embedded controller within the swimming pool heat pump.

17 . The system as set forth in claim 13 wherein the computer processor comprises an embedded controller external to the swimming pool heat pump.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2021
From: DRISCOLL, THOMAS P; TAWNEY, JEFFREY; KRASOWSKI, MICHAEL; HUDSON, STANFORD P.
To: AQUACAL AUTOPILOT, INC.
Reel/Frame 057937/0044 →
Continuity (1)
Related Publication 20230127979A1 · Apr 27, 2023