IP Library › Granted Patent US 12,359,854
Granted Patent B2
US 12,359,854 · App. 18/074,979 · Granted Jul 15, 2025

Gas cooler assembly for transcritical refrigeration system

Inventor: Sean Jarvie (Andover, MN)
Assignee: Flow Environmental Systems, Inc.
F25B39/00F25B5/04F25B6/02F25B9/008F25B47/006F25B39/04
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Quick Facts
Patent No.
US 12,359,854
App. No.
18/074,979
Granted
Jul 15, 2025
Kind
B2
Abstract

A transcritical refrigeration gas cooler assembly comprises at least one gas cooler-condenser having an inlet and an outlet, the inlet configured to receive a carbon dioxide (CO 2 ) refrigerant from a discharge line of a refrigeration system, at least one evaporator having an inlet and an outlet, the inlet fluidly connected to and downstream of the outlet of the at least one gas cooler-condenser, and an expansion valve positioned upstream of the inlet of at least one evaporator.

Claims (29)

1. A transcritical refrigeration gas cooler assembly comprising:

at least one gas cooler-condenser comprising an inlet and an outlet, the inlet configured to receive a carbon dioxide (CO 2 ) refrigerant from a discharge line of a refrigeration system;

at least one evaporator stacked with the at least one gas cooler-condenser, wherein at least one evaporator comprises an inlet and an outlet, the inlet fluidly connected to and downstream of the outlet of the at least one gas cooler-condenser;

at least one fan configured to draw an external airflow across the at least one gas-cooler condenser and the at least one evaporator;

a microclimate space between the at least one gas cooler-condenser and the at least one evaporator; and

an expansion valve positioned upstream of the inlet of at least one evaporator.

2. The gas cooler assembly of claim 1 and further comprising: at least one adiabatic precooler.

3. The gas cooler assembly of claim 1 and further comprising: at least one fan configured to draw an external airflow into the gas cooler assembly.

4. The gas cooler assembly of claim 1 , and further comprising: a bypass valve positioned upstream of the inlet of the at least one gas cooler-condenser.

5. The gas cooler assembly of claim 1 , wherein an external airflow flows serially across the at least one gas cooler-condenser and the at least one evaporator.

6. The gas cooler assembly of claim 1 , wherein the at least one gas cooler-condenser receives the CO 2 refrigerant at a first refrigerant temperature ranging from 88° F. to 300° F.

7. The gas cooler assembly of claim 1 , wherein the at least one gas cooler assembly is configured as a horizontal gas cooler assembly.

8. The gas cooler assembly of claim 1 , wherein the at least one gas cooler assembly is configured as a vertical gas cooler assembly.

9. The gas cooler assembly of claim 1 , wherein the at least one gas cooler assembly is configured as a v-bank gas cooler assembly.

10. The gas cooler assembly of claim 1 , wherein the at least one gas cooler assembly is configured as an angled gas cooler assembly.

11. The gas cooler assembly of claim 1 and further comprising: a damper fluidly connected to a source of auxiliary heat, the damper being configured to allow an amount of the auxiliary heat into the gas cooler assembly between the at least one gas cooler-condenser and the at least one evaporator.

12. The gas cooler assembly of claim 11 and further comprising: a bypass valve positioned downstream of the outlet of the at least one evaporator.

13. The gas cooler assembly of claim 12 , wherein the at least one evaporator comprises a plurality of evaporators arranged in series.

14. A method of operating a transcritical refrigeration gas cooler assembly to recover energy from excess heat, the method comprising:

receiving a carbon dioxide (CO 2 ) refrigerant at a first refrigerant temperature at an inlet of at least one gas cooler-condenser of the gas cooler assembly;

flowing an external airflow through the gas cooler assembly;

rejecting heat from the CO 2 refrigerant within the at least one gas cooler-condenser to the external airflow to increase an air temperature of the external airflow; and

rejecting heat from the external airflow to the CO 2 refrigerant within at least one evaporator to increase a temperature of the CO 2 refrigerant within the evaporator.

15. The method of claim 14 , wherein the first refrigerant temperature ranges from 88° F. to 300° F.

16. The method of claim 14 , wherein flowing the external airflow through the gas cooler assembly comprises: operating at least one fan of the gas cooler assembly to draw the external airflow serially across the at least one gas cooler-condenser and the at least one evaporator.

17. The method of claim 16 and further comprising: drawing the external airflow across at least one adiabatic precooler, and operating the adiabatic precooler above a threshold condition of the external airflow.

18. The method of claim 14 , wherein rejecting heat from the CO 2 refrigerant within the at least one gas cooler-condenser to the external airflow generates a microclimate downstream of the at least one gas cooler-condenser and upstream of the at least one evaporator, relative to a direction of the external airflow.

19. The method of claim 18 and further comprising: preventing frost accumulation on the at least one evaporator using the microclimate when a temperature of the microclimate is at least 32° F.

20. The method of claim 18 and further comprising: bypassing the at least one cooler condenser when a temperature of the microclimate exceeds an upper threshold.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2023
From: JARVIE, SEAN
To: FLOW ENVIRONMENTAL SYSTEMS, INC.
Reel/Frame 063808/0540 →
Continuity (1)
Related Publication 20240183587A1 · Jun 6, 2024
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