HYBRID BRAKE-BY-WIRE SYSTEM USING A MOTOR-MAGNETOSTRICTIVE ACTUATOR COMBINATION
20190084543 ยท 2019-03-21
Inventors
- Xianxu Bai (Anhui, CN)
- Yang Li (Anhui, CN)
- Feilong Cai (Anhui, CN)
- Zhiyuan Si (Anhui, CN)
- Lijun Qian (Anhui, CN)
Cpc classification
B60T13/667
PERFORMING OPERATIONS; TRANSPORTING
F16D2121/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/587
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2066/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/183
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/741
PERFORMING OPERATIONS; TRANSPORTING
F16D2125/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2121/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/748
PERFORMING OPERATIONS; TRANSPORTING
F16D2125/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2121/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2066/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60T13/74
PERFORMING OPERATIONS; TRANSPORTING
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D55/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention discloses a motor-magnetostrictive actuator hybrid brake-by-wire system. The system includes a motor, a transmission mechanism, a magnetostrictive-driving piston mechanism and a floating-caliper disc mechanism. The transmission mechanism includes a planetary gear set and a screw set, and is driven by the motor. The linear motion of the sleeve is achieved by the planetary gear set and screw set. The sleeve pushes forward the piston head of the magnetostrictive-driving piston mechanism and the piston head pushes forward the brake pad back plate of the floating-caliper disc mechanism to clamp the brake disc, which accomplishes braking. The present invention uses the motor and the magnetostrictive-driving piston mechanism as a combined BBW system, which will simultaneously solve the problems of slow response, low precision and motor stalling effect of the only motor-driving braking systems and, also avoid the drawback of insufficient mechanical capabilities of the only magnetostrictive actuator-driving braking systems.
Claims
1. A hybrid BBW system using a motor-magnetostrictive actuator combination, comprising: a motor, a transmission mechanism, a magnetostrictive-driving piston mechanism and a floating-caliper disc mechanism, wherein the transmission mechanism including a planetary gear set and a screw set is driven by the motor; the linear motion of a sleeve is achieved by the transmission of the planetary gear set and a screw set; and a piston head of the magnetostrictive-driving piston mechanism pushed forward by both the sleeve and the magnetostrictive rod drives the brake pad back plate to squeeze the brake disc through the right and left brake pads of the floating-caliper disc mechanism, which accomplishes braking.
2. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 1, wherein the motor includes a stator and a rotor; the ring gear of the planetary gear set fixedly connected with the rotor is driven by the motor; the screw of the screw set is coaxially assembled with the carrier and the sun gear of the planetary gear set; the screw is assembled on the planet carrier via a connecting key on one end; the nut and the screw are connected via threads; and the sleeve which cases the nut fixedly connected with the nut at its rear end through bolts is driven to move linearly.
3. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 1, wherein the output end of a pushrod is screwed into the piston head of the magnetostrictive-driving piston mechanism; a gland is connected with the front end of the piston body by threads; the pushrod is compressed onto the front end of the magnetostrictive rod by a bias spring; the rear end of the piston body connected with the front end of the sleeve is driven by the sleeve to move linearly; and a coil winding is wound on the bobbin installed outside of the magnetostrictive rod, which realizes axial extension or contraction for the magnetostrictive rod under the electromagnetic field generated by the coil winding with applied current.
4. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 1, wherein the left brake pad is fixed to inner side of the left caliper arm of a caliper body; the right brake pad is fixed to the left side of the brake pad back plate; the brake disc is sandwiched between the right and left brake pads; the right side of the brake pad back plate is connected to the front end of the piston head in a T shape; and the brake pad back plate driven by the piston head pushes the right brake pad to squeeze the brake disc, forcing the caliper body to push the left brake pad towards the right to squeeze the brake disc, which realizes braking.
5. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 4 further comprising a guide rail penetrating the brake pad back plate in the caliper body from which the brake pad back plate gets guided.
6. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 1 further comprising a prestress bolt installed onto the rear end of the magnetostrictive rod for adjusting the initial position of the magnetostrictive rod.
7. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 1, wherein the control process includes the steps of: (a) no initial current is applied to the coil winding of the magnetostrictive-driving piston mechanism; (b) when braking, the motor and the magnetostrictive-driving piston mechanism cooperate to push the right brake pad to overcome the brake clearance and the corresponding resistance and compress the brake disc to be clamped by the right and the left brake pad; (c) when the braking torque reaches the preset value, the applied current to the motor is cut off; and the screw set enters self-locking state; (d) if the braking torque is insufficient, correspondingly, the coil winding of the magnetostrictive-driving piston mechanism is applied with an appropriate high-level current, ABS enters the stage of increasing the torque; (e) if the wheel is in the optimal braking state, ABS enters the stage of holding the torque; (f) if the wheel tends to lock, correspondingly, the coil winding of the magnetostrictive-driving piston mechanism is applied with an appropriate low-level current, then ABS enters the stage of reducing the torque; (f) at the end of braking, reverse current is applied to the motor, simultaneously, the applied current in the coil winding of the magnetostrictive-driving piston mechanism is cut off; and the magnetostrictive-driving piston mechanism resets.
8. A hybrid BBW system using a motor-magnetostrictive actuator combination, comprising: a motor, a transmission mechanism, a magnetostrictive-driving wedge mechanism and a wedge-shaped caliper disc mechanism, wherein the transmission mechanism including a planetary gear set and a screw set is driven by the motor; the linear motion of a sleeve is achieved by the transmission of the planetary gear set and a screw set; and a piston head (10) of the magnetostrictive-driving wedge mechanism pushed forward by both the sleeve and the magnetostrictive rod drives the wedge to squeeze the brake disc through the right and left brake pads of the wedge-shaped caliper disc mechanism, which accomplishes braking.
9. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 8, wherein the motor includes a stator and a rotor; the ring gear of the planetary gear set fixedly connected with the rotor is driven by the motor; the screw of the screw set is coaxially assembled with the planet carrier and the sun gear of the planetary gear set; the screw is assembled on the planet carrier via a connecting key on one end; the nut and the screw are connected via threads; and the sleeve which cases the nut fixedly connected with the nut at the rear end through bolts is driven to move linearly.
10. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 8, wherein the magnetostrictive actuating-driving wedge mechanism includes a magnetostrictive-driving piston mechanism and a wedge; the output end of a pushrod is screwed into the wedge; a gland is connected with the front end of the piston body by threads; the pushrod is compressed onto the front end of a magnetostrictive rod by a bias spring; the piston body connected with the front end of the sleeve at its rear end is driven to move linearly; and a coil winding is wound on the bobbin installed outside of the magnetostrictive rod, which realizes axial extension or contraction for the magnetostrictive rod under the electromagnetic field generated by the coil winding with applied current.
11. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 8, wherein in the wedge-shaped caliper disc mechanism, a left brake pad is fixed to inner side of the left caliper arm of the caliper body; a right brake pad is fixed to the wedge; the brake disc is sandwiched between the right and left brake pads; the wedge is connected to the pushrod in a T shape; and the wedge driven by the pushrod pushes the right brake pad to squeeze the brake disc, forcing the caliper body to push the left brake pad towards the right to squeeze the brake disc, which realizes braking.
12. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 8, further comprising a roller installed between the bevel of the caliper body of the floating wedge-shaped caliper disc mechanism and the bevel of the wedge; and during the braking process the pushrod pushes the wedge and the bevel of wedge interact with the bevel of wedge-shaped caliper disc mechanism which realize the self-reinforcing effect.
13. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 8, further comprising a prestress bolt installed onto the rear end of the magnetostrictive rod to adjust the initial position of the magnetostrictive rod.
14. The hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 8, wherein the control process includes the steps of: (a) no initial current is applied to the coil winding of the magnetostrictive-driving piston mechanism; (b) when braking, the motor and the magnetostrictive actuating-driving wedge mechanism cooperate to push the right brake pad to overcome the brake clearance and the corresponding resistance; and the brake disc is clamped by the right and left brake pads; (c) when the braking torque reaches the preset value, the applied current to the motor is cut off; and the screw set enters self-locking state; (d) if the braking torque is insufficient, correspondingly, the coil winding is applied with an appropriate high-level current, and ABS enters the stage of increasing the torque; (e) if the wheel is in the optimal braking state, ABS enters the stage of holding the torque; (f) if the wheel tends to lock, correspondingly, the coil winding of the magnetostrictive-driving wedge mechanism is applied with an appropriate low-level current, and then ABS enters the stage of reducing the torque; (g) at the end of braking, reverse current is applied to the motor, simultaneously, the applied current in the coil winding of the magnetostrictive-driving wedge mechanism is cut off; and the magnetostrictive-driving wedge mechanism resets.
15. The hybrid BBW system using a motor-magnetostrictive actuator combination as in claim 1, wherein a ball-screw set is used to replace the screw set; and a check structure consisting of a ratchet and a pawl is assembled onto the ball-screw set.
16. A hybrid BBW system using a motor-magnetostrictive actuator combination comprising: a motor, a transmission mechanism, a magnetostrictive-driving piston mechanism and a floating-caliper disc mechanism, wherein the transmission mechanism includes a planetary gear set, a ball-screw set and a clutch assembled between the ball-screw set and the planet carrier which is driven by the motor; and the linear motion of a sleeve of the transmission mechanism is achieved by the transmission of the planetary gear set and the ball-screw set; and a piston head of the magnetostrictive-driving piston mechanism pushed forward by the sleeve drives the brake pad back plate in the floating-caliper disc mechanism, which accomplishes braking.
17. A hybrid BBW system using a motor-magnetostrictive actuator combination comprising: a motor, a transmission mechanism, a magnetostrictive actuating wedge mechanism and a wedge-shaped caliper disc mechanism, wherein the transmission mechanism includes a planetary gear set and a ball-screw set, and a clutch assembled between the ball-screw set and the planet carrier, which is driven by the motor; the linear motion of a sleeve is achieved by the transmission of the planetary gear set and the ball-screw set; and a piston head of the magnetostrictive-driving wedge mechanism pushed forward by both the sleeve and the magnetostrictive rod drives the wedge of the magnetostrictive actuating wedge mechanism to achieve its linear motion, and to squeeze the brake disc through the right and left brake pads of the wedge-shaped caliper disc mechanism, which accomplishes braking; the magnetostrictive-driving wedge mechanism includes the magnetostrictive-driving piston mechanism and a wedge; the output end of a pushrod is screwed into the wedge; a gland is connected with the front end of the piston body by threads; the pushrod is compressed onto the front end of a magnetostrictive rod by a bias spring; the piston body connected with the front end of sleeve at its rear end is driven to move linearly; and a coil winding is wound on the bobbin installed outside of the magnetostrictive rod, which realizes controllable axial extension or contraction under the controlled electromagnetic field generated by the coil winding with applied current.
18. A hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 1, wherein the magnetostrictive-driving module for braking with ABS performance, motor-driving module for braking with ABS performance and motor-driving regular braking with no ABS performance is potentially functioning with descending priority with consideration of the fail-safe behavior; and during the start of the braking process and/or the long-time braking process, if the magnetostrictive-driving piston or wedge mechanism fails to work, the main control system cuts off the control signal to the magnetostrictive-driving module, meanwhile, starts the motor-driving module, and simultaneously sends the warning signal to the driver.
19. A hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 8, wherein the magnetostrictive-driving module for braking with ABS performance, motor-driving module for braking with ABS performance and motor-driving regular braking with no ABS performance is potentially functioning with descending priority with consideration of the fail-safe behavior; and during the start of the braking process and/or the long-time braking process, if the magnetostrictive-driving piston or wedge mechanism fails to work, the main control system cuts off the control signal to the magnetostrictive-driving module, meanwhile, starts the motor-driving module, and simultaneously sends the warning signal to the driver.
20. A hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 15, wherein the magnetostrictive-driving module for braking with ABS performance, motor-driving module for braking with ABS performance and motor-driving regular braking with no ABS performance is potentially functioning with descending priority with consideration of the fail-safe behavior; and during the start of the braking process and/or the long-time braking process, if the magnetostrictive-driving piston or wedge mechanism fails to work, the main control system cuts off the control signal to the magnetostrictive-driving module, meanwhile, starts the motor-driving module, and simultaneously sends the warning signal to the driver.
21. A hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 16, wherein the magnetostrictive-driving module for braking with ABS performance, motor-driving module for braking with ABS performance and motor-driving regular braking with no ABS performance is potentially functioning with descending priority with consideration of the fail-safe behavior; and during the start of the braking process and/or the long-time braking process, if the magnetostrictive-driving piston or wedge mechanism fails to work, the main control system cuts off the control signal to the magnetostrictive-driving module, meanwhile, starts the motor-driving module, and simultaneously sends the warning signal to the driver.
22. A hybrid BBW system using a motor-magnetostrictive actuator combination as claimed in claim 17, wherein the magnetostrictive-driving module for braking with ABS performance, motor-driving module for braking with ABS performance and motor-driving regular braking with no ABS performance is potentially functioning with descending priority with consideration of the fail-safe behavior; and during the start of the braking process and/or the long-time braking process, if the magnetostrictive-driving piston or wedge mechanism fails to work, the main control system cuts off the control signal to the magnetostrictive-driving module, meanwhile, starts the motor-driving module, and simultaneously sends the warning signal to the driver.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The present disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041] Notation: the sequential numbers and the corresponding parts in the FIGs are listed:
[0042] 101 motor, 102 stator, 103 rotor, 104 (301, 401) transmission mechanism, 105 planetary gear set, 106 ring gear, 107 planetary gear, 108 sun gear, 109 carrier, 110 screw set, 111 (306) screw, 112 nut, 113 (307) sleeve, 114 magnetostrictive-driving piston mechanism, 115 floating-caliper disc mechanism, 116 (203) caliper body, 117 guide rail, 118 brake pad back plate, 119 right brake pad, 120 brake disc, 121 left brake pad, 201 magnetostrictive-driving wedge mechanism, 202 wedge-shaped caliper disc mechanism, 204 roller, 205 wedge, 302 check structure, 303 pawl, 304 ratchet, 305 ball-screw set, 402 clutch, 10 piston head, 11 gland, 12 piston assembly, 13 coil winding, 14 bobbin, 15 outlet hole, 16 prestress bolt, 17 magnetostrictive rod, 18 pushrod, 19 bias spring, 20 wheel speed sensor, 21 by-wire brake, 22 electronic brake pedal, 23 angle sensor, 24 ABS indicator, 25 parking brake indicator, 26 ignition switch and 27 battery.
DETAILED DESCRIPTION OF EMBODIMENTS
[0043]
[0044]
[0045] As shown in
[0046] Referring now to
[0047] In the embodiment, the coarse adjustment of the braking process is realized by the control of the motor 101, meanwhile the fine adjustment of the braking process is realized by the control of magnetostrictive rod 17 through applied current regulation in the coil winding 13.
[0048] The motor 101 turns the screw 111 through the planetary gear set 105, pushing the sleeve 113 through the nut 112 to the left. When the braking torque reaches the preset value and the sleeve 113 in an expected position, the reverse locking function of the screw set 110 prevents the sleeve 113 from pushing the screw 111 reverse rotation. This reverse locking function can also be achieved by a check structure 302. The magnetostrictive-driving piston mechanism 114 is connected with the output end of the motor 101 through a transmission mechanism 104, pushing the brake pads against the brake disc 120 to achieve the purpose of deceleration.
[0049] The brake control modes are set that: when braking, the motor 101 and the magnetostrictive-driving piston mechanism 114 work coordinately, the motor 101 pushes the right and left brake pads 119, 121 to overcome the brake clearance and the corresponding resistance, and then the brake disc 120 is compressed by the right 119 and left 121 brake pads. When the braking torque reaches the preset value, the applied current of the motor 101 is cut off, and the screw set 110 enters self-locking state. No initial current is applied to the coil winding 13 of the magnetostrictive-driving piston mechanism 114. At this point, if the braking torque is insufficient, the coil winding 13 is applied with an appropriate high-level current, and ABS enters the stage of increasing the torque. If the wheel is in the optimal braking state, ABS enters the stage of holding the torque. If the wheel approaches to the locking state, the coil winding 13 is applied with an appropriate low-level current, then ABS enters the stage of reducing the torque. At the end of braking, reverse current is applied to the motor 101, simultaneously the applied current to the coil winding 13 of the magnetostrictive-driving piston mechanism 114 is cut off, and the magnetostrictive-driving piston mechanism 114 resets.
[0050] Referring now to
[0051] Referring now to
[0052] Referring now to
[0053] Referring now to
[0054] Referring now to
[0055] Referring now to
[0056] Referring now to
[0057] Referring now to