IP Library Granted Patent US 7,421,846
Granted Patent B2
US 7,421,846 · App. 11/284,533 · Granted Sep 9, 2008

Thermal energy storage and cooling system with gravity fed secondary refrigerant isolation

Assignee: Ice Energy, Inc.
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Quick Facts
Patent No.
US 7,421,846
App. No.
11/284,533
Granted
Sep 9, 2008
Kind
B2
Abstract

Disclosed are a method and device for a refrigerant-based thermal storage system wherein a condensing unit and an ice-tank heat exchanger can be isolated through a second heat exchanger. The disclosed embodiments provide a refrigerant-based ice storage system with increased reliability, lower cost components, and reduced power consumption compared to a single phase system such as a glycol system.

Claims (61)

1. A refrigerant-based thermal energy storage and cooling system comprising:

a first refrigerant loop containing a first refrigerant comprising:

a condensing unit, said condensing unit comprising a compressor and a first condenser;

an expansion device connected downstream of said condensing unit; and,

a first evaporator on a primary side of an isolating heat exchanger located downstream of said expansion device;

a second refrigerant loop containing a second refrigerant comprising:

a second condenser on a secondary side of said isolating heat exchanger;

a tank containing a primary heat exchanger therein, and filled with a fluid capable of a phase change between liquid and solid, said primary heat exchanger in fluid communication with, and positioned below the fluid level of said isolating heat exchanger, said second condenser that uses said second refrigerant from said second condenser to cool said fluid and to freeze at least a portion of said fluid within said tank;

a portion of said second refrigerant loop that allows circulation of said second refrigerant from said second condenser, through said primary heat exchanger, and back to said second condenser under the influence of a thermosiphon;

a load heat exchanger connected to said primary heat exchanger and said isolating heat exchanger that transfers cooling capacity of said second refrigerant to a heat load; and,

a liquid refrigerant pump that distributes said second refrigerant from said primary heat exchanger to said load heat exchanger in a first mode and from said isolating heat exchanger to said load heat exchanger in a second mode.

2. The system of claim 1 wherein said expansion device is a thermal expansion valve.

3. The system of claim 1 wherein said first refrigerant loop further comprises:

a refrigerant receiver for accumulation and storage of said first refrigerant.

4. The system of claim 3 wherein said expansion device is a mixed-phase regulator.

5. The system of claim 1 wherein said fluid is a eutectic material.

6. The system of claim 1 wherein said fluid is water.

7. The system of claim 1 wherein said first refrigerant is a different material from said second refrigerant.

8. The system of claim 1 further comprising:

an air handler unit that assists in distributing cooling from said load heat exchanger to said heat load.

9. The system of claim 1 wherein said second refrigerant loop further comprises:

a valve structure for isolating said second refrigeration loop within said isolating heat exchanger and said primary heat exchanger to form a gravity feed ice-make circuit.

10. The system of claim 1 wherein said second refrigerant loop further comprises:

a valve structure for isolating said second refrigeration loop within said primary heat exchanger, said liquid refrigerant pump, and said load heat exchanger to form an ice-melt circuit.

11. The system of claim 1 wherein said second refrigerant loop further comprises:

a valve structure for isolating said second refrigeration loop within said isolating heat exchanger, said liquid refrigerant pump, and said load heat exchanger to form a direct cooling circuit.

12. The system of claim 1 further comprising:

a third refrigerant loop that allows said first refrigerant to bypass said primary side of said isolating heat exchanger and flow through said load heat exchanger.

13. The system of claim 12 wherein said third refrigerant loop further comprises:

a refrigerant receiver for accumulation and storage of said first refrigerant.

14. The system of claim 13 wherein said expansion device is a mixed-phase regulator.

15. The system of claim 1 wherein said load heat exchanger is at least one mini-split evaporator.

16. A method of providing cooling with a refrigerant-based thermal energy storage and cooling system comprising the steps of:

providing cooling to a primary side of an isolating heat exchanger by evaporating a first high-pressure refrigerant within said primary side of said isolating heat exchanger in a first time period;

transferring said cooling to condense a second refrigerant on a secondary side of said isolating heat exchanger in said first time period;

circulating said second refrigerant from said secondary side of said isolating heat exchanger to a primary heat exchanger that is positioned below the fluid level of said isolating heat exchanger with a thermosiphon during said first time period;

evaporating said second refrigerant in said primary heat exchanger that is constrained within a tank that contains a fluid capable of a phase change between liquid and solid to freeze at least a portion of said fluid and form ice within said tank during said first time period;

circulating said second refrigerant from said primary heat exchanger back to said secondary side of said isolating heat exchanger under the force of said thermosiphon during said first time period; and,

condensing said second refrigerant in said primary heat exchanger with said ice and evaporating said second refrigerant in an evaporator coil to provide load cooling during a second time period.

17. The method of claim 16 further comprising the step of:

expanding said first high-pressure refrigerant within said primary side of said isolating heat exchanger with a thermal expansion valve.

18. The method of claim 16 further comprising the step of:

accumulating and storing said first refrigerant with a refrigerant receiver.

19. The method of claim 18 further comprising the step of:

expanding said first high-pressure refrigerant within said primary side of said isolating heat exchanger with a mixed-phase regulator.

20. The method of claim 16 further comprising the step of:

pumping said second refrigerant from said primary heat exchanger to said load heat exchanger with a refrigerant pump during said second time period.

21. The method of claim 16 further comprising the step of:

utilizing an air handler unit to assist in distributing cooling from said load heat exchanger to said heat load.

22. The method of claim 16 further comprising the step of:

isolating said secondary side of said isolating heat exchanger and said primary heat exchanger, within said second refrigeration loop to form an ice-make circuit during said first time period.

23. The method of claim 16 further comprising the step of:

isolating said secondary side of said primary heat exchanger, a liquid refrigerant pump, and said load heat exchanger to form an ice-melt circuit during said second time period.

24. The method of claim 16 further comprising the step of:

isolating said secondary side of said isolating heat exchanger, a liquid refrigerant pump, and said load heat exchanger to form a direct cooling circuit during a third time period.

25. A means for providing cooling with a refrigerant-based thermal energy storage and cooling system comprising:

means for providing cooling to a primary side of an isolating heat exchanger to transfer said cooling to a secondary side of said isolating heat exchanger in a first time period;

means for transferring said cooling from said secondary side of said isolating heat exchanger to a primary heat exchanger that is positioned below the fluid level of said isolating heat exchanger with a thermosiphon during said first time period;

means for transferring said cooling from said primary heat exchanger to freeze at least a portion of a fluid capable of a phase change between liquid and solid and form ice during said first time period;

means for transferring thermal energy from said primary heat exchanger back to said secondary side of said isolating heat exchanger under the force of said thermosiphon during said first time period; and,

means for transferring said cooling with said primary heat exchanger from said ice and to an evaporator coil during a second time period.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 14, 2023
From: ICE ENERGY HOLDINGS, INC.
To: ACP THULE INVESTMENTS, LLC; ICE BEAR SPV #1
Reel/Frame 062378/0070 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 13, 2012
From: ICE ENERGY, INC.
To: ICE ENERGY HOLDINGS, INC.
Reel/Frame 028544/0119 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 21, 2005
From: NARAYANAMURTHY, RAMACHANDRAN; WILLIS, ROBERT R., JR.
To: ICE ENERGY, INC.
Reel/Frame 017264/0375 →
Continuity (3)
Continuation In Part 1120807400 · Aug 18, 2005
Provisional Application 6060277400 · Aug 18, 2004
Related Publication 20060070385A1 · Apr 6, 2006