IP Library Granted Patent US 11,351,841
Granted Patent B2
US 11,351,841 · App. 16/933,176 · Granted Jun 7, 2022

Control system and method for an electronically governed engine of a refrigeration system

Inventor: Pierce D. Kennedy (Rahoon, IE)
Assignee: Thermo King Corporation
B60H1/3208B60H1/3232B60H2001/3266B60H2001/3273
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Quick Facts
Patent No.
US 11,351,841
App. No.
16/933,176
Granted
Jun 7, 2022
Kind
B2
Abstract

There is disclosed a transport refrigeration system comprising an electronically governed engine that drives a refrigeration circuit of the system. The engine control unit is configured to operate the engine in a droop mode of operation, in which the engine speed increases with decreasing engine loads from the refrigeration circuit, so as to maximise the cooling capacity of the system at low engine load conditions.

Claims (62)

1. A transport refrigeration system comprising:

an electronically governed engine;

a transport refrigeration unit including a refrigeration circuit that comprises a compressor, which is configured to be driven by the engine to pump refrigerant about the refrigeration circuit, and a controller which is configured to set a nominal engine speed at which to drive the compressor and communicate that to an engine control unit of the system; and

a user-operable switch which causes the engine control unit to operate the engine in a droop mode of operation when the switch is set to a first state, and which causes the engine control unit to operate the engine in an isochronous mode of operation when the switch is set to a second, different state to the first state

wherein the engine control unit is configured to operate the engine in the droop mode of operation, in which:

the engine control unit operates the engine according to a predefined torque-speed profile corresponding to the nominal engine speed; and

the torque-speed profile indicates different engine speeds at which to drive the compressor for respective non-zero engine loads, wherein the torque-speed profile indicates the nominal engine speed at full engine load and one or more engine speeds that are above the nominal engine speed at engine loads below the full engine load, such that the engine speed will increase above the nominal engine speed as the engine load from the refrigeration circuit decreases from the full engine load,

wherein the engine control unit is configured to alternately operate the engine in the droop mode of operation and the isochronous mode of operation, in which the engine control unit operates the engine according to an isochronous torque-speed profile to maintain the engine at a fixed engine speed for varying engine loads.

2. The transport refrigeration system according to claim 1 , wherein:

the engine control unit, or the controller of the transport refrigeration unit, is configured to monitor an operating parameter that is indicative of the engine load; and

the engine control unit is configured to automatically alternate between the droop mode of operation and the isochronous mode of operation based on the operating parameter.

3. The transport refrigeration system according to claim 2 , wherein the engine control unit is configured to operate the engine in:

the droop mode of operation, if the monitored operating parameter is at or below a predetermined threshold value for the operating parameter; and

the isochronous mode of operation, if the operating parameter is greater than the predetermined threshold value.

4. The transport refrigeration system according to claim 3 , wherein the operating parameter is:

a box temperature of the transport refrigeration unit; or

a load acting on the prime mover of the engine.

5. The transport refrigeration system according to claim 1 , wherein the engine control unit is configured to operate the engine in the droop mode of operation when the nominal engine speed is set to a rated speed of the engine, such that the engine speed will increase above the rated speed at engine loads below a rated load of the engine.

6. The transport refrigeration system according to claim 1 , wherein the engine control unit is configured to operate the engine in an isochronous mode of operation, in which the engine speed is maintained at a fixed speed for varying engine loads, when the transport refrigeration unit operates in a continuous cool modulation mode.

7. The transport refrigeration system according to claim 1 , wherein the engine control unit is configured to operate the engine in the droop mode of operation when the transport refrigeration unit operates in a pull-down mode of operation.

8. A method of operating a transport refrigeration system that includes an electronically governed engine and a transport refrigeration unit which includes a refrigeration circuit, the method comprising:

powering the electronically governed engine to drive a compressor of the refrigeration circuit to pump refrigerant about the refrigeration circuit;

a controller setting a nominal engine speed at which to drive the compressor and communicating that to an engine control unit of the system;

the engine control unit operating the engine in a droop mode of operation, comprising:

the engine control unit operating the engine according to a predefined torque-speed profile corresponding to the nominal engine speed;

wherein the torque-speed profile indicates different engine speeds to be used for respective non-zero engine loads, wherein the torque-speed profile indicates the nominal engine speed at full engine load and one or more engine speeds that are above the nominal engine speed at engine loads below the full engine load, such that the engine speed will increase above the nominal engine speed as the engine load from the refrigeration circuit decreases from the full engine load;

the engine control unit alternately operating the engine in the droop mode of operation and an isochronous mode of operation, in which the engine control unit operates the engine according to an isochronous torque-speed profile to maintain a fixed engine speed for varying engine loads; and

a user operating a switch to cause the engine control unit to operate the engine in either the isochronous mode of operation or the droop mode of operation.

9. The method according to claim 8 , further comprising:

monitoring, using the engine control unit or the controller of the transport refrigeration unit, an operating parameter that is indicative of the engine load; and

the engine control unit automatically alternating between the droop mode of operation and the isochronous mode of operation based on the operating parameter.

10. The method according to claim 9 , further comprising the engine control unit:

operating the engine in the droop mode of operation, if the operating parameter is at or below a predetermined threshold value; and

operating the engine in the isochronous mode of operation, if the operating parameter is greater than the predetermined threshold value.

11. The method according to claim 9 , wherein the operating parameter is a box temperature of the transport refrigeration unit.

12. The method according to claim 9 , wherein the operating parameter is a load acting on the prime mover of the engine.

13. The method according to claim 8 , further comprising the engine control unit operating the engine in the droop mode of operation when the nominal engine speed is set to a rated speed of the engine, such that the engine speed will increase above the rated speed at engine loads below a rated load of the engine.

14. The method according to claim 8 , further comprising the engine control unit operating the engine in the isochronous mode of operation, in which the engine speed is maintained at a fixed speed for varying engine loads, when the transport refrigeration unit operates in a continuous cool modulation mode.

15. The method according to claim 8 , further comprising the engine control unit operating the engine in the droop mode of operation when the transport refrigeration unit operates in a pull-down mode of operation.

16. A transport refrigeration system comprising:

an electronically governed engine; and

a transport refrigeration unit including a refrigeration circuit that comprises a compressor, which is configured to be driven by the engine to pump refrigerant about the refrigeration circuit, and a controller which is configured to set a nominal engine speed at which to drive the compressor and communicate that to an engine control unit of the system;

wherein the engine control unit is configured to operate the engine in a droop mode of operation, in which:

the engine control unit operates the engine according to a predefined torque-speed profile corresponding to the nominal engine speed; and

the torque-speed profile indicates different engine speeds at which to drive the compressor for respective non-zero engine loads, wherein the torque-speed profile indicates the nominal engine speed at full engine load and one or more engine speeds that are above the nominal engine speed at engine loads below the full engine load, such that the engine speed will increase above the nominal engine speed as the engine load from the refrigeration circuit decreases from the full engine load,

wherein the engine control unit is configured to alternately operate the engine in the droop mode of operation and an isochronous mode of operation, in which the engine control unit operates the engine according to an isochronous torque-speed profile to maintain the engine at a fixed engine speed for varying engine loads,

wherein:

the engine control unit, or the controller of the transport refrigeration unit, is configured to monitor an operating parameter that is indicative of the engine load; and

the engine control unit is configured to automatically alternate between the droop mode of operation and the isochronous mode of operation based on the operating parameter, and

wherein the engine control unit is configured to operate the engine in:

the droop mode of operation, if the monitored operating parameter is at or below a predetermined threshold value for the operating parameter; and

the isochronous mode of operation, if the operating parameter is greater than the predetermined threshold value.

17. A method of operating a transport refrigeration system that includes an electronically governed engine and a transport refrigeration unit which includes a refrigeration circuit, the method comprising:

powering the electronically governed engine to drive a compressor of the refrigeration circuit to pump refrigerant about the refrigeration circuit;

a controller setting a nominal engine speed at which to drive the compressor and communicating that to an engine control unit of the system;

the engine control unit operating the engine in a droop mode of operation, comprising:

the engine control unit operating the engine according to a predefined torque-speed profile corresponding to the nominal engine speed;

wherein the torque-speed profile indicates different engine speeds to be used for respective non-zero engine loads, wherein the torque-speed profile indicates the nominal engine speed at full engine load and one or more engine speeds that are above the nominal engine speed at engine loads below the full engine load, such that the engine speed will increase above the nominal engine speed as the engine load from the refrigeration circuit decreases from the full engine load;

the engine control unit alternately operating the engine in the droop mode of operation and an isochronous mode of operation, in which the engine control unit operates the engine according to an isochronous torque-speed profile to maintain a fixed engine speed for varying engine loads;

monitoring, using the engine control unit or the controller of the transport refrigeration unit, an operating parameter that is indicative of the engine load;

the engine control unit automatically alternating between the droop mode of operation and the isochronous mode of operation based on the operating parameter,

wherein the operating parameter is a box temperature of the transport refrigeration unit.

Assignments (2)
CHANGE OF NAME Recorded Dec 1, 2022
From: THERMO KING CORPORATION
To: THERMO KING LLC
Reel/Frame 062038/0947 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 20, 2020
From: KENNEDY, PIERCE D.
To: THERMO KING CORPORATION
Reel/Frame 053253/0818 →
Priority Claims (1)
EP 19188955 · Jul 29, 2019 · regional
Continuity (1)
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