IP Library Granted Patent US 10,859,156
Granted Patent B2
US 10,859,156 · App. 16/596,422 · 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 Technologies, 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 10,859,156
App. No.
16/596,422
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 (77)

1. An apparatus, comprising:

a clutch characterization logic configured to interpret a clutch torque profile, the clutch torque profile providing a relation between a position of a clutch of a transmission and a clutch torque value;

a clutch control logic configured to command a position of a progressive actuator operationally coupled to the clutch, wherein a position of the progressive actuator corresponds to a position of the clutch, in response to a clutch torque reference value and the clutch torque profile;

the clutch characterization logic further configured to interpret a position of the progressive actuator and an indicated clutch torque, and to update the clutch torque profile in response to the position of the progressive actuator and the indicated clutch torque;

wherein the clutch torque profile comprises a first clutch engagement position value, and wherein the clutch control logic is further configured to utilize the first clutch engagement position value as a maximum zero torque position;

wherein the clutch characterization logic is further configured to interpret the clutch torque profile by performing a clutch first engagement position test, the clutch first engagement position test comprising: determining that an input shaft speed is zero, the clutch control logic positioning the clutch at the first clutch engagement position value, and comparing an acceleration of the input shaft speed of the transmission to a first expected acceleration value of the input shaft speed.

2. The apparatus of claim 1 , wherein the clutch first engagement position test further comprises a friction brake control logic configured to command a friction brake to bring the input shaft speed to zero.

3. The apparatus of claim 1 , further comprising:

a vehicle environment logic configured to perform an operation a) to interpret a motive torque value, a vehicle grade value, and a vehicle acceleration value;

a mass estimation logic configured to perform an operation b) to determine a first correlation comprising a first correlation between the motive torque value and the vehicle grade value, a second correlation between the motive torque value and the vehicle acceleration value, and a third correlation between the vehicle grade value and the vehicle acceleration value;

wherein the mass estimation logic is further configured to perform an operation c) to adapt an estimated vehicle mass value, an estimated vehicle drag value, and an estimated vehicle effective inertia value in response to the first correlation, the second correlation, and the third correlation;

a model consistency logic to perform an operation d) to determine an adaptation consistency value, and in response to the adaptation consistency value, to adjust an adaptation rate of the adapting; and

wherein the vehicle environment logic, the mass estimation logic, and the model consistency logics are further configured to iteratively perform operations a), b), c), and d) to provide an updated estimated vehicle mass value; and

a launch characterization logic configured to interpret at least one launch parameter, the at least one launch parameter including the updated estimated vehicle mass value.

4. The apparatus of claim 3 , further comprising

a means for providing a consistent lock-up time of the clutch, the consistent lock-up time comprising a time commencing with a clutch torque request time and ending with a clutch lock-up event.

5. The apparatus of claim 4 , wherein the clutch torque request time comprises at least one request condition selected from the request conditions selected from: a service brake pedal release event; a service brake pedal decrease event; a gear engagement request event; and a prime mover torque increase event.

6. The apparatus of claim 4 , wherein the clutch lock-up event comprises a clutch slip value being lower than a clutch lock-up slip threshold value.

7. The apparatus of claim 1 , further comprising:

a vehicle state logic configured to interpret at least one vehicle operating condition; and

a neutral enforcement logic configured to provide a first neutral command to a first shift actuator and a second neutral command to a second shift actuator, in response to the at least one vehicle operating condition indicating that vehicle motion is not intended;

wherein the first shift actuator is responsive to selectively decouple a first gear mesh, and the second shift actuators is responsive to selectively decouple a second gear mesh, wherein both gear meshes in the engaged position couple an input shaft of a transmission to drive wheels of a vehicle including the transmission, and wherein either gear mesh in the neutral position decouples the input shaft from the drive wheels.

8. A system, comprising:

a transmission having a clutch configured to selectively decouple an input shaft of the transmission from a prime mover;

a progressive actuator operationally coupled to the clutch, wherein a position of the progressive actuator corresponds to a position of the clutch;

a controller, comprising:

a clutch characterization logic configured to interpret a clutch torque profile, the clutch torque profile providing a relation between a position of the actuator and a clutch torque value;

a clutch control logic configured to command a position of the progressive actuator in response to a clutch torque reference value and the clutch torque profile;

the clutch characterization logic further configured to interpret a position of the progressive actuator and an indicated clutch torque, and to update the clutch torque profile in response to the position of the progressive actuator and the indicated clutch torque;

wherein the clutch torque profile comprises a first clutch engagement position value, and wherein the clutch control logic is further configured to utilize the first clutch engagement position value as a maximum zero torque position;

wherein the clutch characterization logic is further configured to interpret the clutch torque profile by performing a clutch first engagement position test, the clutch first engagement position test comprising: determining that an input shaft speed is zero, the clutch control logic positioning the clutch at the first clutch engagement position value, and comparing an acceleration of the input shaft speed of the transmission to a first expected acceleration value of the input shaft speed.

9. The system of claim 8 , wherein the clutch first engagement position test further comprises a friction brake control logic configured to command a friction brake of the transmission to bring the input shaft speed to zero.

10. The system of claim 8 , wherein the controller further comprises:

a vehicle environment logic configured to perform an operation a) to interpret a motive torque value, a vehicle grade value, and a vehicle acceleration value;

a mass estimation logic configured to perform an operation b) to determine a first correlation comprising a first correlation between the motive torque value and the vehicle grade value, a second correlation between the motive torque value and the vehicle acceleration value, and a third correlation between the vehicle grade value and the vehicle acceleration value;

wherein the mass estimation logic is further configured to perform an operation c) to adapt an estimated vehicle mass value, an estimated vehicle drag value, and an estimated vehicle effective inertia value in response to the first correlation, the second correlation, and the third correlation;

a model consistency logic to perform an operation d) to determine an adaptation consistency value, and in response to the adaptation consistency value, to adjust an adaptation rate of the adapting; and

wherein the vehicle environment logic, the mass estimation logic, and the model consistency logics are further configured to iteratively perform operations a), b), c), and d) to provide an updated estimated vehicle mass value; and

a launch characterization logic configured to interpret at least one launch parameter, the at least one launch parameter including the updated estimated vehicle mass value.

11. The system of claim 10 , further comprising a means for providing a consistent lock-up time of the clutch, the consistent lock-up time comprising a time commencing with a clutch torque request time and ending with a clutch lock-up event.

12. The system of claim 11 , wherein the clutch torque request time comprises at least one request condition selected from the request conditions selected from: a service brake pedal release event; a service brake pedal decrease event; a gear engagement request event; and a prime mover torque increase event.

13. The system of claim 11 , wherein the clutch lock-up event comprises a clutch slip value being lower than a clutch lock-up slip threshold value.

14. The system of claim 8 , wherein the controller further comprises:

a vehicle state logic configured to interpret at least one vehicle operating condition; and

a neutral enforcement logic configured to provide a first neutral command to a first shift actuator and a second neutral command to a second shift actuator, in response to the at least one vehicle operating condition indicating that vehicle motion is not intended;

wherein the first shift actuator is responsive to selectively decouple a first gear mesh, and the second shift actuators is responsive to selectively decouple a second gear mesh, wherein both gear meshes in the engaged position couple an input shaft of a transmission to drive wheels of a vehicle including the transmission, and wherein either gear mesh in the neutral position decouples the input shaft from the drive wheels.

15. The system of claim 8 , wherein the controller further comprises:

a backlash indication logic configured to identify an imminent backlash crossing event at a first gear mesh by performing at least one operation selected from the operations consisting of;

determining that an imminent rotational direction of the first gear mesh in a transmission is an opposite rotational direction to an established rotational direction of the first gear mesh;

determining that a speed change between a first shaft comprising gears on one side of the first gear mesh and a second shaft comprising gears on an opposing side of the first gear mesh is likely to induce a backlash crossing event;

determining that a gear shift occurring at a second gear mesh is likely to induce a backlash crossing event at the first gear mesh;

determining that a transmission input torque value indicates an imminent zero crossing event; and

determining that a vehicle operating condition is likely to induce a backlash crossing event; and

a backlash management logic configured to reduce engagement force experienced by the first gear mesh in response to receiving a backlash crossing indication event from the backlash indication logic by performing at least one operation selected from the operations consisting of:

disengaging the first gear mesh during at least a portion of the backlash crossing event;

disengaging a clutch during at least a portion of the backlash crossing event; and

slipping a clutch during at least a portion of the backlash crossing event.

16. A method, comprising:

interpreting a clutch torque profile, the clutch torque profile providing a relation between a position of a clutch of a transmission and a clutch torque value;

commanding a position of a progressive actuator operationally coupled to the clutch, wherein a position of the progressive actuator corresponds to a position of the clutch, in response to a clutch torque reference value and the clutch torque profile;

interpreting a position of the progressive actuator and an indicated clutch torque, and updating the clutch torque profile in response to the position of the progressive actuator and the indicated clutch torque;

wherein the clutch torque profile comprises a first clutch engagement position value, and wherein the clutch control logic is further configured to utilize the first clutch engagement position value as a maximum zero torque position; and

interpreting the clutch torque profile by performing a clutch first engagement position test, the clutch first engagement position test comprising: determining that an input shaft speed is zero, the clutch control logic positioning the clutch at the first clutch engagement position value, and comparing an acceleration of the input shaft speed of the transmission to a first expected acceleration value of the input shaft speed.

17. The method of claim 16 , further comprising commanding a friction brake to bring the input shaft speed to zero.

18. The method of claim 16 , further comprising:

performing an operation a) to interpret a motive torque value, a vehicle grade value, and a vehicle acceleration value;

performing an operation b) to determine a first correlation comprising a first correlation between the motive torque value and the vehicle grade value, a second correlation between the motive torque value and the vehicle acceleration value, and a third correlation between the vehicle grade value and the vehicle acceleration value;

performing an operation c) to adapt an estimated vehicle mass value, an estimated vehicle drag value, and an estimated vehicle effective inertia value in response to the first correlation, the second correlation, and the third correlation;

performing an operation d) to determine an adaptation consistency value, and in response to the adaptation consistency value, to adjust an adaptation rate of the adapting;

iteratively performing operations a), b), c), and d) to provide an updated estimated vehicle mass value; and

interpreting at least one launch parameter, the at least one launch parameter including the updated estimated vehicle mass value.

19. The method of claim 16 , further comprising:

interpreting at least one vehicle operating condition; and

providing a first neutral command to a first shift actuator and a second neutral command to a second shift actuator, in response to the at least one vehicle operating condition indicating that vehicle motion is not intended;

wherein the first shift actuator is responsive to selectively decouple a first gear mesh, and the second shift actuators is responsive to selectively decouple a second gear mesh, wherein both gear meshes in the engaged position couple an input shaft of a transmission to drive wheels of a vehicle including the transmission, and wherein either gear mesh in the neutral position decouples the input shaft from the drive wheels.

20. The method of claim 16 , further comprising providing a consistent lock-up time of the clutch, the consistent lock-up time comprising a time commencing with a clutch torque request time and ending with a clutch lock-up event.

21. The method of claim 18 , further comprising providing a consistent lock-up time of the clutch, the consistent lock-up time comprising a time commencing with a clutch torque request time and ending with a clutch lock-up event, wherein the providing further comprises utilizing the at least one launch parameter and the clutch torque profile.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 19, 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 054090/0753 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 19, 2020
From: EATON INTELLIGENT POWER LIMITED
To: EATON CUMMINS AUTOMATED TRANSMISSION TECHNOLOGIES, LLC
Reel/Frame 054091/0219 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 19, 2020
From: EATON CORPORATION
To: EATON INTELLIGENT POWER LIMITED
Reel/Frame 054109/0601 →
Continuity (4)
Continuation 15663201 · Jul 28, 2017
Provisional Application 62465021 · Feb 28, 2017
Provisional Application 62438201 · Dec 22, 2016
Related Publication 20200080627A1 · Mar 12, 2020