BUSHING ASSEMBLY FOR A SPRING BRAKE ACTUATOR OF A VEHICLE AIR BRAKING SYSTEM
20200040955 ยท 2020-02-06
Inventors
Cpc classification
F16D2125/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/38
PERFORMING OPERATIONS; TRANSPORTING
F16D2125/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2121/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/083
PERFORMING OPERATIONS; TRANSPORTING
International classification
F16D65/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A bushing assembly is provided for a spring brake actuator of a vehicle air braking system. The bushing assembly comprises a single-piece bushing member made of a material that is homogenous throughout the bushing member. The bushing member includes a first rib structure that faces one axial direction of the bushing member and a second rib structure that faces an opposite axial direction of the bushing member.
Claims
1. A bushing assembly for a spring brake actuator of a vehicle air braking system, the bushing assembly comprising: a single-piece bushing member made of a material that is homogenous throughout the bushing member, wherein the bushing member includes a first rib structure that faces one axial direction of the bushing member and a second rib structure that faces an opposite axial direction of the bushing member.
2. A bushing assembly according to claim 1, wherein (i) the first rib structure includes a first plurality of stiffening ribs disposed on one end of the bushing member, and (ii) the second rib structure includes a second plurality of stiffening ribs disposed on an opposite end of the bushing member.
3. A bushing assembly according to claim 2, wherein (i) the stiffening ribs of the first plurality of stiffening ribs are circumferentially spaced apart from each other on the one end of the bushing member, and (ii) the stiffening ribs of the second plurality of stiffening ribs are circumferentially spaced apart from each other on the opposite end of the bushing member.
4. A bushing assembly according to claim 3, wherein (i) each pair of adjacent ribs of the first plurality of stiffening ribs has a circumferential distance therebetween that is substantially the same, and (ii) each pair of adjacent ribs of the second plurality of stiffening ribs has a circumferential distance therebetween that is substantially the same.
5. A bushing assembly according to claim 1, wherein the first plurality of stiffening ribs and the second plurality of stiffening ribs are circumferentially offset from each other about a longitudinal central axis of the bushing member.
6. A bushing assembly according to claim 2, wherein each rib of the first and second plurality of stiffening ribs has a concave shape that curves inward toward center of the bushing member.
7. A bushing assembly according to claim 1, wherein the single-piece bushing member comprises a non-metallic material selected from one of plastic material, rubber material, and nylon material.
8. A subassembly comprising the bushing assembly of claim 1, an adapter base having an adapter plate, a diaphragm in contact with the adapter plate, and an adapter push rod secured to the adapter plate, wherein the single-piece bushing member is disposed between the adapter base and the adapter push rod.
9. A subassembly according to claim 8, wherein a surface of the adapter base is staked into or wedged against an outer circumferential edge of the single-piece bushing member.
10. A bushing assembly for a spring brake actuator of a vehicle air braking system, the bushing assembly comprising: a bushing member including a plurality of pairs of adjacent concave-shaped stiffening ribs that are circumferentially offset from each other about a longitudinal central axis of the bushing member.
11. A bushing assembly according to claim 10, wherein (i) at least one pair of the plurality of pairs of adjacent concave-shaped stiffening ribs is disposed on one end of the bushing member, and (ii) at least one pair of the plurality of pairs of adjacent concave-shaped stiffening ribs is disposed on an opposite end of the bushing member.
12. A bushing assembly according to claim 11, wherein (i) the at least one pair of the plurality of pairs of adjacent concave-shaped stiffening ribs that is disposed on the one end of the bushing member includes at least four pairs of adjacent concave-shaped stiffening ribs, and (ii) the at least one pair of the plurality of pairs of adjacent concave-shaped stiffening ribs that is disposed on the opposite end of the bushing member includes at least four pairs of adjacent concave-shaped stiffening ribs.
13. A bushing assembly according to claim 10, wherein the bushing member includes (i) an inner circumferential surface having at least one groove into which an O-ring can be inserted, and (ii) an outer circumferential surface having at least one groove into which an O-ring can be inserted.
14. A bushing assembly according to claim 13, further comprising: a first O-ring inserted into a first groove in the inner circumferential surface of the bushing member; a second O-ring inserted into a second groove in the inner circumferential surface of the bushing member; and a third O-ring inserted into a third groove in the outer circumferential surface of the bushing member.
15. A bushing assembly according to claim 10, wherein the bushing member includes an outer circumferential edge into which a surface of an adapter base of the spring brake actuator can be staked or wedged against.
16. A bushing assembly for a spring brake actuator of a vehicle air braking system, the bushing assembly comprising: a non-metallic bushing member including a first plurality of stiffening ribs disposed on one end of the bushing member, and a second plurality of stiffening ribs disposed on an opposite end of the bushing member, wherein (i) the stiffening ribs of the first plurality of stiffening ribs are circumferentially spaced apart from each other on the one end of the bushing member, (ii) the stiffening ribs of the second plurality of stiffening ribs are circumferentially spaced apart from each other on the opposite end of the bushing member, (iii) each pair of adjacent ribs of the first plurality of stiffening ribs has a circumferential distance therebetween that is substantially the same, (iv) each pair of adjacent ribs of the second plurality of stiffening ribs has a circumferential distance therebetween that is substantially the same, (v) the first plurality of stiffening ribs and the second plurality of stiffening ribs are circumferentially offset from each other about a longitudinal central axis of the bushing member, (vi) each rib of the first and second plurality of stiffening ribs has a concave shape that curves inward toward center of the bushing member, (vii) the bushing member includes an inner circumferential surface having at least one groove into which an O-ring can be inserted, and (viii) the bushing member includes an outer circumferential surface having at least one groove into which an O-ring can be inserted.
17. A subassembly comprising the bushing assembly of claim 16, an adapter base having an adapter plate, a diaphragm in contact with the adapter plate, and an adapter push rod secured to the adapter plate, wherein the non-metallic bushing member is disposed between the adapter base and the adapter push rod.
18. A subassembly according to claim 17, wherein a surface of the adapter base is staked into or wedged against an outer circumferential edge of the non-metallic bushing member.
19. A method of operating a bushing assembly for a spring brake actuator of a vehicle air braking system, the method comprising: linearly guiding a push rod of the spring brake actuator for axial movement of the push rod; and restricting articulation of the push rod during linear axial movement of the push rod by using a rib structure arrangement of the bushing assembly.
20. A method according to claim 19, wherein restricting articulation of the push rod during linear axial movement of the push rod by using a rib structure arrangement of the bushing assembly includes facing a rib structure of the bushing assembly along an axial direction of the push rod and facing another rib structure of the bushing assembly along an opposite axial direction of the push rod so that the rib structures can cooperate together to restrict articulation of the push rod during linear axial movement of the push rod.
21. A method according to claim 19, wherein restricting articulation of the push rod during linear axial movement of the push rod by using a rib structure arrangement of the bushing assembly includes circumferentially offsetting a plurality of pairs of adjacent stiffening ribs of the bushing assembly so that the stiffening ribs can cooperate together to restrict articulation of the push rod during linear axial movement of the push rod.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0021] Referring to
[0022] The spring brake actuator 100 further includes an adapter base 130 that interconnects the service brake housing 110 and the parking brake housing 120. One end of the adapter base 130 is clamped using a clamp band 132 to the service brake housing 110. A service diaphragm 116 is disposed between the adapter base 130 and the service brake housing 110. An opposite end of the adapter base 130 may be crimped using a crimp band 134 to the parking brake housing 120. Alternatively, the parts may be crimpled together. A parking diaphragm 128 is disposed between the adapter base 130 and the parking brake housing 120.
[0023] One end of an adapter push rod 136 engages the parking diaphragm 128. The adapter push rod 136 is disposed in the pressurized chamber portion 122 of the parking brake housing 120. The opposite end of the adapter push rod 136 is guided by the bushing assembly 150 through a center opening in the adapter base 130, and an adapter plate 138 engages the service diaphragm 116. The service push rod 118 is disposed in the non-pressurized chamber 112 of the service brake housing 110. The opposite end of the service push rod 118 has a yoke 140 that is connectable to an arm of a slack adjuster (not shown) using a clevis (also not shown).
[0024] When the pressure in the pressurized chamber portion 122 of the parking brake housing 120 drops, the biasing force of the power compression spring 126 in the non-pressurized chamber portion 124 of the parking brake housing 120 presses against the parking diaphragm 128 to push the adapter push rod 136. This causes the adapter push rod 136 to press against the service diaphragm 116 which, in turn, pushes the service push rod 118. The linear force from the adapter push rod 136 is transferred through the service diaphragm 116 to the service push rod 118 and thereby to the yoke 140 which is connectable to the arm of the slack adjuster. The slack adjuster converts the linear force into a torsional force. Structure and operation of the slack adjuster in cooperation with the spring brake actuator 100 are conventional and, therefore, will not be described.
[0025] Referring to
[0026] The subassembly 200 of
[0027] The bushing member 152 of the bushing assembly 150 is a single piece made of a material that is homogenous throughout the bushing member 152. The single-piece bushing member 152 has a longitudinal central axis 153, and comprises a non-metallic material. As an example, the non-metallic material of the single-piece bushing member 152 comprises plastic material. As another example, the non-metallic material of the single-piece bushing member 152 comprises rubber material. As yet another example, the non-metallic material of the single-piece bushing member 152 comprises nylon material. Other non-metallic materials are possible.
[0028] Referring to
[0029] The arrangement of ribs of the bushing assembly 150 comprises a first rib structure 170 (
[0030] More specifically, each pair of adjacent ribs of the first plurality of stiffening ribs 172 has a circumferential distance therebetween that is substantially the same (best shown in
[0031] The bushing member 152 includes an inner circumferential surface 156 (
[0032] It should be apparent that the outer circumferential edge 164 of the bushing member 152 is a fixed, rigid portion that supports and linearly guides the adapter push rod 136 for axial movement. At the same time, the ribs of the first and second plurality of stiffening ribs 172, 182 allows but also restricts articulation of the adapter push rod 136 during linear axial movement of the adapter push rod 136. Moreover, the double O-rings (i.e., the first O-ring 161 and the second O-ring 162) disposed in the first and second grooves 154, 155 on the inner circumferential surface 156 of the bushing member 152 provides a sealed joint that is a more robust seal between the pressurized chamber portion 122 of the parking brake housing 120 and the non-pressurized chamber 112 of the service brake housing 110.
[0033] It should also be apparent that the bushing member 152 of the bushing assembly 150 is made of a material that allows the sealed joint to be flexible. The flexibility of the sealed joint provides a more consistent seal between the pressurized chamber portion 122 of the parking brake housing 120 and the non-pressurized chamber 112 of the service brake housing 110.
[0034] Also, in the example embodiment shown in
[0035] Similarly, at least one pair of the plurality of pairs of adjacent concave-shaped stiffening ribs is disposed on an opposite end of the bushing member 152. The at least one pair of the plurality of pairs of adjacent concave-shaped stiffening ribs that is disposed on the opposite end of the bushing member 152 includes at least four pairs of adjacent concave-shaped stiffening ribs. Although four pairs of adjacent concave-shaped stiffening ribs are shown on each end of the bushing member 152, it is conceivable that any number of pairs of adjacent concave-shaped stiffening ribs be used.
[0036] It should further be apparent that the bushing member 152 in accordance with the above-described example embodiment is relatively easy to fabricate, and that the bushing assembly 150 is relatively easy to assemble. Moreover, the subassembly 200 comprising the bushing member 152 and other components is relatively easy to assemble.
[0037] Although the above description describes a surface of the adapter base 130 being staked into the outer circumferential edge 164 of the bushing member 152 to secure the bushing member 152 to the adapter base 130, it is conceivable that the bushing member 152 may be secured to the adapter base 130 in a different manner, such as shown in
[0038] Referring to
[0039] Also, although the above description describes the bushing assembly 150, 150a and the subassembly 200 being used in a heavy vehicle such as a truck, it is conceivable that the bushing assembly 150, 150a and the subassembly 200 may be used in other types of commercial vehicles, such as busses for example.
[0040] Referring to
[0041] In some embodiments, the restricting articulation of the push rod during linear axial movement of the push rod by using a rib structure arrangement of the bushing assembly includes facing a rib structure of the bushing assembly along an axial direction of the push rod and facing another rib structure of the bushing assembly along an opposite axial direction of the push rod so that the rib structures can cooperate together to restrict articulation of the push rod during linear axial movement of the push rod.
[0042] In some embodiments, the restricting articulation of the push rod during linear axial movement of the push rod by using a rib structure arrangement of the bushing assembly includes circumferentially offsetting a plurality of pairs of adjacent stiffening ribs of the bushing assembly so that the stiffening ribs can cooperate together to restrict articulation of the push rod during linear axial movement of the push rod.
[0043] While the present disclosure has been illustrated by the description of example processes and system components, and while the various processes and components have been described in detail, applicant does not intend to restrict or in any way limit the scope of the appended claims to such detail. Additional modifications will also readily appear to those skilled in the art. The disclosure in its broadest aspects is therefore not limited to the specific details, implementations, or illustrative examples shown and described. Accordingly, departures may be made from such details without departing from the spirit or scope of applicant's general concept.