IP Library Granted Patent US 12,244,245
Granted Patent B2
US 12,244,245 · App. 17/503,624 · Granted Mar 4, 2025

Transport refrigeration system with paralleled inverters

Inventor: Raymond L. Senf, Jr. (Central Square, NY)
Assignee: CARRIER CORPORATION
H02M7/493B60P3/20
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Quick Facts
Patent No.
US 12,244,245
App. No.
17/503,624
Granted
Mar 4, 2025
Kind
B2
Abstract

A method of operating a transport refrigeration system having a plurality of inverters configured to power a refrigeration unit includes placing a first inverter of the plurality of inverters in an active state; monitoring a load on the first inverter; comparing the load on the first inverter to an upper threshold; placing a second inverter of the plurality of inverters in an active state upon the load on the first inverter being greater than the upper threshold.

Claims (37)

1. A method of operating a transport refrigeration system having a plurality of inverters configured to power a refrigeration unit, the method comprising:

placing a first inverter of the plurality of inverters in an active state;

monitoring a load on the first inverter;

comparing the load on the first inverter to an upper threshold;

placing a second inverter of the plurality of inverters in an active state upon the load on the first inverter being greater than the upper threshold;

monitoring the load on the first inverter;

monitoring the load on the second inverter;

comparing the load on the first inverter and the load on the second inverter to a lower threshold;

placing one of the first inverter and the second inverter in an inactive state upon the load on the first inverter and the load on the second inverter being less than the lower threshold;

wherein the upper threshold and the lower threshold are different values;

wherein the first inverter and the second inverter are multiphase inverters, each generating a multiphase AC output in the active state;

wherein the first inverter and the second inverter are configured to power a compression device of the refrigeration unit of the transport refrigeration system.

2. The method of claim 1 wherein the load on the first inverter is an electrical parameter of the first inverter.

3. The method of claim 1 wherein the load on the first inverter is a temperature of the first inverter.

4. The method of claim 1 further comprising:

placing a third inverter of the plurality of inverters in an active state upon the load on the first inverter being greater than the upper threshold and the load on the second inverter and being greater than the upper threshold;

monitoring the load on the first inverter;

monitoring the load on the second inverter;

monitoring the load on the third inverter;

comparing the load on the first inverter and the load on the second inverter and the load on the third inverter to a lower threshold;

placing one of the first inverter and the second inverter and the third inverter in an inactive state upon the load on the first inverter and the load on the second inverter and the load on the third inverter being less than the lower threshold.

5. A controller of a transport refrigeration system having a plurality of inverters configured to power a refrigeration unit, the controller comprising:

a processor;

a memory comprising computer-executable instructions that, when executed by the processor, cause the processor to perform operations, the operations comprising:

placing a first inverter of the plurality of inverters in an active state;

monitoring a load on the first inverter;

comparing the load on the first inverter to an upper threshold;

placing a second inverter of the plurality of inverters in an active state upon the load on the first inverter being greater than the upper threshold;

monitoring the load on the first inverter;

monitoring the load on the second inverter;

comparing the load on the first inverter and the load on the second inverter to a lower threshold;

placing one of the first inverter and the second inverter in an inactive state upon the load on the first inverter and the load on the second inverter being less than the lower threshold;

wherein the upper threshold and the lower threshold are different values;

wherein the first inverter and the second inverter are multiphase inverters, each generating a multiphase AC output in the active state;

wherein the first inverter and the second inverter are configured to power a compression device of the refrigeration unit of the transport refrigeration system.

6. The controller of claim 5 wherein the load on the first inverter is an electrical parameter of the first inverter.

7. The controller of claim 5 wherein the load on the first inverter is a temperature of the first inverter.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 19, 2021
From: SENF, RAYMOND L., JR.
To: CARRIER CORPORATION
Reel/Frame 057835/0763 →
Continuity (1)
Related Publication 20230119462A1 · Apr 20, 2023
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