IP Library › Granted Patent US 10,518,775
Granted Patent B1
US 10,518,775 · App. 16/129,964 · Granted Dec 31, 2019

Regenerative braking of vehicle with primary and secondary drive axles

Inventors: Jose Velazquez Alcantar (Canton, MI); Corwin Stout (Ann Arbor, MI); Rajit Johri (Canton, MI); Joseph Jay Torres (Dearborn, MI)
Assignee: Ford Global Technologies, LLC
B60W30/18127B60L15/2045B60L50/13B60W10/08B60W20/14B60W30/18172B60L2240/423B60W2520/105B60W2520/14B60W2520/263B60W2520/28B60W2720/403
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Quick Facts
Patent No.
US 10,518,775
App. No.
16/129,964
Granted
Dec 31, 2019
Kind
B1
Abstract

A vehicle includes primary and secondary axles including primary and secondary electric machines, respectively. A vehicle controller is programmed to, responsive to a braking torque request, command regenerative torques, that are a proportion of the braking torque request, to the electric machines such that the proportion commanded to the secondary electric machine decreases responsive to lateral acceleration of the vehicle increasing.

Claims (25)

1. A vehicle comprising:

primary and secondary axles including primary and secondary electric machines, respectively; and

a controller programmed to, responsive to a braking torque request, command regenerative torques, that are a proportion of the braking torque request, to the electric machines such that the proportion commanded to the secondary electric machine decreases responsive to lateral acceleration of the vehicle increasing.

2. The vehicle of claim 1 , wherein the proportion commanded to the secondary electric machine further decreases responsive to efficiency of the secondary electric machine decreasing.

3. The vehicle of claim 1 , wherein the proportion commanded to the secondary electric machine further decreases responsive to a yaw-rate error decreasing.

4. The vehicle of claim 1 , wherein the secondary axle includes wheels, and wherein the proportion commanded to the secondary electric machine further decreases responsive to slip of the wheels increasing.

5. The vehicle of claim 1 , wherein the proportion commanded to the secondary electric machine further decreases responsive to longitudinal acceleration of the vehicle increasing.

6. The vehicle of claim 5 , wherein, for a given longitudinal acceleration of the vehicle, the proportion commanded to the secondary electric machine decreases as vehicle speed increases and the proportion commanded to the secondary electric machine increases as the vehicle speed decreases.

7. The vehicle of claim 1 , wherein the proportion commanded to the secondary electric machine further decreases responsive to steering angle increasing.

8. The vehicle of claim 1 , wherein the primary axle is a front axle and the secondary axle is a rear axle.

9. A vehicle comprising:

primary and secondary drive axles; and

a controller programmed to, responsive to a braking torque request, (i) command a regenerative torque to the secondary axle that is derived from the braking torque request, a base-split modifier, and an efficiency modifier, wherein the base-split modifier is based on vehicle speed and longitudinal acceleration of the vehicle, and (ii) command a regenerative torque to the primary axle that is derived from the braking torque and the regenerative torque to the secondary electric axle.

10. The vehicle of claim 9 , wherein each of the primary and secondary drive axles includes an electric machine.

11. The vehicle of claim 10 , wherein the braking torque request is multiplied by a yaw modifier.

12. The vehicle of claim 9 , wherein the braking torque request is further multiplied by a lateral-acceleration modifier having a value between 0 and 1 and wherein the lateral-acceleration modifier decreases responsive to lateral acceleration of the vehicle increasing.

13. A vehicle comprising:

primary and secondary axles including primary and secondary electric machines, respectively; and

a controller programmed to, responsive to a braking torque request, command regenerative torques, that are a proportion of the braking torque request, to the electric machines such that the proportion commanded to the secondary electric machine decreases responsive to longitudinal acceleration of the vehicle increasing.

14. The vehicle of claim 13 , wherein for a given longitudinal acceleration of the vehicle, the proportion commanded to the secondary electric machine decreases as vehicle speed increases, and the proportion commanded to the secondary electric machine increases as the vehicle speed decreases.

15. The vehicle of claim 13 , wherein the proportion commanded to the secondary electric machine further decreases responsive to efficiency of the secondary electric machine decreasing.

16. The vehicle of claim 13 , wherein the proportion commanded to the secondary electric machine further decreases responsive to a yaw rate error decreasing.

17. The vehicle of claim 13 , wherein the secondary axle includes wheels and wherein the proportion commanded to the secondary electric machine further decreases responsive to slip of the wheels increasing.

18. The vehicle of claim 13 , wherein the proportion commanded to the secondary electric machine further decreases responsive to lateral acceleration of the vehicle increasing.

19. The vehicle of claim 13 , wherein the primary axle is a front axle and the secondary axle is a rear axle.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 13, 2018
From: VELAZQUEZ ALCANTAR, JOSE; STOUT, CORWIN; JOHRI, RAJIT; TORRES, JOSEPH JAY
To: FORD GLOBAL TECHNOLOGIES, LLC
Reel/Frame 046863/0694 →
Cited By (4)
US 12,304,495 US 12,509,137 US 12,583,455 US 12,728,727