IP Library Granted Patent US 10,859,157
Granted Patent B2
US 10,859,157 · App. 16/596,431 · Granted Dec 8, 2020

System, method, and apparatus for operating a high efficiency, high output transmission

Inventors: Thomas Connolly (Portage, MI); Joseph Paul Furner (Ann Arbor, MI); Sipei Chen (Novi, MI); Jeff Hawarden (Rossendale, GB); Ian Daniel McKenzie (Kalamazoo, MI); Christopher DeBoer (Kalamazoo, MI)
Assignee: EATON CUMMINS AUTOMATED TRANSMISSION TECH., LLC
F16H59/0204B60W10/02B60W10/11B60W30/19B60W50/00F16D25/126F16H3/091F16H3/64F16H37/046F16H57/02004F16H61/0021F16H61/0213F16H61/06F16H61/08G08B13/00G08B27/00H04B10/0775H04J3/125B60W2050/0058B60W2510/0275B60W2510/0283B60W2510/107B60W2710/021B60W2710/022B60W2710/025B60W2710/1005F16H3/16F16H3/78F16H57/021F16H57/032F16H57/043F16H57/0423F16H57/0441F16H57/0471F16H57/0478F16H57/0484F16H57/0494F16H59/38F16H59/40F16H59/72F16H61/04F16H61/143F16H61/682F16H61/705F16H63/24F16H2057/0206F16H2059/725F16H2061/2853F16H2061/308F16H2063/005F16H2063/3093
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Quick Facts
Patent No.
US 10,859,157
App. No.
16/596,431
Granted
Dec 8, 2020
Kind
B2
Abstract

A transmission includes an input shaft coupled to a prime mover, a countershaft, main shaft, and an output shaft, with gears between the countershaft and the main shaft. A shift actuator selectively couples the input shaft to the main shaft by rotatably coupling gears between the countershaft and the main shaft. The shift actuator is mounted on an exterior wall of a housing including the countershaft and the main shaft. A controller controls the shift actuator utilizing an actuating pulse and an opposing pulse.

Claims (57)

1. An apparatus, comprising:

a shift control logic configured to:

provide a first opposing pulse, the first opposing pulse comprising a first predetermined amount of air above an ambient amount of air in a first closed volume, wherein pressure in the first closed volume opposes movement of a pneumatic shift actuator of a transmission in a shift direction;

provide a first actuating pulse, the first actuating pulse comprising a second predetermined amount of air above an ambient amount of air in a second closed volume, wherein pressure in the second closed volume promotes movement of the pneumatic shift actuator in the shift direction; and

release pressure in the first closed volume and the second closed volume in response to determining a shift completion event.

2. The apparatus of claim 1 , wherein the shift control logic is further configured to modulate the first actuating pulse command in response to a previously determined gear departure position value.

3. The apparatus of claim 2 , wherein the modulating comprises providing the first actuating pulse command as a full open command in response to a position of the pneumatic shift actuator being on an engaged side of the gear departure position value.

4. The apparatus of claim 3 , wherein the modulating further comprises providing the first actuating pulse command as a pulse-width modulated (PWM) command in response to the position of the pneumatic shift actuator being one of approaching or exceeding the gear departure position value.

5. The apparatus of claim 1 , wherein the shift control logic is further configured to provide a second opposing pulse command in response to a shift actuator position indicating an engaging synchronizer is off the block.

6. The apparatus of claim 5 , wherein the shift control logic is further configured to interrupt at least one of the first actuating pulse command and the second opposing pulse command to synchronize pressure decay in the first closed volume and the second closed volume.

7. The apparatus of claim 1 , further comprising:

a clutch control logic configured to command a position of a pneumatic clutch actuator, wherein the pneumatic clutch actuator and the pneumatic shift actuator are powered by a common air supply;

wherein the clutch control logic and the shift control logic are further configured to perform at least one coordination action selected from the coordination actions consisting of:

ensuring that no two actuating valves are open at the same time;

alternating valve actuation commands;

receiving an air source pressure value from a source pressure sensor of the transmission, and operating valves simultaneously in response to the air source pressure value being sufficient; and

receiving an air source pressure value from a source pressure sensor of the transmission, and compensating commands in response to the air source pressure value.

8. The apparatus of claim 1 , wherein the shift control logic is further configured to interrupt the first actuating pulse command in response to one of a shift rail position and a shift rail velocity, and to provide a second actuating pulse command further in response to the one of the shift rail position and the shift rail velocity after the interrupting.

9. A system, comprising:

a transmission having a pneumatic shift actuator;

a controller, comprising:

a shift control logic configured to:

provide a first opposing pulse, the first opposing pulse comprising a first predetermined amount of air above an ambient amount of air in a first closed volume, wherein pressure in the first closed volume opposes movement of the pneumatic shift actuator in a shift direction;

provide a first actuating pulse, the first actuating pulse comprising a second predetermined amount of air above an ambient amount of air in a second closed volume, wherein pressure in the second closed volume promotes movement of the pneumatic shift actuator in the shift direction; and

release pressure in the first closed volume and the second closed volume in response to determining a shift completion event.

10. The system of claim 9 , wherein the shift control logic is further configured to modulate the first actuating pulse command in response to a previously determined gear departure position value.

11. The system of claim 10 , wherein the modulating comprises providing the first actuating pulse command as a full open command in response to a position of the pneumatic shift actuator being on an engaged side of the gear departure position value.

12. The system of claim 11 , wherein the modulating further comprises providing the first actuating pulse command as a pulse-width modulated (PWM) command in response to the position of the pneumatic shift actuator being one of approaching or exceeding the gear departure position value.

13. The system of claim 9 , wherein the shift control logic is further configured to provide a second opposing pulse command in response to a shift actuator position indicating an engaging synchronizer is off the block.

14. The system of claim 13 , wherein the shift control logic is further configured to interrupt at least one of the first actuating pulse command and the second opposing pulse command to synchronize pressure decay in the first closed volume and the second closed volume.

15. The system of claim 9 , further comprising:

the transmission further comprising a pneumatic clutch actuator, wherein the pneumatic clutch actuator and the pneumatic shift actuator are powered by a common air supply;

wherein the controller further comprises:

a clutch control logic configured to command a position of the pneumatic clutch actuator; and

wherein the clutch control logic and the shift control logic are further configured to perform at least one coordination action selected from the coordination actions consisting of:

ensuring that no two actuating valves are open at the same time; and

alternating valve actuation commands.

16. The system of claim 9 , further comprising:

wherein the transmission further comprises a source pressure sensor configured to provide an air source pressure value representative of a pressure of the common air supply;

wherein the controller further comprises:

a clutch control logic configured to command a position of the pneumatic clutch actuator; and

wherein the clutch control logic and the shift control logic are further configured to perform at least one coordination action selected from the coordination actions consisting of:

operating valves simultaneously in response to the air source pressure value being sufficient; and

compensating commands in response to the air source pressure value.

17. A method, comprising:

providing a first opposing pulse, the first opposing pulse comprising a first predetermined amount of air above an ambient amount of air in a first closed volume, wherein pressure in the first closed volume opposes movement of a pneumatic shift actuator of a transmission in a shift direction;

providing a first actuating pulse, the first actuating pulse comprising a second predetermined amount of air above an ambient amount of air in a second closed volume, wherein pressure in the second closed volume promotes movement of the pneumatic shift actuator in the shift direction; and

releasing pressure in the first closed volume and the second closed volume in response to determining a shift completion event.

18. The method of claim 17 , further comprising modulating the first actuating pulse command in response to a previously determined gear departure position value.

19. The method of claim 18 , wherein the modulating comprises providing the first actuating pulse command as a full open command in response to a position of the pneumatic shift actuator being on an engaged side of the gear departure position value, and providing the first actuating pulse command as a pulse-width modulated (PWM) command in response to the position of the pneumatic shift actuator being one of approaching or exceeding the gear departure position value.

20. The method of claim 17 , further comprising:

commanding a position of a pneumatic clutch actuator, wherein the pneumatic clutch actuator and the pneumatic shift actuator are powered by a common air supply;

coordinating the commanding of the position of the pneumatic clutch actuator and the providing the first opposing pulse and the first actuating pulse by performing at least one operation selected from the operations consisting of:

ensuring that no two actuating valves are open at the same time;

alternating valve actuation commands;

receiving an air source pressure value from a source pressure sensor of the transmission, and operating valves simultaneously in response to the air source pressure value being sufficient; and

receiving an air source pressure value from a source pressure sensor of the transmission, and compensating commands in response to the air source pressure value.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 3, 2020
From: KAWALE, SUJAY; CONNOLLY, THOMAS; GRIFFITHS, JUSTIN KEITH; FURNER, JOSEPH PAUL; CHEN, SIPEI; HAWARDEN, JEFF; WANG, YEIDEI; MAURER, ADAM CHRISTOPHER; SMITH, CARL CHRISTOPHER; MCKENZIE, IAN DANIEL; PAULS, RYAN; DAVID, WILLIAM A.; BUSDIECKER, MATTHEW R.; DEBOER, CHRISTOPHER
To: EATON CORPORATION
Reel/Frame 054261/0869 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 3, 2020
From: EATON INTELLIGENT POWER LIMITED
To: EATON CUMMINS AUTOMATED TRANSMISSION TECHNOLOGIES, LLC
Reel/Frame 054261/0974 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 3, 2020
From: EATON CORPORATION
To: EATON INTELLIGENT POWER LIMITED
Reel/Frame 054869/0153 →
Continuity (4)
Continuation 15663201 · Jul 28, 2017
Provisional Application 62465021 · Feb 28, 2017
Provisional Application 62438201 · Dec 22, 2016
Related Publication 20200080629A1 · Mar 12, 2020