Brake boosting device
10300893 ยท 2019-05-28
Assignee
Inventors
Cpc classification
F16F2230/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/00
PERFORMING OPERATIONS; TRANSPORTING
F16F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/221
PERFORMING OPERATIONS; TRANSPORTING
F16F1/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T11/18
PERFORMING OPERATIONS; TRANSPORTING
F16J3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J3/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/22
PERFORMING OPERATIONS; TRANSPORTING
B60T11/18
PERFORMING OPERATIONS; TRANSPORTING
F16F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/00
PERFORMING OPERATIONS; TRANSPORTING
F16F1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A brake boosting device wherein a vibration control member is provided to an end part of a return coil spring that is arranged inside a vehicle chamber and that is interposed between a booster body and an input rod. The vibration control member has provided thereto: a seat part that suppresses the vibration of the return coil spring and that is between the end part of the return coil spring and a support part that supports the end part; and a guide part that is provided integrally with the seat part and that fits with the inner periphery of the end part of the return coil spring at a prescribed radial tightening allowance.
Claims
1. A brake boosting device, wherein a vibration control member is provided at an end part of a return coil spring interposed between a booster body and an input rod, the return coil spring being disposed in a vehicle interior, the vibration control member is provided with a seat part interposed between the end part of the return coil spring and a support part supporting the end part, the seat part suppressing vibrations of the return coil spring, and a guide part disposed integrally with the seat part, the guide part being fitted to an inner periphery or an outer periphery of the end part of the return coil spring via a predetermined radial tightening allowance, the vibration control member being integral with a first end part of a boot, the boot extending in an axial direction and being disposed between the booster body and the input rod, the first end part of the boot being closer to the booster body than to the input rod, the boot including a second end part at an end of the boot opposite the first end part, the boot also including a bellows part positioned between the first end part and the second end part of the boot, the first end part of the boot comprising a guide part, the guide part of the first end part of the boot comprising a cylindrical base part and a plurality of projections, the cylindrical base part being supported on the support part which is a cylindrical support part of the booster body, the cylindrical base part possessing an outer periphery and an inner periphery, the plurality of projections being provided on the cylindrical base part that is supported on the cylindrical support part of the booster body, the plurality of projections extending in the axial direction and being spaced apart from one another in a circumferential direction of the cylindrical base part, the plurality of projections being located on the inner peripheral surface of the cylindrical base part or the outer peripheral surface of the cylindrical base part, and the plurality of projections including three or more outer peripheral projections provided at regular intervals in the circumferential direction on the outer periphery of the cylindrical base part and three or more inner peripheral projections provided at regular intervals in the circumferential direction on the inner periphery of the cylindrical base part, and the outer peripheral projections and the inner peripheral projections are alternately disposed with a phase difference in the circumferential direction.
2. The brake boosting device according to claim 1, wherein the plurality of projections are arc-shaped projections, the plurality of arc-shaped projections being fitted to the inner periphery or the outer periphery of the end part of the return coil spring via the predetermined radial tightening allowance.
3. The brake boosting device according to claim 2, wherein a connection portion between the seat part and the guide part is provided with an annular recess part in which is positioned the end part of the return coil spring.
4. The brake boosting device according to claim 1, wherein a connection portion between the seat part and the guide part is provided with an annular recess part configured to house the end part of the return coil spring.
5. The brake boosting device according to claim 1, wherein the outer peripheral projections are fitted into the inner periphery of the end part of the return coil spring via the predetermined radial tightening allowance.
6. The brake boosting device according to claim 1, wherein the inner peripheral projections elastically engage an outer periphery of the cylindrical support part of the booster body.
7. A brake boosting device for a vehicle comprising a booster body that includes a cylindrical support part, an input rod operatively connected to the booster body, a spring retainer connected to the input rod, a boot extending in an axial direction between the booster body and the input rod, a return coil spring disposed in an interior of the vehicle and including first and second end parts, a first vibration control member, and a second vibration control member; the first vibration control member being made of vibration control material and comprising a seat part to suppress vibration of the return coil spring and a guide part disposed integrally with the seat part, the guide part being fitted to an inner periphery or an outer periphery of the end part of the return coil spring via a predetermined radial tightening allowance; the second vibration control member being an end part of the boot, the end part of the boot constituting the second vibration control member comprising a seat part and a guide part integral with one another, the seat part of the second vibration control member being interposed between the second end part of the return coil spring and an end part of the booster body, the guide part of the second vibration control member comprising a cylindrical base part that is supported on the cylindrical support part of the booster body; and the guide part of the second vibration control member comprising at least three outer peripheral projections provided at regular intervals in a circumferential direction on an outer periphery of the cylindrical base part and at least three inner peripheral projections provided at regular intervals in the circumferential direction on an inner periphery of the cylindrical base part, and the outer peripheral projections and the inner circumferential direction.
8. The brake boosting device according to claim 7, wherein the inner peripheral projections elastically engage an outer periphery of the cylindrical support part of the booster body.
9. The brake boosting device according to claim 7, wherein the outer peripheral projections elastically engage an inner periphery of the second end part of the return spring.
10. The brake boosting device according to claim 7, further comprising a connection portion between the seat part and the guide part of the second vibration control member, the connection portion including an annular recess in which is positioned the second end part of the return coil spring.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(9) Embodiments of the invention will be described below with reference to the drawings.
(10) The booster body 10 is configured so as to be assembled to a dash panel (not illustrated) and a rear end part 10a is disposed in a vehicle interior. The input rod 20 is provided in the booster body 10 so as to be movable forward and backward, coupled to a rear end part 11a of a plunger 11 at a spherical end part 21, and coupled to a middle part 51 of a brake pedal lever 50 at a rear end part 22 so as to be tiltable. The plunger 11 assembled to the booster body 10 so as to be movable forward and backward. In addition, the brake pedal lever 50 is assembled to a pedal bracket 59 so as to be tiltable in a front-rear direction at an upper end part 52, and a brake pedal 54 is assembled integrally with a lower end part 53.
(11) The return coil spring 30 is disposed in the vehicle interior, engaged with the booster body 10 via a seat part 41 of the boot 40 at a front end part 31, and engaged with a retainer 28 via an annular vibration control material 29 at a rear end part 32. The retainer 28 is formed in a disc shape and assembled integrally with the middle part of the input rod 20 at the inner periphery part. The vibration control material 29 includes an annular seat part 29a, interposed between the rear end part 32 of the return coil spring 30 and the retainer 28, that suppresses vibrations of the return coil spring 30 and a cylindrical guide part 29b, disposed integrally with the seat part 29a, that is engaged with the inner periphery of the rear end part of the return coil spring 30 via a predetermined radial tightening allowance. The inner periphery of the guide part 29b is provided with inner peripheral projections (configured as in inner peripheral projections 42b described later) to be elastically engaged with the outer periphery of the retainer 28 and the outer periphery of the guide part 29b is provided with outer peripheral projections (configured as in outer peripheral projections 42c described later) to be fitted to the inner periphery of the rear end part of the return coil spring 30 via a predetermined radial tightening allowance.
(12) The boot 40 covers and protects the outer periphery of the plunger 11 and formed in a cylindrical shape using an elastic member such as rubber, the seat part 41 and a guide part 42 are integrally formed in the front end part to be assembled to a cylindrical support part 10a1 formed in the rear end part 10a of the booster body 10, and an annular mounting part 43 is formed integrally with the rear end part to be assembled to a neck part 23 of the input rod 20. The seat part 41 and the guide part 42 constitute a vibration control member A provided in the front end part 31 of the return coil spring 30, the seat part 41 extends radially outward at the front end of the guide part 42 and is formed in a circular shape, and the guide part 42 is formed in a cylindrical shape.
(13) In addition, the seat part 41 is interposed in the front-rear direction between the front end part 31 of the return coil spring 30 and the cylindrical support part 10a1 supporting the front end part 31 and functions to suppress vibrations of the return coil spring 30. In contrast, the guide part 42 is fitted to the inner periphery of the front end part 31 of the return coil spring 30 via a predetermined radial tightening allowance and has the function of suppressing lateral vibrations (vibrations in the up-down direction in the drawing) of the return coil spring 30.
(14) By the way, in the embodiment, the guide part 42 includes a cylindrical base part 42a, the four inner peripheral projections 42b provided in the circumferential direction at regular intervals (at intervals of 90 degrees) on the inner periphery of the cylindrical base part 42a, the four outer peripheral projections 42c provided in the circumferential direction at regular intervals (at intervals of 90 degrees) on the outer periphery of the cylindrical base part 42a. The outer peripheral projections 42c and the inner peripheral projections 42b are alternately disposed with a phase difference (a phase difference of 45 degrees) in the circumferential direction (see
(15) In the brake boosting device 100 according to the first embodiment configured as described above, the vibration control member A is provided so as to correspond to the front end part 31 of the return coil spring 30 disposed in the vehicle interior and the vibration control member A is provided with the seat part 41, interposed between the front end part 31 of the return coil spring 30 and a cylindrical support part 11a1 supporting the front end part 31, that suppresses vibrations of the return coil spring 30 and the guide part 42, disposed integrally with the seat part 41, that is fitted to the inner periphery of the front end part of the return coil spring 30 via a predetermined radial tightening allowance. Therefore, the vibrations of the front end part 31 itself in the return coil spring 30 can be suppressed by the guide part 42. In addition, transfer of vibrations from the front end part 31 of the return coil spring 30 to the rear end part 10a of the booster body 10 can be reduced by the seat part 41. In addition, since the vibration control material 29 is provided so as to correspond to the rear end part 32 of the return coil spring 30, the same effects as in the above vibration control member A can also be obtained by the vibration control material 29. Accordingly, occurrence of abnormal noise caused by vibrations of the return coil spring 30 can be prevented.
(16) In addition, in the brake boosting device 100 according to the first embodiment, the vibration control member A is disposed integrally with the end part of the boot 40 installed between the booster body 10 and the input rod 20, the end part being close to the booster body. Therefore, the number of components can be reduced and simplicity and cost reduction can be achieved as compared with the case in which the vibration control member A is configured separately from the boot 40. In addition, in the first embodiment, since the seat part 41 of the vibration control member A is provided in the front end part of the boot 40, the sealing performance of the front end surface of the boot can be improved.
(17) In addition, in the brake boosting device 100 according to the above first embodiment, the support part 10a1 supporting the end part (front end part) of the boot 40 close to the booster body is formed in a cylindrical shape, the guide part 42 supported by the support part 10a1 is provided with the four outer peripheral projections 42c provided at regular intervals in the circumferential direction on the outer periphery of the cylindrical base part 42a and the four inner peripheral projections 42b provided at regular intervals in the circumferential direction on the inner periphery of the cylindrical base part 42a, and the outer peripheral projections 42c and the inner peripheral projections 42b are alternately disposed with a phase difference in the circumferential direction.
(18) Therefore, the centering of the boot 40 with respect to the support part 10a1 (the booster body 10) can be performed using the inner peripheral projections 42b and the assemblability of the boot 40 to the support part 10a1 can be improved. In addition, in the embodiment, the inner peripheral projections 42b allow the outer peripheral projections 42c to move radially inward. Therefore, when the return coil spring 30 is tilted as the input rod 20 is tilted (the case illustrated in
(19) Although the four inner peripheral projections 42b and the four outer peripheral projections 42c of the guide part 42 are provided in the first embodiment above, the number of the inner peripheral projections 42b and the number of the four outer peripheral projections 42c may be changed as appropriate as long as they are three or more. In addition, in the first embodiment described above, since the input rod 20 is tilted as illustrated in
(20) In addition, in the first embodiment described above, although the invention is embodied to have a structure in which the seat part 41 and the guide part 42 are included in the vibration control member A provided so as to correspond to the front end part 31 of the return coil spring 30 disposed in the vehicle interior, the invention may be embodied to have a structure in which a seat part 141 and a guide part 142 are included in the vibration control member A as in a third embodiment illustrated in
(21) Although the vibration control member A is disposed integrally with the end part of the boot 40 (close to the booster body) installed between the booster body 10 and the input rod 20 in the above embodiments, the invention may be embodied so that the vibration control member A is provided separately from the boot 40 as in, for example, the vibration control material 29 illustrated in