Electromechanical brake system
10882503 ยท 2021-01-05
Assignee
Inventors
Cpc classification
F16D65/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2121/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/183
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/74
PERFORMING OPERATIONS; TRANSPORTING
B60T13/741
PERFORMING OPERATIONS; TRANSPORTING
F16D65/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D55/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/745
PERFORMING OPERATIONS; TRANSPORTING
F16H2025/2087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/74
PERFORMING OPERATIONS; TRANSPORTING
F16D65/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electromechanical brake system includes a linear motion mechanism configured to convert the rotation transmitted from the electric motor to a linear motion, thereby pressing a friction pad against a brake disk; a linear motion mechanism housing in which the linear motion mechanism is received as a single assembly with the components of the linear motion mechanism assembled together; and a caliper body shaped to extend across the outer periphery of the brake disk. The caliper body includes a claw portion axially supporting a friction pad; a housing-fixing plate which is arranged on the side of the linear motion mechanism housing opposite from the brake disk; and an outer shell portion through which the claw portion and the housing-fixing plate are coupled together.
Claims
1. An electromechanical brake system comprising: an electric motor; two friction pads axially opposed to each other through a brake disk; a linear motion mechanism including a rotary shaft to which rotation of the electric motor is transmitted, and an outer ring member, the linear motion mechanism being configured to convert rotation of the rotary shaft to a linear motion of the outer ring member, thereby pressing one of the two friction pads against the brake disk; a linear motion mechanism housing in which the linear motion mechanism is received as a single assembly with components of the linear motion mechanism assembled together; and a caliper body shaped to extend across an outer periphery of the brake disk, wherein the linear motion mechanism housing includes a tubular receiving portion in which the outer ring member is axially slidably received, and an end plate disposed at one end of the tubular receiving portion, the tubular receiving portion having an inner periphery on which a cylindrical sliding surface is formed, the cylindrical sliding surface axially slidably supporting the outer ring member, wherein the end plate has a hole through which the rotary shaft is inserted, wherein the caliper body comprises: a claw portion axially supporting the other of the two friction pads; a housing-fixing plate which is disposed on a side of the linear motion mechanism housing which is axially farthest from the brake disk, and to which the linear motion mechanism housing is detachably fixed such that the linear motion mechanism housing is dismountable from the housing-fixing plate in a direction radially inwardly of the brake disk, wherein the housing-fixing plate has a shaft inserting hole through which the rotary shaft is inserted; and an outer shell portion which is located radially outwardly of the brake disk, and through which the claw portion and the housing-fixing plate are coupled together, wherein the end plate has a contact surface configured to be brought into contact with the housing-fixing plate, the contact surface being formed with a circular annular step concentric with the rotary shaft, wherein the circular annular step is fitted on an inner periphery of the shaft inserting hole, the circular annular step having an axial height smaller than an axial thickness of the housing-fixing plate.
2. The electromechanical brake system according to claim 1, wherein the linear motion mechanism further comprises a linear motion member configured to move together with the one of the two friction pads; and a stretchable tubular boot having two ends, with one of the two ends connected to an inner periphery of the linear motion mechanism housing, and the other of the two ends connected to an outer periphery of the linear motion member, so as to prevent foreign matter from entering the linear motion mechanism housing.
3. The electromechanical brake system according to claim 1, further comprising a seal member arranged between the linear motion mechanism housing and the housing-fixing plate so as to prevent foreign matter from entering the linear motion mechanism housing.
4. The electromechanical brake system according to claim 1, wherein the linear motion mechanism housing is made of a material different from a material of the caliper body.
5. The electromechanical brake system according to claim 1, wherein the linear motion mechanism housing has a rotationally symmetrical shape.
6. The electromechanical brake system according to claim 1, wherein the linear motion mechanism is a planetary roller mechanism comprising: the outer ring member; planetary rollers configured such that due to the rotation of the electric motor, the planetary rollers revolve around the rotary shaft inside of the outer ring member, while rotating about respective axes of the planetary rollers; a helical rib on an inner periphery of the outer ring member; and a helical groove or circumferential grooves arranged in an outer periphery of each of the planetary rollers such that the helical rib is engaged in the helical groove or the circumferential grooves.
7. The electromechanical brake system according to claim 1, further comprising a reduction gear mechanism configured such that the rotation of the electric motor is reduced in speed, and transmitted to the linear motion mechanism by the reduction gear mechanism; and a reduction gear mechanism housing in which the reduction gear mechanism is received as a single assembly with components of the reduction gear mechanism assembled together, and which is detachably fixed to the housing-fixing plate.
8. The electromechanical brake system according to claim 7, wherein the linear motion mechanism housing and the reduction gear mechanism housing are arranged such that the housing-fixing plate is sandwiched between the linear motion mechanism housing and the reduction gear mechanism housing, and wherein the linear motion mechanism housing and the reduction gear mechanism housing are detachably tightened relative to each other by a tightening component, and fixed to the housing-fixing plate.
9. The electromechanical brake system according to claim 8, further comprising a seal member arranged between the linear motion mechanism housing and the housing-fixing plate so as to prevent foreign matter from entering the linear motion mechanism housing.
10. The electromechanical brake system according to claim 8, wherein the linear motion mechanism housing is made of a material different from a material of the caliper body.
11. The electromechanical brake system according to claim 8, wherein the linear motion mechanism housing has a rotationally symmetrical shape.
12. The electromechanical brake system according to claim 7, wherein the reduction gear mechanism comprises an output gear configured to output the rotation of the electric motor to the linear motion mechanism, wherein the rotary shaft is arranged coaxially with the output gear such that the rotation of the electric motor is input to the rotary shaft from the output gear, and wherein the electromechanical brake system further comprises first positioning fitted portions arranged between contact surfaces of the linear motion mechanism housing and the housing-fixing plate that are in contact with each other, and fitted to each other such that a center of the rotary shaft coincides with a center of the output gear.
13. The electromechanical brake system according to claim 12, wherein the linear motion mechanism housing and the reduction gear mechanism housing are arranged such that the housing-fixing plate is sandwiched between the linear motion mechanism housing and the reduction gear mechanism housing, and wherein the linear motion mechanism housing and the reduction gear mechanism housing are detachably tightened relative to each other by a tightening component, and fixed to the housing-fixing plate.
14. The electromechanical brake system according to claim 12, wherein the linear motion mechanism further comprises a linear motion member configured to move together with the one of the two friction pads; and a stretchable tubular boot having two ends, with one of the two ends connected to an inner periphery of the linear motion mechanism housing, and the other of the two ends connected to an outer periphery of the linear motion member, so as to prevent foreign matter from entering the linear motion mechanism housing.
15. The electromechanical brake system according to claim 12, further comprising a seal member arranged between the linear motion mechanism housing and the housing-fixing plate so as to prevent foreign matter from entering the linear motion mechanism housing.
16. The electromechanical brake system according to claim 12, wherein the linear motion mechanism housing is made of a material different from a material of the caliper body.
17. The electromechanical brake system according to claim 12, wherein the linear motion mechanism housing has a rotationally symmetrical shape.
18. The electromechanical brake system according to claim 12, wherein the linear motion mechanism is a planetary roller mechanism comprising: the outer ring member; planetary rollers configured such that due to the rotation of the electric motor, the planetary rollers revolve around the rotary shaft inside of the outer ring member, while rotating about respective axes of the planetary rollers; a helical rib on an inner periphery of the outer ring member; and a helical groove or circumferential grooves arranged in an outer periphery of each of the planetary rollers such that the helical rib is engaged in the helical groove or the circumferential grooves.
19. The electromechanical brake system according to claim 12, further comprising second positioning fitted portions arranged between contact surfaces of the reduction gear mechanism housing and the housing-fixing plate that are in contact with each other, and fitted to each other such that the center of the rotary shaft coincides with the center of the output gear.
20. The electromechanical brake system according to claim 19, wherein the linear motion mechanism housing and the reduction gear mechanism housing are arranged such that the housing-fixing plate is sandwiched between the linear motion mechanism housing and the reduction gear mechanism housing, and wherein the linear motion mechanism housing and the reduction gear mechanism housing are detachably tightened relative to each other by a tightening component, and fixed to the housing-fixing plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
BEST MODE FOR CARRYING OUT THE INVENTION
(9)
(10) The caliper body 7 includes a claw portion 7A and a housing-fixing plate 7B axially opposed to each other through the pair of friction pads 8 and 9; and an outer shell portion 7C which is located radially outwardly of the brake disk 6, and through which the claw portion 7A and the housing-fixing plate 7B are coupled together. The brake disk 6 is a disk-shaped member configured to rotate together with a wheel (not show). The caliper body 7 is axially movably supported, through a pair of slide pins 11 (see
(11) The claw portion 7A axially supports the surface of the friction pad 8 opposite from the surface thereof opposed to the brake disk 6. The housing-fixing plate 7B is a flat plate arranged on the side of the linear motion mechanism housing 4 opposite from, i.e., remoter from the brake disk 6, and extending parallel to the brake disk 6. The housing-fixing plate 7B is formed with a shaft inserting hole 13 through which the below-described rotary shaft 12 of the linear motion mechanism 3 is inserted.
(12) As illustrated in
(13) The carrier 16 includes a pair of disks 20 and 21 axially opposed to each other through the planetary rollers 15; coupling portions 22 through which the disks 20 and 21 are coupled together; and roller shafts 17 mounted to the centers of the respective planetary rollers 15, and supporting the respective planetary rollers 15 such that the planetary rollers 15 are rotatable about their axes. The disks 20 and 21 are annularly shaped such that the rotary shaft 12 extends through the disks 20 and 21. Sliding bearings 23 are mounted on the inner peripheries of the respective disks 20 and 21, along which the rotary shaft 12 extends, and are kept in sliding contact with the outer periphery of the rotary shaft 12. Each of the disks 20 and 21 has radially elongated insertion holes 35 through which the respective roller shafts 17 are inserted such that each roller shaft 17 is movable until the roller shaft 17 abuts against the ends of the corresponding insertion holes 35 of the disks 20 and 21. The roller shafts 17 are inwardly biased by radially elastically deformable elastic rings 36 each wrapped around the respective ends of the roller shafts 17.
(14) As a result thereof, each planetary roller 15 is also inwardly biased through sliding bearings 37 mounted between the roller shaft 17 and the planetary roller 15, and thus is kept in rolling contact with the outer periphery of the rotary shaft 12. The portion of the outer periphery of the rotary shaft 15 with which the planetary rollers 15 come into contact is a cylindrical surface. Therefore, when the rotary shaft 12 rotates, the planetary rollers 15 revolve around the rotary shaft 12, inside of the outer ring member 14, while rotating about the respective roller shafts 17.
(15) The outer ring member 14 has, on its inner periphery, a helical rib 18 having a predetermined lead angle, i.e., extending obliquely with respect to the circumferential direction. Each planetary roller 15 includes, in its outer periphery, a plurality of axially spaced apart circumferential grooves 19 in which the helical rib 18 is engaged. Instead of such circumferential grooves 19, i.e., grooves having a 0 degree lead angle, each planetary roller 15 may have a helical groove having a lead angle different from that of the helical rib 18.
(16) A thrust bearing 25 is mounted between each planetary roller 15 and the disk 21 so as to support the planetary roller 15 such that the planetary roller 15 is rotatable about its axis. An aligning seat 26 is mounted between each thrust bearing 25 and the disk 21 so as to support the corresponding planetary roller 15 through the thrust bearing 25 such that the planetary roller 15 is inclinable. Each aligning seat 26 comprises a pressure applying seat plate 27 provided with a convex spherical surface having a center on the center axis of the corresponding roller shaft 17; and a pressure receiving seat plate 28 provided with a concave surface slidably supporting the convex spherical surface of the pressure applying seat plate 27.
(17) A bearing supporting member 30 having a circular annular shape is mounted inside of the linear motion mechanism housing 4, on the side of the outer ring member 14 opposite from, i.e., remoter from the brake disk 6. Radial bearings 31 are mounted on the inner periphery of the bearing supporting member 30 so as to rotatably support the rotary shaft 12. Mounted between the bearing supporting member 30 and the carrier 16 are a spacer 32 configured to revolve around the rotary shaft 12 together with the carrier 16; and a thrust bearing 33 supporting the carrier 16 through the spacer 32 such that the carrier 16 can revolve around the rotary shaft 12.
(18) A seal cover 34 is mounted to the open end of the outer ring member 14 closer to the brake disk 6 (see
(19) As illustrated in
(20) As illustrated in
(21) As illustrated in
(22) As illustrated in
(23) As illustrated in
(24) Similarly, a circular annular step 58 concentric with the output shaft 41 is formed on the contact surface of the reduction gear mechanism housing 5 kept in contact with the housing-fixing plate 7B. The step 58 is fitted on the inner periphery of the shaft inserting hole 13 of the housing-fixing plate 7B, thereby positioning the reduction gear mechanism housing 5 with respect to the housing-fixing plate 7B such that the center of the rotary shaft 12 coincides with the center of the output gear 41. The step 58 of the reduction gear mechanism housing 5 and the shaft inserting hole 13 of the housing-fixing plate 7B constitute second positioning fitted portions fitted to each other such that the center of the rotary shaft 12 coincides with the center of the output gear 41.
(25) As illustrated in
(26) As illustrated in
(27) An engagement protrusion 64 is formed on the surface of the friction pad 9 on its back side, while an engagement recess 65 is formed in the end of the outer ring member 14 closer to the brake disk 6 such that the engagement protrusion 64 is engaged in the engagement recess 65, thereby rotationally fixing the outer member 14.
(28) In this embodiment, as illustrated in
(29) The outer shell portion 7C of the caliper body 7, which is located radially outwardly of the brake disk 6 (see
(30) The linear motion mechanism housing 4 is made of a material different from the material of the caliper body 7. For example, the caliper body 7 is made of cast iron, and the linear motion mechanism housing 4 is made of an aluminum alloy, which is more lightweight than cast iron. By using a material more lightweight than the material of the caliper body 7 for the linear motion mechanism housing 4, it is possible to reduce the overall weight of the electromechanical brake system.
(31) It is now described how the above-described electromechanical brake system operates.
(32) When the electric motor 1 (see
(33) When the rotation transmitted from the electric motor 1 is converted to the linear motion of the outer ring member 14 by the linear motion mechanism 3, and thus the friction pad 9 is pressed against the brake disk 6, an axial reaction force is applied to the linear motion mechanism 3, and is received by the housing-fixing plate 7B through the linear motion mechanism housing 4.
(34) In the electromechanical brake system of the present invention, since the linear motion mechanism 3 is received in the linear motion mechanism housing 4 with the components of the linear motion mechanism 3 assembled together, when the linear motion mechanism 3 needs to be detached from the caliper body 7 for maintenance, by removing the bolts 54, and detaching the linear motion mechanism housing 4 from the housing-fixing plate 7B, it is possible to detach and handle the linear motion mechanism 3 as a single assembly, and thus to easily perform maintenance.
(35) In the electromechanical brake system of the present invention, since the housing-fixing plate 7B, to which the linear motion mechanism housing 4 is detachably fixed, is arranged on the side of the linear motion mechanism housing 4 remoter from the brake disk 6, the housing-fixing plate 7B, which is a part of the caliper body 7, can receive the axial reaction force applied to the linear motion mechanism 3 when the liner motion mechanism 3 presses the friction pad 9 against the brake disk 6.
(36) Namely, the electromechanical brake system of the present invention is rigid enough to receive the axial reaction force applied to the linear motion mechanism 3 when the linear motion mechanism 3 presses the friction pad 9 against the bake disk 6, and also, the linear motion mechanism 3 can be detached as a single assembly. In this way, the electromechanical brake system is axially rigid, and also enables easy maintenance.
(37) In the electromechanical brake system of the present invention, since the reduction gear mechanism 2 is received in the reduction gear mechanism housing 5 with the components of the reduction gear mechanism 2 assembled together, when the reduction gear mechanism 2 needs to be detached from the caliper body 7 for maintenance, by removing the bolts 55, and detaching the reduction gear mechanism housing 5 from the housing-fixing plate 7B, it is possible to detach and handle the reduction gear mechanism 2 as a single assembly, and thus to easily perform maintenance.
(38) Since the electromechanical brake system of the present invention is configured such that the center of the rotary shaft 12 of the linear motion mechanism 3 coincides with the center of the output gear 41 of the reduction gear mechanism 2 by fitting the step 57 of the linear motion mechanism housing 4 onto the shaft inserting hole 13 of the housing-fixing plate 7B when mounting the linear motion mechanism housing 4 to the housing-fixing plate 7B, it is possible to easily mount the linear motion mechanism 3 in position, and to easily perform maintenance.
(39) Since the electromechanical brake system of the present invention is configured such that the center of the rotary shaft 12 of the linear motion mechanism 3 coincides with the center of the output gear 41 of the reduction gear mechanism 2 by fitting the step 58 of the reduction gear mechanism housing 5 onto the shaft inserting hole 13 of the housing-fixing plate 7B when mounting the reduction gear mechanism housing 5 to the housing-fixing plate 7B, it is possible to easily mount the reduction gear mechanism 2 in position, and to easily perform maintenance.
(40) In the electromechanical brake system of the present invention, since the linear motion mechanism housing 4 has a rotationally symmetrical shape as illustrated in
(41) In the electromechanical brake system of the present invention, since the sliding surface 52 for sliding the outer ring member 14 is formed on the linear motion mechanism housing 4, which can be detached from the caliper body 7, it is possible to easily form the sliding surface 52.
(42) Since the electromechanical brake system of the present invention is configured such that, with the linear motion mechanism 3 received in the linear motion mechanism housing 4, the linear motion mechanism housing 4 can be mounted to the caliper body 7 from radially inwardly of the brake disk 6, it is possible to design the shape of the claw portion 7A relatively freely, unlike the electromechanical brake system illustrated in FIG. 5 of Japanese Unexamined Patent Application Publication No. 2007-037305, in which the shape of the claw portion is limited. (That is, in this publication, since the linear motion mechanism has to be axially inserted from the side of the brake system where there is the claw portion, the claw portion has to be designed and shaped to prevent interference of the linear motion mechanism with the claw portion when the former is axially inserted into the caliper body.)
(43) If bolts 54 are used as tightening components for fixing the linear motion mechanism housing 4 to the housing-fixing plate 7B, the bolts 54 may be each any kind of bolt. While, in
(44) While, in
(45) While, in
(46) While, in
(47) While, in the above embodiment, the linear motion mechanism 3 is a planetary roller mechanism in which the outer ring member 14 axially moves when the planetary rollers 15 revolve around the rotary shaft 12, the linear motion mechanism 3 may be a planetary roller mechanism in which the carrier 16 axially moves when the planetary rollers 15 revolve around the rotary shaft 12.
(48) The above embodiment is merely an example in every respect, and the present invention is not limited to the above embodiment. Also, it should be understood that the scope of the present invention is indicated not by the above explanations but by the claims, and can include all modifications within the scope of the claims and the meaning equivalent to the scope of the claims.
DESCRIPTION OF REFERENCE NUMERALS
(49) 1: electric motor 2: reduction gear mechanism 3: linear motion mechanism 4: linear motion mechanism housing 5: reduction gear mechanism housing 6: brake disk 7: caliper body 7A: claw portion 7B: housing-fixing plate 7C: outer shell portion 8, 9: friction pad 12: rotary shaft 13: shaft inserting hole 14: outer ring member 15: planetary roller 18: helical rib 19: circumferential groove 41: output gear 54: bolt 57: step 58: step 59: seal member 61: boot