vibration-damping material

The integration of a wave washer with a rubber elastic body on a vibration-damping member addresses the limitations of both components, ensuring efficient vibration absorption with minimal space and assembly effort, and improved durability.

JP7747545B2Active Publication Date: 2025-10-01NOK CORP
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Patent Information

Application Number
JP2022019462
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-10
Publication Date
2025-10-01
Estimated Expiration
2042-02-10

AI Technical Summary

Technical Problem

Existing vibration-damping members, such as wave washers and rubber elastic bodies, either lack sufficient damping properties or are prone to temperature-dependent deterioration, occupying excessive space and increasing assembly time when used together.

Method used

A vibration-damping member comprising a wave washer with a circular ring shape and alternating peaks and valleys, covered by a rubber elastic body on the valleys, providing elastic deformation to absorb vibrations while maintaining a compact size and reducing assembly steps.

Benefits of technology

The combined structure achieves effective vibration damping with reduced space occupation and assembly time, while minimizing temperature dependency and deterioration effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

To obtain a vibration suppression member which has a small occupied space and prevents increase of assembly work hours while having characteristics of a wave washer and rubber elastic bodies.SOLUTION: A vibration suppression member 101 has a combined structure of a wave washer 111 and elastic restriction bodies 151. The wave washer 111 is a metallic member having an annulus shape, which is wavy in an axial direction, along a circumferential direction. In the wavy shape, when the wave washer 111 is sandwiched between two members, multiple crest parts 112 which contact with the two members and multiple trough parts 113 which do not contact with the two members alternately appear. The elastic restriction bodies 151 are rubber members provided on front and rear surfaces of the trough parts 113 appearing in the wave washer 111 and have a role of restricting a compression deformation amount of the wave washer 111 and a role of elastically deforming in the axial direction and absorbing vibration. The elastic restriction bodies 151 may be integrally molded with a rubber cover body 131 covering the wave washer 111.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to a vibration damping member. [Background technology]

[0002] In a wide range of fields, including automobiles, electrical appliances, and housing equipment, vibration-damping materials are used between two components to absorb vibrations that occur between them and suppress their transmission. For example, in the automobile industry, if various components such as batteries, electronic boards, and auxiliary equipment are directly connected to the vehicle body, vibrations from the vehicle body are transmitted to those components, causing malfunctions. Therefore, various components are connected to the vehicle body via metal wave washers or rubber elastic bodies.

[0003] A vibration-damping member used to reduce vibration transmitted between two members, that is, to damp vibration, is disclosed in, for example, Patent Documents 1 and 2.

[0004] Patent Document 1 discloses a wave washer (23) used in a motor for an electric power steering device. The wave washer is attached so as to apply preload to a rolling bearing that rotatably supports a rotor shaft, and suppresses noise caused by vibrations from various directions (see paragraphs

[0004] and

[0007] and FIG. 4 of Patent Document 1).

[0005] Patent Document 2 discloses a vibration isolation device that is installed between an engine-side housing (2) of an outboard motor and a steering handle (3) that is rotatably connected to the engine-side housing. This vibration isolation device has a wave washer (7) interposed between two members on the steering handle side, and a rubber elastic body (8) interposed between the steering handle and the engine-side housing (see paragraphs

[0017] and

[0018] of Patent Document 2). [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2009-124785 [Patent Document 2] Japanese Patent Application Publication No. 11-210830 [Patent Document 3] Jikko No. 60-186856 [Patent Document 4] Japanese Patent Application Laid-Open No. 2002-257239 [Non-patent literature]

[0007] [Non-Patent Document 1] Yuya Noguchi and three others, "Rubber Deterioration Cases and Test Methods," Nissin Electric Technical Report, Nissin Electric Co., Ltd., October 2019, Vol. 64, No. 2, pp. 34-40 Summary of the Invention [Problem to be solved by the invention]

[0008] Wave washers do not have the damping properties of rubber elastic bodies. For this reason, when wave washers are used as vibration-damping members (see, for example, Patent Document 1), sufficient vibration-reducing effects cannot be obtained. In contrast, rubber elastic bodies have a damping effect, so when used as vibration-damping members, good vibration-reducing effects can be expected (see, for example, Patent Document 2).

[0009] On the other hand, rubber elastic bodies are temperature dependent and prone to deterioration over time. This means that they can deform due to environmental temperature and deterioration over time, making it difficult to achieve the desired characteristics. For examples of deterioration of rubber elastic bodies, please refer to Non-Patent Document 1.

[0010] Patent Document 3 discloses a configuration example in which a wave washer (23) and a rubber elastic body (rubber washer (22)) are stacked in a row (see Patent Document 3, page 10, line 16 to page 12, line 3, and Figure 2-4). It is expected that by using two types of elastic bodies in this way, the weaknesses of each can be compensated for. However, stacking a wave washer and a rubber elastic body in a row takes up a large amount of space, which increases the assembly man-hours. Improvements are needed.

[0011] Patent Document 4 discloses a gas seal that uses a disc spring (2) as a metal spring, in which a first rubber-like elastic body (3) is baked onto one side of the disc spring and a second rubber-like elastic body (4) is baked onto the other side (see paragraph

[0028] of Patent Document 4). However, this gas seal is intended to counter noise generated by engine vibrations being transmitted to the disc spring, and does not use the disc spring as a vibration-damping member like a wave washer. Rather, Patent Document 4 recognizes the disc spring as a source of vibration.

[0012] The object of the present disclosure is to obtain a vibration-damping member that combines the characteristics of both a wave washer and a rubber elastic body, while occupying a small space and not increasing the number of assembly steps. [Means for solving the problem]

[0013] One aspect of the vibration-damping member comprises a wave washer having a circular ring shape that undulates in the axial direction along the circumferential direction, and having alternating peaks that contact the two components when sandwiched between them and valleys that do not contact them, and an elastic regulating body made of rubber that is provided on the front and back surfaces of the valleys to determine the amount of compressive deformation of the wave washer and absorbs vibrations by elastic deformation in the axial direction. [Effects of the Invention]

[0014] It is possible to obtain a vibration-damping member that combines the properties of both a wave washer and a rubber elastic body, while occupying a small space and not increasing the number of assembly steps. [Brief explanation of the drawings]

[0015] [Figure 1] 1A and 1B are side views of a wave washer and a vibration damping member, respectively, showing an embodiment of the present invention. [Figure 2] (A) is a front view of the wave washer, and (B) is a front view of the vibration-damping member. [Figure 3]10A is a front view of a wave washer, and FIG. 10B is a front view of a vibration-damping member, showing another embodiment. [Figure 4] 1A is a longitudinal cross-sectional side view showing a vibration-damping member disposed between two members before being compressed and deformed, and FIG. 1B is a longitudinal cross-sectional side view showing a vibration-damping member sandwiched between two members and compressed and deformed. [Figure 5] This graph shows the relationship between the stroke (horizontal axis) when compressed and the load (vertical axis) generated at that time for three types of samples: a vibration-damping member, a wave washer (Comparative Example 1), and a rubber elastic body (Comparative Example 2). [Figure 6] Graph showing the temperature dependency and aging degradation of a vibration-damping member based on the relationship between the stroke (horizontal axis) when compressed and deformed and the load (vertical axis) generated at that time. [Figure 7] 1 is a graph showing the temperature dependency and aging deterioration of a rubber elastic body (Comparative Example 2) based on the relationship between the stroke (horizontal axis) when compressed and deformed and the load (vertical axis) generated at that time. [Figure 8] 6 is a graph illustrating a method for determining the stroke of a vibration-damping member so as to obtain a required load. [Figure 9] FIG. 10 is a front view showing another embodiment of a vibration damping member. [Figure 10] FIG. 10 is a front view showing yet another embodiment of a vibration damping member. DETAILED DESCRIPTION OF THE INVENTION

[0016] The embodiment will be described with reference to the drawings. The description will be made along the following items. 1. Configuration (1) Overview (2) Wave washer (3) Covering body (4) Elastic Regulator 2. Action and Effects (1) Usage (2) Vibration damping effect (3) Occupied space (4) Assembly man-hours (5) Temperature dependence (6) Deterioration over time (7) Stroke setting (8) Summary 3. Other embodiments and modifications (1) Another embodiment (2) Yet another embodiment (3) Variations

[0017] 1. Configuration (1) Overview This embodiment is an example of a vibration-damping member 101 that is sandwiched between two members 11 and mounted in a compressed state. One of the two members 11, member 11A, is, for example, the body of an automobile, and the other member 11B is a battery, electronic circuit board, or auxiliary equipment mounted on the body of the automobile. As another example, one of the two members 11, member 11A, is an electric fan attached to an indoor or outdoor unit of an air conditioner, and the other member 11B is a housing for the indoor or outdoor unit. In these two examples, one member 11A generates vibrations, and vibration-damping member 101 absorbs the generated vibrations and suppresses their transmission to the other member 11B.

[0018] As shown in Figures 1(A)(B) and 2(A)(B), the framework of the vibration damping member 101 is a wave washer 111. The vibration damping member 101 has the wave washer 111 covered with a rubber covering 131, and an elastic regulating body 151 provided integrally with the covering 131.

[0019] (2) Wave washer 1(A) and 2(A), wave washer 111 is a metal member having a circular ring shape centered on axis A, and is wavy in the axial direction (the direction of axis A) along the circumferential direction. The wavy shape creates peaks 112 and valleys 113 on the front and back surfaces of wave washer 111.

[0020] The peaks 112 are areas that come into contact with the two members 11 when the wave washer 111 is sandwiched between the two members 11 .

[0021] The valley portion 113 is located between two adjacent peak portions 112 and is a region that does not come into contact with the two members 11 when the wave washer 111 is sandwiched between the two members 11 .

[0022] The peaks 112 and the valleys 113 appear alternately along the circumferential direction of the wave washer 111. In this embodiment, six peaks 112 and six valleys 113 are provided.

[0023] (3) Covering body As shown in Figures 1(B) and 2(B), the wave washer 111 is entirely covered with a covering 131 (see also Figures 4(A) and (B)). The covering 131 is, for example, rubber that is vulcanized and bonded to the wave washer 111.

[0024] As an example, the covering 131 has a uniform thickness and covers the wave washer 111. Of course, it is not essential that the thickness of the covering 131 be uniform, and various modifications and changes are permitted, such as making the thickness of the portion covering the peaks 112 thicker than the portion covering the valleys 113.

[0025] The cover 131 of this embodiment has a thickness that allows it to absorb vibrations by elastic deformation in the axial direction (the direction of axis A). In other words, the cover 131 not only performs a protective function of protecting the wave washer 111 and the two members 11 that sandwich the wave washer 111, but also plays a role in performing a vibration-damping function. If the thickness of the cover 131 is not uniform, the thickness that allows it to absorb vibrations by elastic deformation in the axial direction is set to at least the region of the peak portions 112.

[0026] Due to the configuration in which wave washer 111 is covered with covering 131, vibration damping member 101 also has a wavy shape along peaks 112 and valleys 113. For ease of explanation, peaks 112 of wave washer 111 covered with covering 131 will be referred to as peaks 112R, and valleys 113 will be referred to as valleys 113R.

[0027] (4) Elastic Regulator Elastic regulating body 151, which is molded integrally with cover 131, is a cylindrical member provided on the front and back surfaces of valley portion 113 of wave washer 111. Elastic regulating body 151 is provided at the same axial position on the front and back surfaces of valley portion 113. Therefore, elastic regulating body 151 functions to regulate the amount of compressive deformation when wave washer 111 undergoes elastic deformation while sandwiched between two members 11. At this time, elastic regulating body 151 also has a vibration-damping function that absorbs vibrations by elastic deformation in the axial direction (direction of axis A).

[0028] 2(B), in this embodiment, elastic regulating bodies 151 are arranged in all of the valley portions 113. Therefore, when a pair of elastic regulating bodies 151 provided on the front and back surfaces at the same axial position of wave washer 111 is counted as one set, six sets (twelve pieces) of elastic regulating bodies 151 are provided, which matches the number of valley portions 113.

[0029] However, it is not essential that the elastic regulating bodies 151 be provided in all of the valleys 113. In practice, the elastic regulating bodies 151 may be provided in only some of the valleys 113.

[0030] However, due to the placement constraint of being placed in the valley portions 113 of the wave washer 111, the number of sets of elastic regulating bodies 151 to be placed depends on the number of valley portions 113 (valley portions 113R). For example, the example shown in Fig. 3 is a vibration damping member 101 mainly composed of a wave washer 111 provided with three peak portions 112 and three valley portions 113. The number of sets of elastic regulating bodies 151 provided in this vibration damping member 101 depends on the number of valley portions 113 (valley portions 113R), and is up to three sets (six).

[0031] 2. Action and Effects (1) Usage 4(A) and 4(B), the vibration-damping member 101 is disposed between one member 11A that generates vibration and another member 11B that is fixed to the member 11A, and is compressed and deformed by fastening these two members 11 together, and is interposed between the two members 11. At this time, the wave washer 111 of the vibration-damping member 101 is compressed in the axial direction and elastically deformed, and the cover 131 and the elastic regulating body 151 are also compressed in the axial direction and elastically deformed (see FIG. 4(B)).

[0032] Looking more closely, wave washer 111 is not completely crushed but is maintained in a state in which there is room for further deformation in the axial direction because the amount of compressive deformation is regulated by elastic regulating body 151. This also applies to cover 131 and elastic regulating body 151, which are also maintained in a state in which there is room for further deformation in the axial direction.

[0033] (2) Vibration damping effect When vibration occurs in one of the two members 11, member 11A, the vibration-damping member 101 exerts vibration-damping action through the wave washer 111 and vibration-damping action through the rubber elastic covering body 131 and elastic regulating body 151, thereby absorbing the vibration and suppressing its transmission.

[0034] Figure 5 is a graph showing the results of measuring the stroke and the load generated when three types of samples were prepared: the vibration-damping member 101 of this embodiment, a wave washer (Comparative Example 1), and a rubber elastic body (Comparative Example 2). The horizontal axis represents the stroke, and the vertical axis represents the load. In Figure 5, (1) shows the measurement results for the vibration-damping member 101 of this embodiment, (2) for the wave washer, and (3) for the rubber elastic body.

[0035] The wave washer sample used as Comparative Example 1 is the same as wave washer 111 that forms part of vibration damping member 101 of the present embodiment. The rubber elastic body sample used as Comparative Example 2 has approximately the same size as vibration damping member 101.

[0036] In Comparative Example 1, in which the wave washer was used alone, the load increased linearly as the stroke increased (see (2) in Figure 5). This is because the wave washer does not have damping properties like an elastic body made of rubber.

[0037] In the case of Comparative Example 2, which used a rubber elastic body alone, the load did not increase in the early stages of stroke increase, as it did with the wave washer. It was found that the load only increased gradually once the stroke had increased to a certain extent, eventually exceeding the load generated by the wave washer (see (3) in Figure 5). This increase curve is due to the nonlinearity of rubber.

[0038] Vibration damping member 101 of this embodiment has a combined structure of wave washer 111, rubber elastic covering body 131, and elastic regulating body 151. For this reason, in the initial stage of stroke increase, the characteristic of a linear increase in load, as seen in the wave washer of Comparative Example 1, appears as is. As the stroke increases, the characteristics of wave washer 111 are superimposed on the characteristics of rubber elastic covering body 131 and elastic regulating body 151, and the load increases in a curved line.

[0039] From the above results, when comparing the load at, for example, stroke S1 after the load of the rubber elastic body has risen, it was found that the vibration damping member 101 of this embodiment generates a larger load than comparison examples 1 and 2.

[0040] (3) Occupied space The vibration damping member 101 of this embodiment is provided with elastic regulating bodies 151 on the front and back surfaces of the valley portions 113 of the wave washer 111. Although the elastic regulating bodies 151 rise from the positions of the valley portions 113, they do not exceed the height of the peak portions 112 of the wave washer 111. Therefore, the increase in the thickness of the vibration damping member 101 relative to the thickness of the wave washer 111 is only an amount corresponding to the thickness of the covering body 131. Therefore, the vibration damping member 101 of this embodiment can occupy a smaller space than a vibration damping member in which a wave washer and a rubber elastic body are arranged axially (see Patent Document 3).

[0041] However, as another embodiment, a configuration in which elastic regulating body 151 exceeds the height of peaks 112 of wave washer 111 is also permitted. Even in this case, elastic regulating body 151 rises from the position of valleys 113 of wave washer 111 and therefore does not significantly exceed the height of peaks 112. Therefore, compared to a vibration damping member in which a wave washer and a rubber elastic body are arranged in the axial direction (see Patent Document 3), it is still possible to reduce the occupied space.

[0042] (4) Assembly man-hours The vibration damping member 101 of this embodiment is formed by integrally molding a wave washer 111, a covering body 131 which is a rubber elastic body, and an elastic regulating body 151. Therefore, compared to a vibration damping member in which a wave washer and a rubber elastic body are arranged in the axial direction (see Patent Document 3), the number of steps required for assembling between the two members 11 is reduced, and the workability of the assembly work can be improved.

[0043] (5) Temperature dependence The vibration damping member 101 of this embodiment has less temperature dependency than the vibration damping member made of only a rubber elastic body shown as Comparative Example 2 in the graph of Fig. 5. This will be explained using the graphs of Fig. 6 and Fig. 7.

[0044] Figure 6 is a graph showing the results of measurements of the stroke and the load generated when a new vibration-damping member 101 and a vibration-damping member 101 that has deteriorated over time are compressed and deformed at room temperature, high temperature, and low temperature. The horizontal axis represents the stroke, and the vertical axis represents the load. In Figure 6, the measurement results for the new vibration-damping member 101 at room temperature are indicated by NO, the measurement results for the high temperature by NH, and the measurement results for the low temperature by NL. The measurement results for the vibration-damping member 101 that has deteriorated over time are indicated by DO, the measurement results for the high temperature by DH, and the measurement results for the low temperature by DL.

[0045] Figure 7 is a graph showing the results of measurements of the stroke and the load generated when compressively deformed for new Comparative Example 2 and aged Comparative Example 2 at room temperature, high temperature, and low temperature. The horizontal axis represents the stroke, and the vertical axis represents the load. In Figure 7, the measurement results for new Comparative Example 2 at room temperature are indicated by NO, the measurement results for high temperature are indicated by NH, and the measurement results for low temperature are indicated by NL. The measurement results for aged Comparative Example 2 at room temperature are indicated by DO, the measurement results for high temperature are indicated by DH, and the measurement results for low temperature are indicated by DL.

[0046] Here, we focus on the load changes D1 and D2 when the temperature changes from low to high for the new vibration damping member 101 and Comparative Example 2. The load changes D1 and D2 here indicate how many times the load increases when the temperature drops to low, assuming that the load at high temperature is 1.

[0047] 6 and 7, it can be seen that the load change D2 in Comparative Example 2 was approximately 2.0 times, while the load change D1 in the vibration-damping member 101 was approximately 1.5 times. Therefore, the vibration-damping member 101 of this embodiment has lower temperature dependency than Comparative Example 2, making it possible to reduce the effect of environmental temperature on vibration-damping performance. As a result, a more stable vibration-damping action can be expected.

[0048] (6) Deterioration over time The vibration damping member 101 of this embodiment utilizes the covering body 131 and the elastic regulating body 151, which are made of rubber, as part of the vibration damping member. Therefore, as can be seen from the graph in Fig. 6, which compares the measurement results (NO, NH, NL) showing the load when new with the measurement results (DO, DH, DL) showing the load after deterioration over time, deterioration over time is inevitable. This is also the case with Comparative Example 2.

[0049] On the other hand, compared to Comparative Example 2 shown in Fig. 7, the vibration damping member 101 of this embodiment shown in Fig. 6 has the characteristic of maintaining a load equal to or greater than the target load (load L1 shown in Fig. 8) even after deterioration over time. Therefore, the vibration damping member 101 can satisfy the target load even after deterioration over time.

[0050] (7) Stroke setting The graph shown in FIG. 8 is the same as the graph shown in FIG. 6, but with an additional line added to indicate the relationship between the required load and the stroke at that time.

[0051] When mounting the vibration-damping member 101 between two members 11, a load that can provide an appropriate vibration-damping effect is required. For example, assuming that a load L1 is required for the vibration-damping member 101, as can be seen from the graph in Figure 8, the stroke of the vibration-damping member 101 mounted between the two members 11 is not uniform, but varies depending on the degree of deterioration and the ambient temperature.

[0052] On the other hand, the load generated by the vibration-damping member 101 is lowest when the individual member after aging is placed in a high-temperature environment. Therefore, the measurement result DH that produces the lowest generated load is selected, and the stroke S2 ​​corresponding to the required load L1 is obtained. By setting the stroke S2 ​​as the stroke of the vibration-damping member 101 to be attached between the two members 11, the vibration-damping member 101 will always be able to generate the required load L1, regardless of aging or the environmental temperature.

[0053] (8) Summary While wave washers have the advantage of being free from temperature dependency and deterioration over time, they lack damping, making it difficult to achieve a sufficient vibration-reducing effect. Rubber elastic bodies with damping provide a sufficient vibration-reducing effect, but are inevitably temperature dependent and deteriorate over time. As described above, the vibration-damping member 101 of this embodiment retains the advantages of wave washers and rubber elastic bodies, while eliminating their disadvantages through the mutual complementation of the wave washer 111, covering body 131, and elastic regulating body 151.

[0054] Therefore, the vibration-damping member 101 of this embodiment combines the excellent properties of both a wave washer and a rubber elastic body, while, as mentioned above, occupying a small space and not increasing the number of assembly steps.

[0055] 3. Other embodiments and modifications (1) Another embodiment Fig. 9 is a front view showing another embodiment of the vibration damping member 101. The same parts as those of the vibration damping member 101 explained based on Figs. 1 to 8 are designated by the same reference numerals, and explanations thereof will be omitted.

[0056] The vibration damping member 101 of this embodiment does not have a covering body 131, and the elastic regulating body 151 is directly fixed to the front and back surfaces of the valley portion 113 of the wave washer 111. The fixing of the elastic regulating body 151 to the front and back surfaces of the valley portion 113 can be achieved by any method, such as vulcanization adhesion or adhesion with an adhesive.

[0057] The vibration-damping member 101 configured in this manner exhibits the same effects as the vibration-damping member 101 described based on Figures 1 to 8, except that it does not provide the protective function of the covering body 131 for the two members 11 and the wave washer 111, nor the vibration-damping function provided by the covering body 131.

[0058] (2) Yet another embodiment Fig. 10 is a front view showing yet another embodiment of the vibration damping member 101. The same parts as those of the vibration damping member 101 explained based on Figs. 1 to 8 are designated by the same reference numerals, and explanations thereof will be omitted.

[0059] In the vibration damping member 101 of this embodiment, the covering body 131 is provided only on the peak portions 112 of the wave washer 111, and the covering body 131 is not provided on the valley portions 113. Due to this structure, the elastic regulating body 151 is directly fixed to the front and back surfaces of the valley portions 113 of the wave washer 111. Fixing of the elastic regulating body 151 to the front and back surfaces of the valley portions 113 can be achieved using any method, such as vulcanization adhesion or adhesion with an adhesive.

[0060] The vibration damping member 101 having such a configuration exhibits the same effects as the vibration damping member 101 described with reference to FIGS.

[0061] (3) Variations In this embodiment, several modifications have been introduced. In addition to these modifications, various modifications and changes are possible when implementing the present invention. [Explanation of symbols]

[0062] 11 Two parts 11A One of the members 11B Another member 101 Vibration-damping member 111 Wave washer 112 Yamabe 112R Yamabe 113 Valley 113R Tanibe 131 Covering 151 Elastic Regulator A-axis D1 Change D2 change amount L1 load S1 stroke S2 Stroke

Claims

1. a wave washer having a circular ring shape that is wavy in an axial direction along a circumferential direction, and having a plurality of peaks that contact the two members and a plurality of valleys that do not contact the two members when sandwiched between the two members; elastic restriction bodies made of rubber provided on the front and rear surfaces of the valley portions to regulate the amount of compressive deformation of the wave washer and to absorb vibrations by elastic deformation in the axial direction; A vibration damping member comprising:

2. A rubber covering is provided to cover the ridge portion. The vibration damping member according to claim 1 .

3. The covering absorbs vibrations by elastic deformation in the axial direction. The vibration damping member according to claim 2 .

4. The covering body covers the entire wave washer and integrally includes the elastic regulating body. The vibration damping member according to claim 2 or 3.

5. The elastic regulating body is vulcanization bonded to the wave washer. The vibration damping member according to claim 1 .

6. The covering is vulcanization bonded to the wave washer.

5. The vibration damping member according to claim 2.

Citation Information

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