IP Library Patent Application 18819805
Patent Application
App. No. 18/819,805

CONTROL OF REFRIGERATION AND HEAT PUMP SYSTEMS THAT INCLUDE PRESSURE EXCHANGERS

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Patent No.
US None
App. No.
18/819,805
Abstract

A system includes a pressure exchanger (PX) and a condenser. An outlet of the condenser is fluidly coupled to a first inlet of the PX. The system further includes a generator assembly configured to be conditionally coupled to the PX. Coupling the generator assembly to the PX causes a turbine to convert rotational energy of the PX to electrical energy.

Claims (59)

1 . A system comprising:

a pressure exchanger (PX);

a condenser, wherein an outlet of the condenser is fluidly coupled to a first inlet of the PX; and

a generator assembly configured to be conditionally coupled to the PX, wherein coupling the generator assembly to the PX causes a turbine to convert rotational energy of the PX to electrical energy.

2 . The system of claim 1 , further comprising a first controller operatively coupled to the generator assembly, wherein the first controller is configured to provide a first control signal to the generator assembly, and wherein the generator assembly is configured to adjust resistance to rotation of the PX based on the first control signal.

3 . The system of claim 2 , further comprising a first pressure gauge configured to generate first pressure data indicative of a pressure of working fluid in the condenser, wherein the first control signal is generated based on the first pressure data.

4 . The system of claim 1 , further comprising:

a compressor, wherein an outlet of the compressor is fluidly coupled to an inlet of the condenser;

a second pressure gauge configured to generate second pressure data indicative of a pressure of a fluid input to the compressor; and

a third controller operatively coupled to the compressor, wherein the third controller is to generate a third control signal based on at least the second pressure data, and wherein the compressor is to adjust an operating speed of the compressor based on the third control signal.

5 . The system of claim 1 , further comprising:

an evaporator;

a flash tank, wherein a flash tank inlet is fluidly coupled to an outlet of the PX, and wherein a first flash tank outlet is fluidly coupled to a first pump, and wherein a second flash tank outlet is fluidly coupled to an inlet of the evaporator;

a valve, fluidly coupled between the flash tank and the evaporator;

a temperature sensor configured to generate first temperature data indicative of a temperature of fluid discharged from the evaporator; and

a third controller operatively coupled to the valve, wherein the third controller is to generate a third control signal based on at least the first temperature data, and wherein the valve is to adjust an opening of the valve based on the third control signal.

6 . The system of claim 1 , further comprising:

an evaporator;

a flash tank, wherein a flash tank inlet is fluidly coupled to an outlet of the PX, and wherein a first flash tank outlet is fluidly coupled to an outlet of the evaporator, and wherein a second flash tank outlet is fluidly coupled to an inlet of the evaporator;

a valve, fluidly coupled between the first flash tank outlet and the outlet of the evaporator;

a third pressure gauge configured to generate third pressure data indicative of a pressure of fluid in the flash tank; and

a third controller operatively coupled to the valve, wherein the third controller is to generate a third control signal based on at least the third pressure data, and wherein the valve is to adjust an opening of the valve based on the third control signal.

7 . The system of claim 1 , further comprising:

a first pump, wherein an inlet of the first pump is fluidly coupled to an outlet of the PX, and wherein an outlet of the first pump is fluidly coupled to an inlet of the condenser; and

a fourth controller operatively coupled to the first pump, wherein the fourth controller is to generate a fourth control signal based on at least first pressure data, and wherein the first pump is to adjust a speed of operation of the first pump based on the fourth control signal.

8 . A method comprising:

obtaining, by a processing device, first pressure data indicative of a fluid pressure of a condenser of a heat transfer system;

generating a first control signal based on at least the first pressure data; and

providing the first control signal to a generator assembly coupled to a pressure exchanger (PX), wherein the generator assembly is configured to adjust resistance to rotation of the PX in view of the first control signal, and wherein the generator assembly is configured to convert rotation of the PX to electrical power.

9 . The method of claim 8 , wherein the heat transfer system comprises a refrigeration system.

10 . The method of claim 8 , wherein an outlet of the condenser is fluidly coupled to an inlet of the PX, and wherein adjusting a speed of rotation of the PX by adjusting resistance to rotation of the PX adjusts fluid pressure of the condenser.

11 . The method of claim 8 , further comprising:

obtaining temperature data indicative of a temperature of a fluid of an evaporator of the heat transfer system;

generating a second control signal based on at least the temperature data; and

providing the second control signal to a valve fluidly coupled between an outlet of a flash tank of the heat transfer system and an inlet of the evaporator, wherein the valve is configured to adjust an opening of the valve based on the second control signal.

12 . The method of claim 11 , wherein generating the second control signal is performed responsive to determining that target value of super heat of an output fluid of the evaporator has not been achieved.

13 . The method of claim 8 , further comprising:

obtaining fluid density data indicative of a density of a fluid provided to an inlet of a flash tank of the heat transfer system;

generating a second control signal based on the fluid density data; and

providing the second control signal to a pump, wherein the pump is fluidly coupled between an outlet of the flash tank and an inlet of the PX, and wherein the pump is configured to adjust a speed of operation of the pump based on the second control signal.

14 . The method of claim 8 , further comprising:

obtaining second pressure data indicative of a pressure of a receiver, fluidly coupled to an outlet of the PX;

generating a third control signal based on the second pressure data; and

providing the third control signal to a valve, wherein the valve is to adjust an opening of the valve based on the third control signal, and wherein the valve is fluidly coupled between a gas outlet of the receiver and an outlet stream of an evaporator.

15 . A non-transitory machine-readable storage medium storing instructions which, when executed, cause a processing device to perform operations comprising:

obtaining first pressure data indicative of a fluid pressure of a condenser of a heat transfer system;

generating a first control signal based on at least the first pressure data; and

providing the first control signal to a generator assembly coupled to a pressure exchanger (PX), wherein the generator assembly is configured to adjust resistance to rotation of the PX in view of the first control signal, and wherein the generator assembly is configured to convert rotation of the PX to electrical power.

16 . The non-transitory machine-readable storage medium of claim 15 , wherein the heat transfer system comprises a refrigeration system.

17 . The non-transitory machine-readable storage medium of claim 15 , wherein an outlet of the condenser is fluidly coupled to an inlet of the PX, and wherein adjusting a speed of rotation of the PX by adjusting the resistance to rotation of the PX comprises adjusting the fluid pressure of the condenser.

18 . The non-transitory machine-readable storage medium of claim 15 , wherein the operations further comprise:

obtaining temperature data indicative of a temperature of a fluid of an evaporator of the heat transfer system;

generating a second control signal based on at least the temperature data; and

providing the second control signal to a valve fluidly coupled between an outlet of a flash tank of the heat transfer system and an inlet of the evaporator, wherein the valve is configured to adjust an opening of the valve based on the second control signal.

19 . The non-transitory machine-readable storage medium of claim 18 , wherein generating the second control signal is performed responsive to determining that target value of super heat of an output fluid of the evaporator has not been achieved.

20 . The non-transitory machine-readable storage medium of claim 15 , wherein the operations further comprise:

obtaining fluid density data indicative of a density of a fluid provided to an inlet of a flash tank of the heat transfer system;

generating a second control signal based on the fluid density data; and

providing the second control signal to a pump, wherein the pump is fluidly coupled between an outlet of the flash tank and an inlet of the PX, and wherein the pump is configured to adjust a speed of operation of the pump based on the second control signal.

Assignments (2)
SECURITY INTEREST Recorded Jan 21, 2026
From: ENERGY RECOVERY, INC.
To: JPMORGAN CHASE BANK, N.A.
Reel/Frame 073535/0966 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 6, 2024
From: THATTE, AZAM MIHIR; TRUAX, MATTHEW HANS; GUSTAFSON, MICHAEL PAUL; MCLEAN, JAMES ELLIOTT, JR.; ANDERSON, DAVID DELOYD; MARCHETTI, JOSEPH MICHAEL
To: ENERGY RECOVERY, INC.
Reel/Frame 069156/0095 →