IP Library Granted Patent US 10,704,438
Granted Patent B2
US 10,704,438 · App. 15/777,052 · Granted Jul 7, 2020

Temperature control of exhaust gas of a transportation refrigeration unit

Inventor: Michael Swab (Acworth, GA)
Assignee: Carrier Corporation
F01N3/05F01N13/082F25D11/003F01N2240/20F01N2270/02F01N2590/08Y02T10/20
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Quick Facts
Patent No.
US 10,704,438
App. No.
15/777,052
Granted
Jul 7, 2020
Kind
B2
Abstract

A transportation refrigeration unit includes an evaporator circulating a flow of refrigerant therethrough to cool a flow of supply air flowing over the evaporator, a compressor in fluid communication with the evaporator to compress the flow of refrigerant, and an engine operably connected to the compressor to drive operation of the compressor. The engine includes an exhaust pathway to direct an exhaust gas flow from the transportation refrigeration unit, and a nozzle extending circumferentially around the exhaust pathway defining a nozzle flowpath between the exhaust pathway and the nozzle, the nozzle configured to flow a cooling airflow along the nozzle flowpath to reduce a temperature of the exhaust gas flow.

Claims (26)

1. A transportation refrigeration unit comprising:

an evaporator circulating a flow of refrigerant therethrough to cool a flow of supply air flowing over the evaporator;

a compressor in fluid communication with the evaporator to compress the flow of refrigerant;

an engine operably connected to the compressor to drive operation of the compressor, the engine including:

an exhaust pathway to direct an exhaust gas flow from the transportation refrigeration unit;

a nozzle extending circumferentially around the exhaust pathway defining a nozzle flowpath between the exhaust pathway and the nozzle, the nozzle configured to flow a cooling airflow along the nozzle flowpath to reduce a temperature of the exhaust gas flow; and

a condenser fan configured to direct the cooling airflow from a condenser of the transportation refrigeration unit into the nozzle flowpath.

2. The transportation refrigeration unit of claim 1 , wherein the nozzle includes a nozzle inlet upstream of an exhaust pathway exit, relative to a direction of flow of the exhaust gas flow through the exhaust pathway.

3. The transportation refrigeration unit of claim 1 , wherein the nozzle includes a nozzle outlet downstream of an exhaust pathway exit, relative to a direction of flow of the exhaust gas flow through the exhaust pathway.

4. The transportation refrigeration unit of claim 3 , further comprising a mixing area in the nozzle downstream of the exhaust pathway exit, configured to allow for mixing of the exhaust gas flow with the cooling airflow to further reduce the temperature of the exhaust gas flow.

5. The transportation refrigeration unit of claim 1 , wherein the nozzle is positioned at the exhaust pathway via one or more ribs extending between the nozzle and the exhaust pathway.

6. The transportation refrigeration unit of claim 1 , wherein a nozzle inlet is positioned in the path of a condenser fan airflow exiting the condenser fan of the transportation refrigeration unit.

7. The transportation refrigeration unit of claim 1 , wherein the engine utilizes natural gas as a fuel.

8. A method of operating a transportation refrigeration unit comprising:

operating a compressor to compress a flow of refrigerant in the transportation refrigeration unit;

operating an engine operably connected to the compressor to drive the compressor;

directing a flow of exhaust gas away from the engine via an exhaust pathway; and

flowing a cooling airflow through a nozzle flowpath defined between the exhaust pathway and a nozzle disposed circumferentially around the exhaust pathway, thereby reducing a temperature of the flow of exhaust gas exiting the exhaust pathway;

wherein a condenser fan is configured to direct the cooling airflow from a condenser of the transportation refrigeration unit into the nozzle flowpath.

9. The method of claim 8 , further comprising flowing the cooling airflow into the nozzle through a nozzle inlet disposed upstream of an exhaust pathway exit, relative to a direction of flow of the exhaust gas flow through the exhaust pathway.

10. The method of claim 8 , further comprising flowing the cooling airflow toward a nozzle outlet disposed downstream of an exhaust pathway exit, relative to a direction of flow of the exhaust gas flow through the exhaust pathway.

11. The method of claim 10 , further comprising mixing the cooling airflow with the flow of exhaust gas flow in a mixing area in the nozzle downstream of the exhaust pathway exit to further reduce the temperature of the flow of exhaust gas.

12. The method of claim 8 , further comprising positioning the nozzle at the exhaust pathway via one or more ribs extending between the nozzle and the exhaust pathway.

13. The method of claim 8 , further comprising positioning a nozzle inlet in a path of the condenser fan airflow exiting the condenser fan of the transportation refrigeration unit.

14. The method of claim 13 , further comprising flowing at least a portion of the condenser fan airflow into the nozzle inlet.

15. The method of claim 8 , wherein the engine utilizes natural gas as a fuel.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 17, 2018
From: SWAB, MICHAEL
To: CARRIER CORPORATION
Reel/Frame 045837/0714 →
Continuity (2)
Provisional Application 62256493 · Nov 17, 2015
Related Publication 20180355775A1 · Dec 13, 2018
Cited By (2)
US 12,320,416 US 12,669,171