VIBRATION-PROOF BUSH
20230049995 · 2023-02-16
Assignee
Inventors
Cpc classification
F16F2230/0041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K17/24
PERFORMING OPERATIONS; TRANSPORTING
F16F15/124
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/3842
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/1217
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60K17/24
PERFORMING OPERATIONS; TRANSPORTING
F16F15/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vibration-proof bush capable of suppressing incomplete fitting of an upper bush and a lower bush. The vibration-proof bush includes an upper bush configured to be mounted on a vehicle body side and a lower bush configured to be fitted to the upper bush are provided, wherein the vibration-proof bush includes interference portions configured to interfere with each other in a process of fitting the lower bush to the upper bush, and the interference portions form a fitting-sound generation structure in which a sound is generated, when the lower bush is fitted to the upper bush during temporary assembling.
Claims
1. A vibration-proof bush provided in a center bearing support which supports a center bearing of a propeller shaft, comprising: an upper bush configured to be mounted on a vehicle body side; and a lower bush configured to be fitted to the upper bush, wherein the vibration-proof bush includes interference portions configured to interfere with each other in a process of fitting the lower bush to the upper bush, and the interference portions form a fitting-sound generation structure in which a sound is generated when the lower bush is fitted to the upper bush during temporary assembling.
2. The vibration-proof bush according to claim 1, wherein the interference portions have protrusions provided on both the upper bush and the lower bush, respectively, so that the protrusions are deformed by pressing each other in the process of fitting the lower bush to the upper bush during the temporary assembling, and the sound is generated by the protrusions returning to their original shapes when the fitting is completed.
3. The vibration-proof bush according to claim 2, wherein among the protrusions constituting the interference portion, the protrusion provided on either one of the upper bush and the lower bush has an annular protrusion, and the protrusions provided on the other has non-annular protrusions provided in plural at intervals in a circumferential direction.
4. The vibration-proof bush according to claim 3, wherein the upper bush has a first inner ring, a first outer ring provided concentrically with the first inner ring, and a first elastic body provided integrally with the first inner ring and the first outer ring, the lower bush has a second inner ring, a second outer ring provided concentrically with the second inner ring, and a second elastic body provided integrally with the second inner ring and the second outer ring; and an outer peripheral surface of the first elastic body and an inner peripheral surface of the second elastic body are configured to be fitted to each other, and the annular protrusion is provided on the outer peripheral surface of the first elastic body, and a plurality of the non-annular protrusions are provided on the inner peripheral surface of the second elastic body.
5. The vibration-proof bush according to claim 4, wherein the non-annular protrusion includes a first inclined surface in which a distance from a center axis of the lower bush increases as a distance from the upper bush increases, and a second inclined surface in which a distance from the center axis increases as a distance from the upper bush decreases, the second inclined surface being provided closer to the upper bush than the first inclined surface; and an inclination angle of the first inclined surface with respect to a plane perpendicular to the center axis is larger than an inclination angle of the second inclination surface with respect to the plane perpendicular to the center axis.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0023]
[0024]
[0025]
[0026]
DESCRIPTION OF EMBODIMENTS
[0027] Hereinafter, by referring to the drawings, an aspect for embodying the present disclosure will be described in detail exemplarily on the basis of an embodiment. However, dimensions, materials, shapes, relative dispositions, and the like of constituent components thereof described in this embodiment are not intended to limit a range of the present disclosure only to them unless otherwise particularly described specifically.
Embodiment
[0028] By referring to
[0029] Mounting of Center Bearing Support on Vehicle Body Side
[0030] By referring to
[0031] Vibration-Proof Bush
[0032] By referring to
[0033] The upper bush 110 has a first inner ring 111, a first outer ring 112 provided concentrically with the first inner ring 111, and a first elastic body 113 provided integrally with the first inner ring 111 and the first outer ring 112. The first inner ring 111 is an annular member constituted by metal or the like having a cylindrical portion 111a and an outward flange portion 111b provided on one end of the cylindrical portion 111a. The shaft portion 30 of the bolt is configured to be inserted inside the cylindrical portion 111a. The outward flange portion 111b is configured to abut against the body 20 of the vehicle. The first outer ring 112 is a flat-washer shaped member constituted by metal or the like. The first outer ring 112 allows the upper bush 110 to be stably supported by the bracket 12. The first elastic body 113 is constituted by an elastic body such as rubber. The first elastic body 113 includes an annular portion 113a exerting a vibration-proof function and an annular protrusion 113b provided on an outer peripheral surface of the annular portion 113a. The upper bush 110 integrally having the first inner ring 111, the first outer ring 112, and the first elastic body 113 can be obtained by performing insert molding by using the first inner ring 111 and the first outer ring 112 as insert components.
[0034] The lower bush 120 has a second inner ring 121, a second outer ring 122 provided concentrically with the second inner ring 121, and a second elastic body 123 provided integrally with the second inner ring 121 and the second outer ring 122. The second inner ring 121 is a flat-washer shaped member constituted by metal or the like. The shaft portion 30 of the bolt is configured to be inserted inside the second inner ring 121 (inside an inner peripheral surface 121a). The second outer ring 122 is a flat-washer shaped member constituted by metal or the like. The second outer ring 122 allows the lower bush 120 to be stably supported by the bracket 12. The second elastic body 123 is constituted by an elastic body such as rubber. The second elastic body 123 includes an annular portion 123a exerting the vibration-proof function and a plurality of non-annular protrusions 123b provided on an inner peripheral surface of the annular portion 123a. The plurality of non-annular protrusions 123b are provided at intervals in a circumferential direction. In this embodiment, four non-annular protrusions 123b are disposed at equal intervals. The lower bush 120 integrally having the second inner ring 121, the second outer ring 122, and the second elastic body 123 can be obtained by performing insert molding by using the second inner ring 121 and the second outer ring 122 as insert components.
[0035] The vibration-proof bush 100 according to the embodiment is configured such that the fitting is performed between the outer peripheral surface of the first elastic body 113 in the upper bush 110 and the inner peripheral surface of the second elastic body 123 in the lower bush 120. As described above, the annular protrusion 113b is provided on the outer peripheral surface of the first elastic body 113, and the plurality of non-annular protrusions 123b are provided on the inner peripheral surface of the second elastic body 123. The annular protrusion 113b provided on the first elastic body 113 and the plurality of non-annular protrusions 123b provided on the second elastic body 123 function as the interference portions which interfere with each other in the process in which the lower bush 120 is fitted to the upper bush 110.
[0036] This point will be described in detail by referring to
[0037] As described above, the interference portions constituted by the protrusions (the annular protrusion 113b and the plurality of non-annular protrusions 123b) provided on both the upper bush 110 and the lower bush 120, respectively, form the fitting-sound generation structure in which a sound is generated when the lower bush 120 is fitted to the upper bush 110. In regard to the annular protrusion 113b and the plurality of non-annular protrusions 123b, dimensional shapes, rigidity (materials of the first elastic body 113 and the second elastic body 123) and the number of the non-annular protrusions 123b and the like may be set as appropriate so that the sound is generated when the lower bush 120 is fitted to the upper bush 110 during temporary assembling.
[0038] The non-annular protrusion 123b in the lower bush 120 according to the embodiment includes a first inclined surface 123b1 and a second inclined surface 123b2 provided closer to the upper bush 110 than the first inclined surface 123b1. The first inclined surface 123b1 is configured to go away from the center axis of the lower bush 120 as it goes away from the upper bush 110. The second inclined surface 123b2 is configured to go away from the center axis of the lower bush 120 as it goes closer to the upper bush 110. An inclination angle α of the first inclined surface 123b1 with respect to a plane perpendicular to the center axis of the lower bush 120 is larger than an inclination angle β of the second inclined surface 123b2 with respect to the plane perpendicular to the center axis (see
[0039] Advantageous Points of Vibration-Proof Bush According to this Embodiment
[0040] According to the vibration-proof bush 100 according to the embodiment, since the interference portion forms the fitting-sound generation structure, when the lower bush 120 is fitted to the upper bush 110 during the temporary assembling, a sound is generated. This allows an operator to easily confirm that they are fitted. This suppresses incomplete fitting of the upper bush 110 and the lower bush 120. As a result, during an operation of mounting the center bearing support 10 on the vehicle body or the like, removal of the vibration-proof bush 100 from the bracket 12 of the center bearing support 10 can be suppressed. Therefore, operation performance can be improved.
[0041] The protrusion provided on the lower bush 120 for generating the fitting sound has a plurality of the non-annular protrusions 123b provided at intervals in the circumferential direction. Thus, a clearance is formed between the adjacent non-annular protrusions 123b, and the sound generated when the fitting is completed can be effectively propagated to the outside. Therefore, the operator can more reliably confirm that the upper bush 110 and the lower bush 120 are fitted to each other.
[0042] Since the inclination angle α of the first inclined surface 123b1 is larger than the inclination angle β of the second inclined surface 123b2, the following advantages can be obtained. That is, in the process in which the lower bush 120 is fitted to the upper bush 110, a large resisting force is generated when the non-annular protrusion 123b overrides the annular protrusion 113b and thus, at the moment of fitting, they can return to the original shapes like being strongly flipped. This generates a large sound. Furthermore, when a manufacturing method of insert molding of the lower bush 120 using a die (not shown) which opens in a vertical direction in
[0043] (Others)
[0044] The above-described embodiment illustrates the structure in which the annular protrusion 113b is provided on the upper bush 110, and the plurality of non-annular protrusions 123b are provided on the lower bush 120 at intervals in the circumferential direction. However, in the present disclosure, a plurality of non-annular protrusions may be provided on the upper bush at intervals in the circumferential direction, and an annular protrusion may be provided on the lower bush. This structure can achieves the same effect as that in the above-described embodiment.
REFERENCE SIGNS LIST
[0045] 10 Center bearing support [0046] 11 Center-bearing support main body [0047] 12 Bracket [0048] 12a Long hole [0049] 20 Body [0050] 21 Female screw [0051] 30 Shaft portion [0052] 100 Vibration-proof bush [0053] 110 Upper bush [0054] 111 Inner ring [0055] 111a Cylindrical portion [0056] 111b Outward flange portion [0057] 112 First outer ring [0058] 113 First elastic body [0059] 113a Annular portion [0060] 113b Annular protrusion [0061] 120 Lower bush [0062] 121 Second inner ring [0063] 121a Inner peripheral surface [0064] 122 Second outer ring [0065] 123a Annular portion [0066] 123b Non-annular protrusion