VEHICLE BRAKE APPARATUS
20230146380 · 2023-05-11
Assignee
Inventors
Cpc classification
B60T8/171
PERFORMING OPERATIONS; TRANSPORTING
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/183
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/741
PERFORMING OPERATIONS; TRANSPORTING
G01L5/12
PHYSICS
F16D2125/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2121/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/22
PERFORMING OPERATIONS; TRANSPORTING
F16D66/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/746
PERFORMING OPERATIONS; TRANSPORTING
F16D2066/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D55/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60T13/74
PERFORMING OPERATIONS; TRANSPORTING
B60T17/22
PERFORMING OPERATIONS; TRANSPORTING
F16D66/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T8/171
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Proposed is a vehicle brake apparatus including a motor unit configured to generate motive power with received external electrical power, a driveline unit provided with a reduction gear unit that is rotated by drive of the motor unit and reduces the motive power of the motor unit and a bearing that supports rotation of the reduction gear unit, a cylinder unit configured to press a brake pad with the motive power received from the driveline unit, a load sensing unit configured to sense a load produced from axial force of the reduction gear unit, and a housing unit connected to the motor unit and having the driveline unit and the load sensing unit installed therein.
Claims
1. A vehicle brake apparatus comprising: a motor unit configured to generate motive power when supplied with electrical power; a driveline unit including (1) a reduction gear unit configured to be rotated by the motor unit and reduce the motive power of the motor unit, and (2) a bearing configured to support rotation of the reduction gear unit; a cylinder unit configured to press a brake pad with the motive power from the driveline unit; a load sensing unit configured to sense a load produced from an axial force of the reduction gear unit; and a housing unit connected to the motor unit and configured to house the driveline unit and the load sensing unit.
2. The vehicle brake apparatus of claim 1, further comprising a control unit configured to: receive, from the load sensing unit, sensing information indicative of the sensed load; and output, based on the sensing information, a braking force produced between the brake pad and a brake disc.
3. The vehicle brake apparatus of claim 2, wherein the reduction gear unit comprises: a first reduction gear engaged with a driving gear of the motor unit and configured to be rotated by a rotational force received from the driving gear; a second reduction gear connected to the first reduction gear and configured to receive a rotational force from the first reduction gear; a third reduction gear engaged with the second reduction gear and configured to receive a rotational force from the second reduction gear; a fourth reduction gear connected to the third reduction gear and configured to receive a rotational force from the third reduction gear; and a fifth reduction gear connected to the cylinder unit and supported by the bearing, wherein the load sensed by the load sensing unit includes a load produced from an axial force of the fifth reduction gear.
4. The vehicle brake apparatus of claim 3, wherein the fifth reduction gear comprises: a shaft connected to the cylinder unit and configured to contact the load sensing unit, wherein the bearing is disposed on the shaft; and a body connected to the shaft and engaged with the fourth reduction gear.
5. The vehicle brake apparatus of claim 4, wherein the load sensing unit comprises a load cell, is arranged in parallel to the bearing, and configured to contact the shaft.
6. The vehicle brake apparatus of claim 3, wherein the load sensing unit comprises: an elastic member configured to elastically support the bearing; a magnet disposed at the bearing and having a position varied by an elastic force of the elastic member; and a position sensor housed at the housing unit and configured to: sense a magnetic field of the magnet to determine the position of the magnet; and sense, based on the sensed position of the magnet, a load produced from an axial force of the fifth reduction gear.
7. The vehicle brake apparatus of claim 6, wherein the bearing comprises: a bearing inner ring surrounding a shaft of the fifth reduction gear; a bearing outer ring surrounding the bearing inner ring and elastically supported by the elastic member, wherein the magnet is disposed at the bearing outer ring; and a plurality of balls disposed between the bearing inner ring and the bearing outer ring.
8. The vehicle brake apparatus of claim 3, wherein the cylinder unit comprises: a screw bar connected to the fifth reduction gear and configured to pivot by a rotational force from the fifth reduction gear; a spindle surrounding the screw bar and configured to be rotated by a rotational force of the screw bar and move toward the brake pad; and a cylinder surrounding the spindle and configured to move in conjunction with the spindle and press the brake pad.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0032] Hereinafter, a vehicle brake apparatus will be described with reference to the accompanying drawings through various exemplary embodiments.
[0033] In such a process, for clarity and convenience in description, thicknesses of lines, sizes of constituent elements, and the like may be illustrated in an exaggerated manner in the drawings. Further, terms to be described hereinafter have been defined in consideration of functions in the disclosure, and may differ depending on a user or an operator's intention, or practice. Therefore, definitions of these terms should be stated in light of details disclosed throughout the present specification.
[0034]
[0035] Referring to
[0036] The motor unit 100 includes a motor main body 110, a motor shaft part 120, and a driving gear 130. The motive power is generated from the motor main body 110. The motor shaft part 120 is connected to the motor main body 110 and rotated by the motive power of the motor main body 110. The driving gear 130 is installed on the motor shaft part 120 and rotated in conjunction with the motor shaft part 120.
[0037] The driveline unit 200 is provided with a reduction gear unit 210 and a bearing 220. The reduction gear unit 210 is rotated by the drive of the motor unit 100 and reduces the motive power of the motor unit 100.
[0038] The bearing 220 supports the rotation of the reduction gear unit 210. In this case, the bearing 220 supports the rotation of a fifth reduction gear 215 of the reduction gear unit 210.
[0039] The cylinder unit 300 presses a brake pad 10 with the motive power received from the driveline unit 200. The cylinder unit 300 is connected to the reduction gear unit 210 of the driveline unit 200 but receives the reduced motive power from the reduction gear unit 210.
[0040] The cylinder unit 300 is installed in a caliper body 30 and includes a screw bar 310, a spindle 320, and a cylinder 330. The screw bar 310 is connected to the fifth reduction gear 215 of the reduction gear unit 210 and pivots with a rotational force received from the fifth reduction gear 215. The screw bar 310 is inserted into the spindle 320 described below in a rod shape and is provided with a male screw thread (not illustrated) formed on the outer side thereof.
[0041] The spindle 320 surrounds the screw bar 310 and is moved toward the brake pad 10 in a manner that is rotated by the rotational force of the screw bar 310. A female screw thread (not illustrated) is formed on the inner side of the spindle 320, and the female screw thread is engaged with the male screw thread of the screw bar 310 for being combined therewith.
[0042] Specifically, in a case where the screw bar 310 is rotated in a predetermined direction, the spindle 320 is moved toward the brake pad 10 in a manner that converts a rotary motion of the screw bar 310 into a straight line motion. Conversely, in a case where the screw bar 310 is rotated in an opposite direction from the predetermined direction, the spindle 320 is moved toward the opposite side of the brake pad 10.
[0043] The cylinder 330 surrounds the spindle 320 and presses the brake pad 10 in a manner that is moved in conjunction with the spindle 320. The cylinder 330 is, in a shape of surrounding the spindle 320, moved with the spindle 320 toward the brake pad 10 or toward the opposite side of the brake pad 10 by the pressurization of the spindle 320.
[0044] The load sensing unit 400 senses a load produced from an axial force of the reduction gear unit 210. The load sensing unit 400 may be mounted on the housing unit 500 in such a manner as to be in contact with the reduction gear unit 210 in an axial direction. In this case, the axial force is proportional to the braking force produced between the brake pad 10 and a brake disc 20.
[0045] The housing unit 500 is connected to the motor unit 100, and houses the driveline unit 200 and the load sensing unit 400. The housing unit 500 includes a first housing 510, a second housing 520, and a third housing 530. The first housing 510 is combined with the motor unit 100. The second housing 520 is combined with the first housing 510, and the driveline unit 200 and the load sensing unit 400 are installed therein. The third housing 530 is combined with the first housing 510.
[0046] A control unit 600 receives sensing information from the load sensing unit 400 and outputs the braking force produced between the brake pad 10 and the brake disc 20 based on the sensing information. Based on the sensing information received from the load sensing unit 400, the control unit 600 may output and show braking force on a display (not illustrated) in the form of a character or the like to be recognized by an operator, the braking force being produced between the brake pad 10 and the brake disc 20. The control unit 600 controls the operation of the motor unit 100.
[0047] The reduction gear unit 210 includes a first reduction gear 211, a second reduction gear 212, a third reduction gear 213, a fourth reduction gear 214, and the fifth reduction gear 215. The first reduction gear 211 is engaged with the driving gear 130 of the motor unit 100 for being combined therewith. The first reduction gear 211 is rotated with the rotational force received from the driving gear 130. The second reduction gear 212 is connected to the first reduction gear 211 and receives the rotational force from the first reduction gear 211. The third reduction gear 213 is engaged with the second reduction gear 212 for being combined therewith and receives the rotational force from the second reduction gear 212. The fourth reduction gear 214 is connected to the third reduction gear 213 and receives the rotational force from the third reduction gear 213. The fifth reduction gear 215 is connected to the cylinder unit 300 and is supported by the bearing 220 for being rotated. The load sensing unit 400 is mounted on the fifth reduction gear 215, and the load sensing unit 400 senses the load produced from the axial force of the fifth reduction gear 215.
[0048] The reduction gear unit 210 is illustrated with five gears including the first reduction gear 211, the second reduction gear 212, the third reduction gear 213, the fourth reduction gear 214, and the fifth reduction gear 215, but is not limited thereto. The number of gears thereof is changeable for different cases, e.g., three gears or the like.
[0049] In this case, the load sensing unit 400 may be arranged at any one of the gears constituting the reduction gear unit 210 in an axial direction. The load sensing unit 400 may be mounted on the gear of the reduction gear unit 210, which is connected to the screw bar 310 of the cylinder unit 300.
[0050] The fifth reduction gear 215 includes a shaft 215A and a fifth reduction gear body 215B. The shaft 215A is connected to the screw bar 310 of the cylinder unit 300, and the bearing 220 is disposed or mounted thereon.
[0051] The load sensing unit 400 senses the load produced from the axial force of the fifth reduction gear 215. The load sensing unit 400 includes a load cell, arranged in parallel to the bearing 220, and is in contact with the shaft 215A. Thus, the load sensing unit 400 may sense the load produced from the axial force of the fifth reduction gear 215.
[0052]
[0053] Hereinafter, the vehicle brake apparatus according to another embodiment of the present disclosure will be described. Detailed descriptions of another embodiment for the same contents as in the embodiment of the present disclosure are omitted.
[0054] Referring to
[0055] The magnet 420 is installed in the bearing 220, and the position of the magnet 420 is varied by an elastic force of the elastic member 410.
[0056] The position sensor 430 is installed in the housing unit 500, determines the position of the magnet 420 by sensing a magnetic field of the magnet 420, and senses the load according to the axial force of the fifth reduction gear 215 based on the position of the magnet 420.
[0057] The control unit 600 receives sensing information from the position sensor 430 of the load sensing unit 400 and outputs the braking force produced between the brake pad 10 and the brake disc 20 based on the sensing information. Based on the sensing information received from the position sensor 430 of the load sensing unit 400, the control unit 600 may output and show the braking force on a display (not illustrated) in the form of a character or the like to be recognized by an operator, the braking force being produced between the brake pad 10 and the brake disc 20.
[0058] The bearing 220 includes a bearing inner ring 221, a bearing outer ring 222, and a plurality of balls 223. The bearing inner ring 221 surrounds the shaft 215A of the fifth reduction gear 215. The bearing inner ring 221 supports the rotation of the fifth reduction gear 215. The bearing outer ring 222 surrounds the bearing inner ring 221, is provided with the magnet 420 installed therein, and is elastically supported by the elastic member 410. The plurality of balls 223 is disposed or arranged between the bearing inner ring 221 and the bearing outer ring 222.
[0059] In this way, the load sensing unit 400 is arranged on the reduction gear unit 210 in such a manner as to sense the load produced from the axial force of the reduction gear unit 210, and thus the weight of the load sensing unit 400 is reduced compared to the related art that applies the load sensing unit to the cylinder. That is, the weight of the load sensing unit is from 40 KN to 60 KN in the related art, whereas the weight of the load sensing unit 400 according to the present disclosure may be under 1 KN which is reduced by at least one fortieth from the weight in the related art.
[0060] As the weight of the load sensing unit 400 is reduced, the overall weight of the vehicle brake apparatus 1 can be reduced, and thus an automotive electronic component thereof can decrease, resulting in cost reduction in parts of the apparatus. Furthermore, even for various vehicle types, the weight change of the load sensing part 400 is less than in the related art, resulting in easier layout work in designing.
[0061] The present disclosure has been described with reference to the exemplary embodiments illustrated in the drawings, but this is only for illustrative purposes, and those skilled in the art will appreciate that various modifications and other equivalent exemplary embodiments are possible therefrom.
[0062] Thus, the true technical scope of the disclosure should be defined by the following claims.