VIBRATION-DAMPING DEVICE
20220307570 ยท 2022-09-29
Inventors
Cpc classification
F16F2230/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/3828
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A vibration-damping device includes a housing having a cylindrical mounting hole therein and a vibration-damping member provided in the mounting hole. The vibration-damping member includes an outer cylinder fitted into the mounting hole, an inner cylinder provided in the outer cylinder, and a rubber elastic body inserted between the outer cylinder and the inner cylinder. The rubber elastic body is formed with a bore penetrating in an axial direction thereof and a stopper protruding from a radially-inner wall surface thereof for the bore. The housing is formed with a receiving part which faces the stopper, in a radial direction of the mounting hole, across a gap.
Claims
1. A vibration-damping device comprising: a housing having a cylindrical mounting hole therein; and a vibration-damping member provided in the mounting hole, wherein the vibration-damping member includes: an outer cylinder fitted into the mounting hole; an inner cylinder provided in the outer cylinder; and a rubber elastic body inserted between the outer cylinder and the inner cylinder to elastically join the outer cylinder with the inner cylinder, the rubber elastic body is formed with: a bore penetrating in an axial direction thereof; and a stopper protruding from a radially-inner wall surface thereof for the bore, and the housing is formed with a receiving part which faces the stopper, in a radial direction of the mounting hole, across a gap.
2. The vibration-damping device as claimed in claim 1, wherein the outer cylinder has, in a circumferential wall thereof, a communication part which communicates with the bore, and the receiving part protrudes from an inner circumferential surface of the mounting hole so as to be inserted into the communication part.
3. The vibration-damping device as claimed in claim 2, wherein the communication part is formed from one edge to the other edge in an axial direction of the circumferential wall.
4. The vibration-damping device as claimed in claim 1, wherein the mounting hole has a bottom therein, and the receiving part protrudes from the bottom toward the rubber elastic body, so as to be inserted into the bore.
5. The vibration-damping device as claimed in claim 1, wherein the rubber elastic body is formed with a plurality of the stoppers, and the housing is formed with the receiving part facing at least one of the stoppers.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] A description is given of embodiments of the present disclosure in detail with reference to the drawings as appropriate.
[0023] Note that, in the description for each embodiment, the same member is denoted by the same sign, and duplicate descriptions are omitted.
[0024] In the following description, an up-down direction, a front-rear direction, and a right-left direction are set for convenience in describing a vibration-damping device of each embodiment, and are not intended to limit a configuration or usage of the vibration-damping device of the present disclosure.
First Embodiment
[0025] As shown in
[0026] The vibration-damping device 1A includes a housing 100 having a bottomed mounting hole 120 in a cylindrical shape and a vibration-damping member 2 arranged in the mounting hole 120.
[0027] The housing 100 is a metal member attached to the vehicle body frame F. The housing 100A has the cylindrical mounting hole 120 in the center thereof. As shown in
[0028] In the housing 100, a plurality of fastening parts 110 are formed around the mounting hole 120. The fastening parts 110 of the first embodiment are holes penetrating through the housing 100 in the up-down direction. Bolts inserted through the fastening parts 110 are screwed into threaded holes of the vehicle body frame F so that the housing 100 is fixed to the vehicle body frame F.
[0029] As shown in
[0030] As shown in
[0031] The right and left first receiving parts 123 are arranged in the circumferential direction of the mounting hole 120 at intervals of 180 degrees. The right and left first receiving parts 123 are formed symmetrically about the center of the mounting hole 120.
[0032] The outer cylinder 10 is a metal or resin cylindrical member. As shown in
[0033] As shown in
[0034] The communication parts 12 extend linearly along the axial direction of the outer cylinder 10 from the upper edge to the lower edge of the circumferential wall 11. The right and left communication parts 12 are formed in the circumferential wall 11 at intervals of 180 degrees. The outer cylinder 10 of the first embodiment is divided into front and rear halves by the right and left communication parts 12. That is, the outer cylinder 10 includes a pair of halved cylindrical members facing each other, having the communication parts 12 therebetween.
[0035] The width of the communication part 12 in the circumferential direction of the circumferential wall 11 is formed larger than that of the first receiving part 123 in the mounting hole 120. The right and left first receiving parts 123 are inserted into the right and left communication parts 12, respectively.
[0036] The inner cylinder 20 is a metal or resin cylindrical member. The inner cylinder 20 is arranged in the center of the outer cylinder 10. As shown in
[0037] As shown in
[0038] The inner circumference of the rubber elastic body 30 is vulcanization-bonded to the outer circumference of the inner cylinder 20, and the outer circumference of the rubber elastic body 30 is vulcanization-bonded to the inner circumference of the outer cylinder 10.
[0039] The rubber elastic body 30 has a pair of right and left first bores 40 penetrating therethrough in the axial direction, and a pair of front and rear second bores 50 penetrating therethrough in the axial direction.
[0040] The right and left first bores 40 are formed in the circumferential direction of the rubber elastic body 30 at intervals of 180 degrees. The front and rear second bores 50 are formed in the circumferential direction of the rubber elastic body 30 at intervals of 180 degrees. The first bore 40 and second bore 50 are formed in the circumferential direction of the rubber elastic body 30 at an interval of 90 degrees.
[0041] The first bores 40 are open on the outer circumferential surface of the rubber elastic body 30. That is, the first bores 40 are recesses formed in the outer circumference of the rubber elastic body 30. The first bores 40 communicate with the communication parts 12 of the outer cylinder 10.
[0042] First stoppers 41 are formed in the radially-inner wall surfaces of the first bores 40. The first stoppers 41 protrude outward from the radially-inner wall surfaces for the first bores 40. As shown in
[0043] As shown in
[0044] In the vibration-damping device 1A, when vibrations are inputted to the inner cylinder 20 and the rubber elastic body 30 is displaced, the first stoppers 41 of the rubber elastic body 30 come in contact with the first receiving parts 123 in the mounting hole 120, to restrict the displacement in the right-left direction of the rubber elastic body 30.
[0045] The second bores 50 are holes axially penetrating the rubber elastic body 30.
[0046] Second receiving parts 52 are formed in the radially-outer wall surfaces of the second bores 50. The second receiving parts 52 protrude inward from the radially-outer wall surfaces of the second bores 50. As shown in
[0047] As shown in
[0048] As shown in
[0049] In the vibration-damping device 1A, when vibrations are inputted to the inner cylinder 20 and the rubber elastic body 30 is displaced, the second stoppers 51 of the rubber elastic body 30 come in contact with the second receiving parts 52, to restrict the displacement in the front-rear direction of the rubber elastic body 30.
[0050] Note that, when the vibration-damping device 1A described above is manufactured, the outer cylinder 10 and inner cylinder 20 are placed in a mold, and rubber material is filled in the mold to form the vibration-damping member 2. Then, the vibration-damping member 2 is inserted into the mounting hole 120 of the housing 100 to complete manufacturing the vibration-damping device 1A.
[0051] As shown in
[0052] With the configuration, a size of a gap between the first stopper 41 and the first receiving part 123 is not restricted by a mold when the vibration-damping member 2 is molded using the mold.
[0053] Accordingly, in the vibration-damping device 1A of the first embodiment, the vibration-damping member 2 can be molded using a mold such that the gap between the first stopper 41 and the first receiving part 12 is small, to allow for precisely adjusting vibration-damping characteristics as required while preventing manufacturing costs from increasing.
[0054] Further, in the vibration-damping device 1A of the first embodiment, the first receiving parts 123 protrude from the inner circumferential surface of the mounting hole 120, to be formed in a simple shape, so that the mounting hole 120 is easily formed.
[0055] Still further, in the vibration-damping device 1A of the first embodiment, the communication parts 12 of the outer cylinder 10 are formed from the upper edge to the lower edge of the circumferential wall 11, to allow for elongating the first stoppers 41 and the first receiving parts 123 in the axial direction.
[0056] The first embodiment of the present disclosure has been described above, but the present disclosure is not limited thereto and can be modified as appropriate without departing from the gist thereof.
[0057] As shown in
[0058] Further, in the vibration-damping device 1A of the first embodiment, only the stoppers of the stoppers and receiving parts arranged at the front and rear may be formed in the rubber elastic body 30, and the receiving parts may be formed in the mounting hole 120, as with the first stoppers 41 and first receiving parts 123.
[0059] Still further, in the vibration-damping device 1A of the first embodiment, the communication parts 12 of the outer cylinder 10 are formed from the upper edge to the lower edge of the circumferential wall 11, but the shape thereof is not limited. For example, communication parts in a recessed shape may be formed to have the outer cylinder 10 recessed in the axial direction from the upper edge or lower edge of the outer cylinder 10. Also, communication parts may be formed in a hole shape penetrating the circumferential wall 11 of the outer cylinder 10.
[0060] The vibration-damping device 1A of the first embodiment is a damper mount which is arranged between the suspension S of a vehicle and the vehicle body frame F of the vehicle such as an automobile. However, an object for vibration damping, to which the vibration-damping device of the present disclosure is applied, is not limited. For example, an object for vibration damping may be a prime mover such as an engine and a motor, an inverter, or a battery, in addition to the vehicle body.
Second Embodiment
[0061] Next, a description is given of a vibration-damping device 1B according to a second embodiment.
[0062] As shown in
[0063] As shown in
[0064] The first bores 40 of the rubber elastic body 30 of the second embodiment are holes penetrating through the rubber elastic body 30 in the axial direction.
[0065] The first receiving parts 124, which protrude from the bottom 121 in the mounting hole 120 toward the rubber elastic body 3, are inserted into the first bores 40.
[0066] As shown in
[0067] In the vibration-damping device 1B of the second embodiment as described above, only the first stoppers 41 of the first stoppers 41 and first receiving parts 124 are formed in the rubber elastic body 30. Accordingly, the vibration-damping member 2 can be molded using a mold such that the gaps between the first stoppers 41 and first receiving parts 124 are small. Therefore, with the vibration-damping device 1B of the second embodiment, vibration-damping characteristics can be precisely adjusted in accordance with the required vehicle characteristics while manufacturing costs are prevented from increasing.
[0068] Further, the vibration-damping device 1B of the second embodiment does not need to have an opening in the circumferential wall 11 of the outer cylinder 10, to reduce processing costs for the outer cylinder 10.
[0069] The second embodiment of the present disclosure has been described above. However, the present disclosure is not limited to the second embodiment described above, and can be appropriately modified without departing from the gist thereof, as with the first embodiment described above.