Dynamic damper
11105391 ยท 2021-08-31
Assignee
Inventors
Cpc classification
F16F2228/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/1442
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2055/366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A dynamic damper includes a hub, a vibration ring located on the outer periphery of the hub, and a pair of elastic bodies made of a rubber-like elastic body located on both sides in the axial direction of the vibration ring and coupling the hub and the vibration ring, in which the vibration ring is provided with a protrusion extending to the vicinity of the outer periphery of the hub, each of the elastic bodies has a shape of being curved outward in the axial direction from the protrusion from the hub to the vibration ring, a projection extending toward the protrusion is integrally molded on a surface on a protrusion side in the elastic bodies, and a gap is set between the protrusion and the projection.
Claims
1. A dynamic damper comprising: a hub; a vibration ring located on an outer periphery of the hub; and a pair of elastic bodies located on both sides in an axial direction of the vibration ring and coupling the hub to the vibration ring, wherein the vibration ring is provided with a protrusion extending proximate the outer periphery of the hub, each of the elastic bodies includes a curved portion that extends outward in the axial direction away from the protrusion from the hub to the vibration ring, an elastic projection extending toward the protrusion is integrally molded on a surface on a protrusion side of each of the pair of elastic bodies, each of the elastic bodies includes a rubber block that increases a thickness of the curved portion of the elastic body at a location opposite to the elastic projection, and a gap is provided between each axial side of the protrusion and each elastic projection.
2. The dynamic damper according to claim 1, wherein each of the elastic bodies includes a first end attached to the hub and a second opposite end attached to the vibration ring, and each of the elastic projection and the rubber block are attached to the curved portion at a midpoint between the first and second ends.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) Next, a dynamic damper 10 according to this embodiment is described in detail based on the drawings.
(5) As illustrated in
(6) The hub 20 is fixed to the propeller shaft and an outer peripheral surface 21 thereof is coupled to the vibration ring 30 through the elastic bodies 40.
(7) The vibration ring 30 has an annular vibration ring body 31 coupled to the outer periphery of the hub 20 through a sleeve 41 and the elastic bodies 40. A protrusion 32 is formed toward the inner diameter direction from the center in the axial direction of the vibration ring body 31. In the protrusion 32, a dry bearing 33 is fitted to the inner peripheral surface thereof. A very small gap is set between the inner peripheral surface of the dry bearing 33 and the outer peripheral surface 21 of the hub 20.
(8) Each of the elastic bodies 40 is made of an annular rubber-like elastic body and is provided with a curved portion 42 having a shape of being curved outward in the axial direction (horizontal direction in
(9) Both ends in the radial direction of the curved portion 42 are coupled to the vibration ring 30 and the hub 20 through a sleeve 41. The curved portion 42 can be elastically deformed when the vibration ring 30 is displaced in a torsional direction X with respect to the hub 20.
(10) The rubber block 43 is formed on the outer surface in the center of the curved portion 42. A part of the curved portion 42 where the rubber block 43 is located becomes thick and the rigidity of a portion of the rubber block 43 in each of the elastic bodies 40 increase.
(11) The projection 44 extends in the axial direction from the inner surface in the center of the curved portion 42 toward the protrusion 32. A very small gap C1 is provided between the tip of the projection 44 and the protrusion 32. The gap C1 is set to be approximately 1 to 2 mm.
(12) According to the dynamic damper 10 having the above-described configuration, the elastic bodies 40 and the vibration ring 30 resonate with a phase opposite to the phase of the displacement in the torsional direction X by the vibration of the propeller shaft, and therefore the vibration of the propeller shaft can be reduced.
(13) Moreover, even when muddy water of the road surface and the like fly to the propeller shaft located below the vehicle, both ends of the curved portions 42 are fitted to the vibration ring 30 and the hub 20, and therefore the muddy water and the like do not enter the dynamic damper 10.
(14) Moreover, when the vibration ring 30 in the dynamic damper 10 is displaced in the torsional direction X with respect to the hub 20 by the vibration accompanying the rotation of the propeller shaft, the curved portions 42 in the elastic bodies 40 are pulled in the torsional direction X. At this time, the rigidity of the rubber blocks 43 in the elastic bodies 40 increases by the rubber blocks 43 formed on the outer surfaces in the center of the curved portions 42.
(15) Moreover, when the vibration ring 30 is twisted by a certain degree or more with an increase in the number of rotations of the propeller shaft, the curved portions 42 are pulled. Thus, the gap C1 between the projection 44 and the protrusion 32 decreases, so that the projections 44 contact the protrusion 32, whereby the damping amount of the vibration in the torsional direction X can be increased.
(16) As described above, according to the dynamic damper 10 of this embodiment, the curved portions 42 having the curved shape are pulled in the torsional direction X when the vibration ring 30 is displaced in the torsional direction X with respect to the hub 20, and therefore the length in the radial direction of the elastic bodies 40 is longer than that of the dynamic damper 510 according to the conventional technique, whereby the displacement tolerance increases. Therefore, the torsional durability against the relative displacement of the vibration ring 30 is improved, the range of the vibration reduction effect to the rotation of the propeller shaft can be increased, and the space in the radial direction where the elastic bodies 40 are provided in the dynamic damper 10 is not required to be enlarged.
(17) Moreover, according to the dynamic damper 10 of this embodiment, the projections 44 can increase the damping amount of the vibration in the torsional direction X with respect to the vibration ring 30 when the vibration ring 30 is twisted by a certain degree or more. Therefore, the damping amount to the vibration of the propeller shaft can be increased as compared with that in the dynamic damper 510 according to the conventional technique. As a result, the projections 44 can exhibit a stopper function to prevent the vibration ring 30 from being twisted by a certain degree or more.
(18) Moreover, according to the dynamic damper 10 of this embodiment, the rigidity in the rubber blocks 43 provided in parts of the elastic bodies 40 increases and the outer diameter side and the internal diameter side can be elastically deformed with good balance with the rubber blocks 43 as the center. Therefore, stress can be prevented from concentrating on parts of the elastic bodies 40.
(19) In the present invention, the positions where the rubber blocks are molded in the elastic bodies are not particularly limited. However, in order for the outer diameter side and the internal diameter side to be elastically deformed with good balance, it is preferable that the rubber blocks are formed in the center of the elastic bodies, i.e., around the peaks of the curved portions.