Electric braking device
The electric braking device addresses durability issues by converting rotational motion to linear motion with an elastic part to resist piston retraction, effectively mitigating shock and enhancing durability during power loss.
Patent Information
- Application Number
- JP2021158725
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-09-29
- Publication Date
- 2025-11-06
- Estimated Expiration
- 2041-09-29
AI Technical Summary
Existing electric braking devices face durability issues due to potential impact from piston retraction when the electric motor loses power, which is not addressed by all clutch mechanisms due to space and cost constraints.
An electric braking device that converts rotational motion from an electric motor into linear motion using a linear motion conversion mechanism, incorporating an elastic part between the piston and a reference part to generate a repulsive force resisting piston retraction, thereby reducing the impact during power loss.
The repulsive force from the elastic part mitigates the shock caused by piston retraction, enhancing the durability of the braking device by reducing the retraction speed and impact during power failure.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an electric braking device that generates braking force using the power of an electric motor. [Background technology]
[0002] Electric braking devices that generate braking force by linear motion of a piston in a cylinder powered by an electric motor are known. Electric braking devices are classified into wet-type electric braking devices that generate braking force by transmitting the pressure of the piston to a friction member via brake fluid, and dry-type electric braking devices that generate braking force by directly transmitting the pressure of the piston to a friction member.
[0003] In such electric braking devices, if the electric motor loses power due to a power failure or other reason while generating braking force, the piston is pushed back. The impact caused when the piston hits the end of its linear motion range within the cylinder can potentially damage the durability of the components of the electric braking device. In response to this, Patent Document 1 describes an electric braking device equipped with a clutch mechanism to protect the components from such impact. The clutch mechanism of the electric braking device in this document cuts off the power transmission path between the electric motor and the linear motion conversion mechanism when the piston is pushed back beyond a predetermined position within the cylinder. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] German Patent Application Publication No. 102018214188 Summary of the Invention [Problem to be solved by the invention]
[0005] Although it is possible to protect the components of the electric braking device from the impact by providing a clutch mechanism such as the one described above, such a clutch mechanism may not be feasible in some cases due to installation space requirements and component costs. [Means for solving the problem]
[0006] An electric braking device that solves the above problems transmits rotational motion generated by an electric motor to a linear motion conversion mechanism, which converts the rotational motion into linear motion that drives a piston provided in a cylinder, and generates braking force on the vehicle wheel by pressing a friction part that operates in response to the linear motion of the piston relative to a reference part against a frictioned part that rotates with the wheel.The electric braking device also includes an elastic part that is arranged between the reference part and a linear motion part or piston that moves linearly relative to the reference part in conjunction with the piston so that at least a part of the elastic part is included within the movable range of the linear motion part or piston, and that is compressed in response to the linear motion of the linear motion part in a direction that reduces the braking force, to generate a repulsive force that resists the compression.
[0007] In the electric braking device, the electric motor linearly moves the piston relative to a reference part, thereby actuating the friction part. This actuation presses the friction part against the frictioned part that rotates together with the wheel, thereby generating a braking force on the wheel. When pressed against the frictioned part, a reaction force against this pressing is applied to the friction part, and this reaction force is also transmitted to the piston. Therefore, if the electric motor loses power due to a power failure or the like while generating braking force, the piston is pushed back by the reaction force. In other words, the piston moves linearly in a direction that reduces the braking force. In the following explanation, the linear movement of the piston in a direction that reduces the braking force will be referred to as the retraction of the piston.
[0008] The friction portion of the electric braking device is compressed as the piston retracts, generating a repulsive force that resists the compression. This repulsive force reduces the retraction speed of the piston. Therefore, the electric braking device can mitigate the shock caused by a loss of power from the electric motor while a braking force is being generated. [Brief explanation of the drawings]
[0009] [Figure 1]1 is a cross-sectional view showing the configuration of an electric braking device of a first embodiment. [Figure 2] FIG. 10 is a cross-sectional view of a cylinder and its surrounding area in an electric braking device according to a second embodiment. [Figure 3] FIG. 10 is a cross-sectional view of a cylinder and its surrounding area in an electric braking device according to a third embodiment. [Figure 4] FIG. 10 is a cross-sectional view of a cylinder and its surrounding area in an electric braking device according to a fourth embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0010] (First embodiment) A first embodiment of an electric braking device will now be described with reference to Fig. 1. An electric braking device 10 of this embodiment is mounted on a vehicle and generates braking force on wheels 13 of the vehicle.
[0011] <Configuration of the electric braking device 10> As shown in FIG. 1 , an electric braking device 10 is connected to a reservoir tank 11 that stores brake fluid and a wheel cylinder 12 provided on a wheel 13. The electric braking device 10 generates hydraulic pressure in the wheel cylinder 12, thereby generating a braking force on the wheel 13. More specifically, the wheel cylinder 12 activates a brake shoe 12A in response to the generated hydraulic pressure. The wheel cylinder 12 then presses the brake shoe 12A against a brake disc 12B that rotates together with the wheel 13, thereby generating a braking force on the wheel 13. In this embodiment, the brake shoe 12A corresponds to the friction part. The brake disc 12B corresponds to the frictioned part that rotates together with the wheel 13.
[0012] The electric braking device 10 includes a cylinder mechanism 14, an electric motor 15, a linear motion conversion mechanism 16, and a rotation transmission mechanism 17. The rotation transmission mechanism 17 reduces the rotation of the electric motor 15 and transmits it to the linear motion conversion mechanism 16. The linear motion conversion mechanism 16 converts the rotational motion transmitted through the rotation transmission mechanism 17 into linear motion of a piston 19 housed in the cylinder mechanism 14. The cylinder mechanism 14, the electric motor 15, the linear motion conversion mechanism 16, and the rotation transmission mechanism 17 are housed in a housing 10A. The housing 10A is made up of multiple parts. The components of the housing 10A include a gear cover 10B that covers the rotation transmission mechanism 17.
[0013] The cylinder mechanism 14 has a cylinder 18 and a piston 19 arranged within the cylinder 18 so as to be capable of linear movement. Within the cylinder 18, a fluid chamber 20 into which brake fluid is introduced is defined by the piston 19. The volume of the fluid chamber 20 varies depending on the position to which the piston 19 moves within the cylinder 18. In the following description, movement of the piston 19 in a direction that reduces the volume of the fluid chamber 20 will be referred to as the advancement of the piston 19. Furthermore, movement of the piston 19 in a direction that increases the volume of the fluid chamber 20 will be referred to as the retreatment of the piston 19. Furthermore, of the directions of linear movement of the piston 19, the advancement side of the piston 19 will be referred to as the advancement direction F, and the retreatment side of the piston 19 will be referred to as the retreatment direction R.
[0014] The cylinder 18 is formed with two ports, an input port 21 and an output port 22, which communicate the fluid chamber 20 with the outside. The fluid chamber 20 is connected to the reservoir tank 11 via the input port 21. The fluid chamber 20 is also connected to the wheel cylinder 12 via the output port 22. The output port 22 remains in communication with the fluid chamber 20 regardless of the position of the piston 19 within the cylinder 18. On the other hand, when the piston 19 advances a certain amount or more from its most retracted position, the input port 21 is blocked from communication with the fluid chamber 20 by the piston 19. In the following description, the position of the piston 19 at which the input port 21 switches between a state in which it is in communication with the fluid chamber 20 and a state in which the piston 19 blocks that communication is referred to as the initial position.
[0015] The electric motor 15 has a rotor 23 and a stator 24. A motor shaft 25 is connected to the rotor 23 so that they rotate integrally. Meanwhile, the rotation transmission mechanism 17 has three spur gears: a first gear 26 fixed to the motor shaft 25, a second gear 27 meshed with the first gear 26, and a third gear 28 meshed with the second gear 27. The third gear 28 has a greater number of teeth than the first gear 26. The rotational motion of the electric motor 15 is input to the linear motion conversion mechanism 16 via the third gear 28.
[0016] The linear motion conversion mechanism 16 is a ball screw mechanism having a screw shaft 29 connected to the third gear 28 and a nut 30 connected to the piston 19. The linear motion conversion mechanism 16 converts the rotational motion input from the third gear 28 into linear motion that drives the piston 19. The nut 30 is formed with a stopper 30A that protrudes in the backward direction R. The end of the linear motion range of the piston 19 in the cylinder 18 in the backward direction R is the position where the stopper 30A of the nut 30 abuts against the third gear 28. In the following explanation, the position of the piston 19 where the stopper 30A of the nut 30 abuts against the third gear 28 will be referred to as the most backward position of the piston 19.
[0017] The electric braking device 10 further includes a coil spring 31. The coil spring 31 is disposed between the piston 19 and the screw shaft 29 so that the linear motion direction of the piston 19 coincides with the extension / contraction direction. The coil spring 31 is disposed within the movable range of the piston 19. Therefore, the coil spring 31 is compressed in response to the retraction of the piston 19 within the cylinder 18. In response to the compression, the coil spring 31 generates a repulsive force that resists the retraction of the piston 19.
[0018] <Effects of the embodiment> The operation and effects of this embodiment will be described. In the electric braking device 10 configured as described above, the rotary motion transmitted from the electric motor 15 is converted into linear motion by the linear motion conversion mechanism 16. The piston 19 receives this linear motion and moves forward within the cylinder 18, applying pressure to the brake fluid in the fluid chamber 20. This pressure then generates hydraulic pressure in the wheel cylinder 12. In response to the generated hydraulic pressure, the wheel cylinder 12 presses the brake shoe 12A against the brake disc 12B, thereby generating a braking force on the wheel 13.
[0019] While the piston 19 is generating a braking force, it is propelled in the forward direction F by the power of the electric motor 15, and is also pushed in the backward direction R by the hydraulic pressure in the hydraulic chamber 20. If the electric motor 15 loses power at this time due to a power failure or the like, the hydraulic pressure in the hydraulic chamber 20 will push the piston 19 back and move it backward. As a result, if the piston 19 moves backward to the most retracted position where the stopper 30A of the nut 30 abuts against the third gear 28, an impact will occur, which may reduce the durability of the components of the electric braking device 10.
[0020] In contrast, in the electric braking device 10 of this embodiment, a coil spring 31 is sandwiched between the piston 19 and the screw shaft 29. The coil spring 31 is compressed in response to the retraction of the piston 19, i.e., in response to the linear movement of the piston 19 in the direction that reduces the braking force, and generates a repulsive force that resists the compression. The repulsive force of the coil spring 31 then slows down the retraction speed of the piston 19. As a result, the speed at which the stopper 30A hits the third gear 28 at the most retracted position is reduced, and the impact of the collision is alleviated. Therefore, the electric braking device 10 of this embodiment can alleviate the impact caused by the power loss of the electric motor 15 while the braking force is being generated.
[0021] In this embodiment, the coil spring 31 corresponds to the elastic portion, and the screw shaft 29 corresponds to the reference portion. (Second embodiment) Next, a second embodiment of the electric braking device will be described with reference to Fig. 2. Fig. 2 shows a cross-sectional structure of the cylinder 18 and its surrounding area in the electric braking device of the second embodiment. Note that in this embodiment and in each embodiment described later, the same components as those in the above-described embodiment are designated by the same reference numerals, and detailed description thereof will be omitted.
[0022] As shown in Fig. 2, a through hole 33 is formed in the screw shaft 29 and the third gear 28 of the electric braking device of this embodiment, penetrating them in the axial direction. A coil spring 32 is disposed between the piston 19 and the gear cover 10B, passing through the through hole 33. A portion of the coil spring 32 is disposed within the movable range of the piston 19. The coil spring 32 is compressed as the piston 19 moves backward, and generates a repulsive force that resists the compression. Therefore, the coil spring 32 can also mitigate the impact caused by the power loss of the electric motor 15 while it is generating braking force.
[0023] In this embodiment, the gear cover 10B constituting the housing 10A of the electric braking device 10 serves as a reference part that receives the coil spring 32. If the repulsive force of the coil spring 32 is applied to a moving part such as the screw shaft 29 or the third gear 28, it may affect the operation of those parts. In this regard, in this embodiment, the reference part that receives the coil spring 32 is the gear cover 10B, which is a non-moving part. This reduces the effect of the repulsive force of the coil spring 32 on the operation of the electric braking device 10. In this embodiment, by providing through holes 33 in the screw shaft 29 and the third gear 28, it is possible to arrange the coil spring 32 using the gear cover 10B, which is located on the opposite side of the screw shaft 29 from the piston 19, as a reference part.
[0024] (Third embodiment) Next, a third embodiment of the electric braking device will be described with reference to Fig. 3. Fig. 3 shows a cross-sectional structure of a cylinder 18 and its surrounding area in the electric braking device of the third embodiment.
[0025] As shown in FIG. 3 , in the electric braking device of this embodiment, a coil spring 34 is sandwiched between the nut 30 and the third gear 28 and extends and contracts in the same direction as the linear motion of the piston 19. This coil spring 34 is disposed within the movable range of the nut 30. As a result, the coil spring 34 is compressed as the piston 19 moves backward, generating a repulsive force that opposes the backward movement of the piston 19. This coil spring 34 can also mitigate the impact caused by the power loss of the electric motor 15 while generating braking force. In this embodiment, the third gear 28, which is located on the opposite side of the nut 30 from the piston 19, corresponds to the reference part. Furthermore, the nut 30 corresponds to the linear-moving part that moves linearly relative to the reference part in conjunction with the piston 19.
[0026] (Fourth embodiment) Next, a fourth embodiment of the electric braking device will be described with reference to Fig. 4. Fig. 4 shows a cross-sectional structure of the cylinder 18 and its surrounding area in the electric braking device of the fourth embodiment. The linear motion conversion mechanism 16 of the electric braking device of this embodiment is configured so that the nut 30 moves linearly in response to the rotation of the screw shaft 29. That is, in this embodiment, the nut 30 is connected to the third gear 28 so as to rotate integrally therewith. Also, in this embodiment, the screw shaft 29 is connected to the piston 19 so as to move linearly integrally therewith.
[0027] As shown in Fig. 4, a through-hole 36 that penetrates in the linear motion direction of the piston 19 is formed in the third gear 28 of the electric braking device of this embodiment. A coil spring 35, whose extension direction is the linear motion direction of the piston 19, is installed between the screw shaft 29 and the gear cover 10B and stretches through the through-hole 36. A portion of this coil spring 35 is located within the movable range of the piston 19. Therefore, the coil spring 35 is compressed as the piston 19 moves backward, generating a repulsive force that opposes the backward motion of the piston 19. Therefore, this coil spring 35 can also mitigate the impact caused by the power loss of the electric motor 15 while it is generating braking force.
[0028] As in the second embodiment, in this embodiment, the reference part that receives the coil spring 35 is the gear cover 10B, which is a non-moving part. This reduces the effect that the repulsive force of the coil spring 35 has on the operation of the electric braking device 10. In this embodiment, by forming a through hole 36 in the third gear 28, it is possible to arrange the coil spring 35 with the gear cover 10B, which is located on the opposite side of the screw shaft 29 from the piston 19, as the reference part.
[0029] (Other embodiments) The above embodiment can be modified as follows: The above embodiment and the following modifications can be combined with each other within the scope of technical compatibility.
[0030] In the above embodiments, the coil springs 31, 32, 34, and 35 reduce the retraction speed of the piston 19, thereby mitigating the impact caused by the loss of power from the electric motor 15 while it is generating braking force. However, these coil springs may be replaced with other elastic members that generate elastic repulsive force in response to compression. Elastic members other than coil springs include leaf springs, disc springs, rubber springs, and air springs.
[0031] The elastic members may be disposed in locations other than the locations of the coil springs 31, 32, 34, and 35 in the above-described embodiments. In short, if the elastic members are sandwiched between a linearly moving component and a non-linearly moving component and are disposed so as to be compressed as the piston 19 moves backward, the repulsive force generated by the elastic members in response to compression reduces the backward speed of the piston 19. This makes it possible to mitigate the impact caused by the loss of power from the electric motor 15 while the piston 19 is generating a braking force for moving backward.
[0032] The configuration of the rotation transmission mechanism 17 that transmits the rotational motion of the electric motor 15 to the linear motion conversion mechanism 16 may be changed. Examples of the rotation transmission mechanism 17 other than those described above include a bevel gear mechanism, a planetary gear mechanism, and a winding transmission mechanism. Also, the rotation transmission mechanism 17 may be omitted, and the motor shaft 25 may be directly connected to the linear motion conversion mechanism 16.
[0033] The linear motion conversion mechanism 16 may be a mechanism other than a ball screw mechanism, such as a feed screw mechanism. The electric braking device in the above embodiment is configured as a so-called wet-type braking device, in which braking force is generated on the wheels 13 by transmitting the pressure of the piston 19 to the wheel cylinder 12 via brake fluid. However, the electric braking device may also be configured as a dry-type braking device, in which braking force is generated on the wheels by the piston directly applying pressure to a friction member such as a brake pad. Even in a dry-type electric braking device, if the electric motor loses power while generating braking force, the piston may retract due to the reaction force against the pressure, causing an impact. Therefore, even in a dry-type electric braking device, the impact can be mitigated by providing an elastic member that is compressed as the piston retracts, generating a repulsive force that opposes the retraction of the piston. [Explanation of symbols]
[0034] 10…Electric braking device 10A…Housing 10B...Gear cover 11...Reservoir tank 12...Wheel cylinder 12A...Brake shoe 12B...Brake disc 13...Wheel 14...Cylinder mechanism 15...Electric motor 16...Linear motion conversion mechanism 17...Rotation transmission mechanism 18...Cylinder 19...Piston 20…liquid chamber 21...input port 22...Output port 23...Rotor 24...Stator 25...Motor shaft 26...1st gear 27...Second gear 28...Third gear 29...Screw shaft 30...Nut 31, 32, 34, 35... Coil springs 33, 36...Through holes
Claims
1. An electric braking device that transmits rotational motion generated by an electric motor to a linear motion conversion mechanism, converts the rotational motion by the linear motion conversion mechanism into linear motion that drives a piston provided in a cylinder, and generates braking force on a wheel by pressing a friction part that operates in response to the linear motion of the piston relative to a reference part against a frictioned part that rotates together with the wheel of a vehicle, and an elastic part that is arranged between the reference part and a linear moving part or the piston that moves linearly relative to the reference part in conjunction with the piston so that at least a part of it is included within a movable range of the linear moving part or the piston, and that is compressed in accordance with the linear movement of the linear moving part in a direction that reduces the braking force, to generate a repulsive force that resists the compression. Electric braking device.
2. The linear motion conversion mechanism includes a screw shaft rotated by the electric motor and a nut that moves linearly in response to the rotation of the screw shaft, The elastic portion is disposed between the piston and the screw shaft serving as the reference portion. The electric braking device according to claim 1 .
3. The linear motion conversion mechanism includes a screw shaft rotated by the electric motor and a nut that moves linearly in response to the rotation of the screw shaft, The screw shaft has a through hole that penetrates in the axial direction, The reference portion is disposed on the opposite side of the screw shaft from the piston, The elastic portion is provided in the through hole and is disposed between the reference portion and the piston. The electric braking device according to claim 1 .
4. The linear motion conversion mechanism includes a screw shaft rotated by the electric motor and a nut that moves linearly in response to the rotation of the screw shaft, the reference portion is disposed on the opposite side of the nut from the piston, The elastic portion is disposed between the reference portion and the nut. The electric braking device according to claim 1 .
5. The linear motion conversion mechanism includes a nut rotated by the electric motor and a screw shaft that moves linearly in response to the rotation of the nut, The reference portion is disposed on the opposite side of the screw shaft from the piston, The elastic portion is disposed between the reference portion and the screw shaft. The electric braking device according to claim 1 .
Citation Information
Patent Citations
Electromechanical-hydraulic piston actuator and brake system
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Braking device
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Electric brake system
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