VIBRATION ABSORBER
20180031045 ยท 2018-02-01
Assignee
Inventors
Cpc classification
F16D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2013/703
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/134
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A vibration absorber is provided which is mounted in an annular space housing a spring of a damper, wherein accompanying rotational fluctuation of a drive source, when a first plate connected to the drive source and a second plate connected to a transmission rotate relative to each other while elastically deforming a spring, an arm part extending radially outward from a driven plate swings in the interior of an annular space, and grease packed in the annular space is compressed by the arm part and pushed inward in the radial direction, but since this grease is guided in the peripheral direction by a flow-aligning projection provided on either one of the driven plate and the seal plate and projecting toward the other, and is prevented from being concentrated in part of a seal member provided on the inner peripheral part of the seal plate and sealing the annular space.
Claims
1. A vibration absorber in which a damper disposed between a drive source and a transmission comprising a first plate connected to the drive source, a second plate connected to the transmission, a seal plate fixed to an outer peripheral part of the first plate and disposed between the first plate and the second plate, a driven plate fixed to an inner peripheral part of the second plate and disposed between the first plate and the seal plate, an annular space formed along an outer peripheral part of the seal plate and the first plate and packed with grease, a spring disposed in a peripheral direction in the annular space and having one end latched on the first plate and the other end latched on an arm portion extending radially outward from the driven plate, and a seal member provided on an inner peripheral part of the seal plate and sealing the annular space, transmission of rotational fluctuations of the first plate to the second plate being suppressed by relative rotation of the first and second plates and elastic deformation of the spring, wherein the vibration absorber comprises a flow-aligning projection that is provided on either one of an arm portion of the driven plate and the seal plate opposing the arm portion and projects toward the other, and the flow-aligning projection guides grease that is flowing inward in a radial direction so as to flow along the peripheral direction.
2. The vibration absorber according to claim 1, wherein a width in the peripheral direction of the flow-aligning projection increases in going from a radially outer side toward a radially inner side.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
EXPLANATION OF REFERENCE NUMERALS AND SYMBOLS
[0017] 14 First flywheel (first plate) [0018] 16 Second flywheel (second plate) [0019] 17 Seal plate [0020] 18 Driven plate [0021] 18a Arm portion [0022] 18b Flow-aligning projection [0023] 20 Annular space [0024] 22 Coil spring (spring) [0025] 23 Seal member [0026] D Damper [0027] E Engine (drive source) [0028] T Transmission [0029] W Width in peripheral direction of flow-aligning projection
MODES FOR CARRYING OUT THE INVENTION
[0030] Embodiments of the present invention are explained below by reference to the attached drawings.
First Embodiment
[0031] A first embodiment of the present invention is now explained by reference to
[0032] As shown in
[0033] An annular space 20 is formed between the first flywheel 14 and the seal plate 17, the radially outer side of the annular space 20 being blocked and the radially inner side being open, and a plurality of spring seats 21 and a plurality of coil springs 22 are alternatingly disposed in the annular space 20. Two plate-shaped arm portions 18a and 18a whose phases are displaced by 180 from each other extend radially outward from an outer peripheral part of the driven plate 18, each arm portion 18a being sandwiched between two adjacent spring seats 21 and 21. Therefore, rotational fluctuations of the crankshaft 11 are absorbed due to the coil springs 22 being compressed between the first flywheel 14 and the arm portions 18a and 18a of the driven plate 18 rotating integrally with the second flywheel 16 when the first flywheel 14 and second flywheel 16, which have large moments of inertia, rotate relative to each other, and vibration transmitted from the engine E to the transmission T is reduced.
[0034] The annular space 20 is packed with grease for lubricating contact parts of the spring seats 21, the coil springs 22, the driven plate 18, etc., and an annular seal member 23 is disposed between an inner peripheral part of the seal plate 17 and the boss portion 16a of the second flywheel 16 so as to prevent the grease from leaking from the annular space 20. Since this grease is agitated by the arm portions 18a and 18a of the driven plate 18 in the interior of the annular space 20 when the first flywheel 14 and the second flywheel 16 rotate relative to each other, a vibration attenuating effect is exhibited by virtue of resistance to this agitation.
[0035] A friction clutch 24 that detachably joins the second flywheel 16 to the main shaft 12 of the transmission T includes a clutch disk 25 having an inner peripheral part fixed to the main shaft 12, a friction material 26 provided on an outer peripheral part of the clutch disk 25, a pressure plate 27 disposed on the side opposite to the second flywheel 16 with the friction material 26 sandwiched therebetween, a clutch cover 28 having an outer peripheral part fixed to an outer peripheral part of the second flywheel 16 by a bolt, which is not illustrated, and a diaphragm spring 29 having an intermediate part axially supported on the clutch cover 28 and an outer peripheral part abutting against a back face of the pressure plate 27. Therefore, when an inner peripheral part of the diaphragm spring 29 is driven rightward in
[0036] A flow-aligning projection 18b formed as a separate member is fixed to a face, opposing the seal plate 17, of the arm portion 18a of the driven plate 18 by arbitrary means such as a weld or a rivet. The flow-aligning projection 18b has an isosceles triangular shape having an apex facing radially outward and having a constant thickness, and a width W in the peripheral direction increases gradually in going from the radially outer side toward the radially inner side. A slight gap is formed between the surface of the flow-aligning projection 18b and the seal plate 17. In the present embodiment, the two base angles of the flow-aligning projection 18b having an isosceles triangular shape are positioned further inside in the radial direction than the radially inner ends of the two spring seats 21 and 21 adjacent to the flow-aligning projection 18b, and a gap is formed therebetween, grease being capable of passing through the gap .
[0037] The operation of the first embodiment of the present invention having the above arrangement is now explained.
[0038]
[0039] In this way, when starting or stopping the engine E, when the engine rotational speed passes through the resonant rotational speed region, which is equal to or less than the idle rotational speed, and the vibration transmission rate increases rapidly and the first flywheel 14 and the second flywheel 16 rotate greatly relative to each other, since the arm portions 18a and 18a of the driven plate 18 swing greatly in the interior of the annular space 20, grease packed in the annular space 20 is pushed by the arm portions 18a and 18a and moves radially inward, and there is a possibility that grease having increased local pressure will pass the seal member 23 on the radially inner side of the arm portions 18a and 18a and leak outside the annular space 20.
[0040] However, in accordance with the present embodiment, since the triangular flow-aligning projections 18b and 18b projecting toward the seal plate 17 are provided on the surfaces of the arm portions 18a and 18a, and grease that has been pushed radially inward by the arm portions 18a and 18a, which swing back and forth in the arrow A-A direction, is guided by the flow-aligning projections 18b and 18b whose width W in the peripheral direction increases gradually in going toward the radially inner side, and is dispersed to opposite sides in the peripheral direction (see arrows B), an event in which grease builds up locally in part of the seal member 23 and leaks due to vibration, etc. can be avoided.
[0041] As described above, in accordance with the present embodiment, with a simple arrangement in which the flow-aligning projections 18b and 18b are merely provided on the arm portions 18a and 18a of the driven plate 18, leakage of grease via the seal member 23 can be reliably prevented without providing a special member such as a shielding member for shielding the seal member 23 from grease.
Second to Eighth Embodiments
[0042] In the first embodiment shown in
[0043] A third embodiment shown in
[0044] Furthermore, a fourth embodiment shown in
[0045] Moreover, a fifth embodiment shown in
[0046] Furthermore, a sixth embodiment shown in
[0047] Moreover, a seventh embodiment shown in
[0048] Furthermore, an eighth embodiment shown in
[0049] With these second to eighth embodiments, the same operational effects as for the first embodiment can be achieved.
[0050] Embodiments of the present invention are explained above, but the present invention may be modified in a variety of ways as long as the modifications do not depart from the spirit and scope thereof.
[0051] For example, in the embodiments the flow-aligning projection 18b is provided on the driven plate 18 side, but the same operational effects can be achieved by providing the flow-aligning projection on the seal plate 17 side, opposing the arm portion 18a of the driven plate 18.
[0052] Furthermore, the drive source of the present invention is not limited to the engine E of the embodiments and may be another type of drive source such as an electric motor.