The present disclosure relates to a damper device.
For example, in automobiles, a damper device is installed between an engine and a transmission, as shown in Japan Laid Open Patent Application Publication No. 2007-247723. The damper device includes an input member, an output member and elastic members . The input member is a member to which a torque from the engine is inputted. The output member outputs the torque, inputted to the input member, to the transmission. The elastic members elastically couple the input member and the output member. Fluctuations in velocity of rotation from the engine are inhibited by the damper device installed in a torque transmission path between the engine and the transmission.
It is preferable for the damper device described above to inhibit fluctuations in rotational velocity as appropriately as possible. It is an object of the present advancement to inhibit fluctuations in rotational velocity as appropriately as possible.
A damper device according to an aspect of the present advancement includes a damper device body, an output shaft and a dynamic vibration absorber. The damper device body includes an input member and an output member. The input member and the output member are coupled to be rotatable relative to each other. The output shaft outputs a torque transmitted thereto from the damper device body. The dynamic vibration absorber is attached to the output shaft.
According to this configuration, the dynamic vibration absorber is attached to the output shaft. Hence, fluctuations in rotational velocity can be inhibited as appropriately as possible. Additionally, the dynamic vibration absorber is attached not to the damper device body but to the output shaft. Hence, attaching the dynamic vibration absorber can be made without making the structure of the damper device body greatly different from a well-known structure thereof. Because of this, the damper device body can be compatible among, for instance, vehicles with different engine settings.
Preferably, the dynamic vibration absorber includes a base member and a mass body. The base member is attached to the output shaft. The mass body is disposed to be rotatable relative to the base member.
Preferably, the base member includes a first through hole. Additionally, the output shaft is coupled to the first through hole.
Preferably, the output shaft is spline-coupled to the first through hole.
Preferably, the base member includes a boss portion provided with the first through hole.
Preferably, the output member includes a recess. Additionally, the boss portion is coupled to the recess.
Preferably, the boss portion is spline-coupled to the recess.
Preferably, the recess is provided as a second through hole.
Preferably, the mass body sways with respect to the base member in a circumferential direction, and has a swaying center arranged in a different position from a rotational center of the base member.
Preferably, the dynamic vibration absorber further includes a centrifugal element and a cam mechanism. The centrifugal element is disposed to receive a centrifugal force generated by rotation of the output shaft. The cam mechanism converts the centrifugal force acting on the centrifugal element into a circumferential force.
Preferably, the base member further includes a body and a torque limiting portion. The torque limiting portion limits transmission of the torque inputted to the body from the output shaft.
According to the present advancement, fluctuations in rotational velocity can be inhibited as appropriately as possible.
An exemplary embodiment of a damper device according to the present advancement will be explained with reference to drawings. It should be noted that in the following explanation, the term “axial direction” means an extending direction of a rotational axis O of a damper device 100. Additionally, the term “radial direction” means a radial direction of an imaginary circle about the rotational axis O. Moreover, the term “circumferential direction” means a circumferential direction of the imaginary circle about the rotational axis O.
As shown in
The damper device body 2 includes the input member 21 and the output member 22. The input member 21 is, for instance, a flywheel to which the torque from the engine is inputted. The input member 21 is fixed to a crankshaft of the engine. The input member 21 is disposed to be rotatable about the rotational axis O.
The input member 21 has a disc shape. The input member 21 includes an accommodation space 21a. The accommodation space 21a extends in the circumferential direction. Elastic members 23 to be described are accommodated in the accommodation space 21a. Additionally, the accommodation space 21a may be filled up with a viscous fluid. For example, the accommodation space 21a may be filled up with grease.
The input member 21 includes an input plate 21b and an accommodation plate 21c. The accommodation space 21a is formed by the input plate 21b and the accommodation plate 21c. Additionally, the input member 21 includes a ring gear 21d. The ring gear 21d is fixed to the input plate 21b.
The output member 22 outputs the torque, inputted to the input member 21, to the output shaft 5. The output member 22 is rotatable about the rotational axis O. The output member 22 has a disc shape and includes a second through hole 22a in a middle part thereof. The second through hole 22a is provided with a spline groove on the inner peripheral surface thereof. Specifically, the output member 22 includes a second boss portion 22b. The second boss portion 22b has a cylindrical shape and includes the second through hole 22a.
The output member 22 is coupled to the input member 21 so as to be rotatable relative thereto. Specifically, the damper device body 2 includes a plurality of elastic members 23. The elastic members 23 are, for instance, coil springs. The elastic members 23 elastically couple the input member 21 and the output member 22.
The output shaft 5 receives a torque transmitted thereto from the damper device body 2. The output shaft 5 outputs the torque, transmitted thereto from the damper device body 2, to a member disposed downstream of the damper device 100. For example, the output shaft 5 outputs the torque, transmitted thereto from the damper device body 2, to a transmission (not shown in the drawings) disposed downstream of the damper device 100. In other words, the output shaft 5 may be configured as an input shaft of the transmission.
The output shaft 5 has a columnar shape. The output shaft 5 is disposed to be rotatable about the rotational axis O. The output shaft 5 is coupled to the second through hole 22a of the output member 22. The output shaft 5 is provided with a spline groove on an outer peripheral surface 5a thereof. Because of this, the output shaft 5 is spline-coupled to the output member 22.
The dynamic vibration absorber 3 is attached to the output shaft 5. The dynamic vibration absorber 3 is rotatable unitarily with the output shaft 5. In other words, the dynamic vibration absorber 3 is disposed to be rotatable about the rotational axis O. The dynamic vibration absorber 3 is disposed in axial alignment with the damper device body 2. In other words, as seen in the axial direction, the dynamic vibration absorber 3 is disposed to overlap the damper device body 2.
The dynamic vibration absorber 3 is configured to attenuate vibration of the output shaft 5. As shown in
As shown in
The base member 31 has a disc shape. The base member 31 includes a first boss portion 31b (an exemplary boss portion of the present advancement) and a body 31c. The first boss portion 31b has a cylindrical shape and includes the first through hole 31a. The body 31c has a disc shape and extends radially outward from the first boss portion 31b. The body 31c and the first boss portion 31b are provided as a single member.
As shown in
As shown in
The first and second mass bodies 32a and 32b are formed by stamping of a sheet metal member. Each of the first and second mass bodies 32a and 32b has, for instance, an annular shape. The first and second mass bodies 32a and 32b are disposed on the both axial sides of the base member 31. In other words, the first mass body 32a is disposed on the engine side of the base member 31, whereas the second mass body 32b is disposed on the transmission side of the base member 31.
As shown in
As shown in
As shown in
As shown in
As shown in
The diameter of the large diameter trunk 351 is larger than that of each pair of through holes 322 of the first and second mass bodies 32a and 32b, and is smaller than that (radial dimension) of each elongated hole 312 of the base member 31. Additionally, the thickness of the large diameter trunk 351 is slightly larger than that of the base member 31.
The small diameter trunks 352 penetrate each pair of third through holes 322 of the first and second mass bodies 32a and 32b and each pair of fourth through holes 331 of the first and second lid members 33a and 33b. Additionally, the first and second mass bodies 32a and 32b and the both lid members 33a and 33b are fixed to the both axial sides of the base member 31 by swaging the heads of the small diameter trunks 352.
With the configuration described above, the base member 31 is rotatable relative to the first and second mass bodies 32a and 32b and the two lid members 33a and 33b in a range that each stop pin 35 is movable in each elongated hole 312 of the base member 31. Additionally, relative rotation of the both is restricted when the large diameter trunk 351 of each stop pin 35 makes contact with one end of each elongated hole 312.
One exemplary embodiment of the present advancement has been explained above. However, the present advancement is not limited to the aforementioned exemplary embodiment, and a variety of changes can be made without departing from the gist of the present advancement.
In the aforementioned exemplary embodiment, the output shaft 5 is coupled to each of the first through hole 31a of the base member 31 and the second through hole 22a of the output member 22. However, the damper device 100 is not limited to have the configuration. For example, as shown in
Specifically, the output shaft 5 is coupled to the first through hole 31a, and simultaneously, the first boss portion 31b is coupled to the second through hole 22a. More specifically, the output shaft 5 is spline-coupled to the first through hole 31a. Additionally, the first boss portion 31b is spline-coupled to the second through hole 22a. In other words, the first boss portion 31b includes a spline groove not only on the inner peripheral surface thereof but also on the outer peripheral surface thereof. Additionally, the outer peripheral surface of the output shaft 5 is spline-coupled to the inner peripheral surface of the first boss portion 31b. Moreover, the outer peripheral surface of the first boss portion 31b is spline-coupled to the inner peripheral surface of the second boss portion 22b. The output shaft 5, the first boss portion 31b and the second boss portion 22b are radially disposed in this order. Additionally, these components overlap as seen in a radial view. According to the configuration, the base member 31 is disposed in a torque transmission path. Therefore, in actuation of the damper device 100, a predetermined rotation-directional torque acts on the base member 31. As a result, it is possible to reduce impact of backlash between the base member 31 and the output shaft 5.
As shown in
The housing 36 is composed of two annular plates 361. The respective annular plates 361 form an internal space. In other words, the respective annular plates 361 are disposed in axial alignment. Additionally, the respective annular plates 361 bulge oppositely to each other, whereby the internal space is formed.
Each annular plate 361 includes an outer peripheral flange 362 in the outer peripheral end thereof. The annular plates 361 are fixed to each other at the outer peripheral flanges 362 thereof by a fastening member(s) 102 such as a rivet(s). In other words, the outer peripheral flanges 362 of the respective annular plates 361 make contact with each other. Additionally, the outer peripheral flanges 362 are fixed to each other by the fastening member(s) 102 penetrating therethrough. It should be noted that the outer peripheral flanges 362 may be fixed to each other by welding or so forth.
Additionally, each annular plate 361 includes an inner peripheral flange 363 in the inner peripheral end thereof. The respective inner peripheral flanges 363 make contact with the base member 31. In other words, the inner peripheral flanges 363 are disposed while interposing the base member 31 therebetween. Moreover, the respective inner peripheral flanges 363 are fixed to the base member 31 by the fastening member(s) 101 penetrating the respective inner peripheral flanges 363 and the base member 31. It should be noted that the respective inner peripheral flanges 363 may be fixed to the base member 31 by welding or so forth.
The interior of the housing 36 is filled with a viscous fluid 37. For example, lubricating oil or so forth can be used as the viscous fluid 37.
The configuration of the dynamic vibration absorber 3 is not limited to that of the aforementioned exemplary embodiment. For example, as shown in
Specifically, the base member 31 includes a slit(s) 313 having a circular-arc shape. The slit 313 is made in the shape of a circular arc with a radius R2 about the point S disposed at a predetermined distance R1 from the rotational axis O of the damper device 100. It should be noted that the slit 313 extends in the rotational direction.
A collar 38 is disposed in the slit 313. The collar 38 has a cylindrical shape. The collar 38 has a diameter smaller than the radial width of the slit 313. Additionally, the collar 38 has a length longer than that of the base member 31. The collar 38 is disposed axially between the first and second mass bodies 32a and 32b. The first mass body 32a, the second mass body 32b and the collar 38 are fixed by a rivet 39. The output member 22 may function as the base member 31. The first and second mass bodies 32a and 32b sway along the slit 313.
The configuration of the dynamic vibration absorber 3 is not limited to that of the aforementioned exemplary embodiment. For example, as shown in
The mass body 32 has an annular shape, for instance, and is disposed radially outside the base member 31. The mass body 32 and the base member 31 are disposed at an interval in the radial direction. It should be noted that the mass body 32 and the base member 31 are disposed in radial alignment. In other words, as seen in the radial direction, the mass body 32 and the base member 31 overlap.
The mass body 32 and the base member 31 are rotated about the rotational axis O. The mass body 32 and the base member 31 are rotatable relative to each other.
Each centrifugal element 40 is disposed in the base member 31, and is movable radially outward by a centrifugal force generated by rotation of the base member 31. More specifically, as shown close-up in
Each cam mechanism 41 is composed of each of a plurality of rollers 411 as cam followers and each of a plurality of cams 412 provided on the inner peripheral surface of the mass body 32. Each roller 411 is attached to the roller accommodation portion 402 of each centrifugal element 40, and is radially movable together with each centrifugal element 40. It should be noted that each roller 411 may be rotatable in or fixed to the roller accommodation portion 402. Each cam 412 is a circular-arc surface with which each roller 411 makes contact. When the base member 31 and the mass body 32 are rotated relative to each other within a predetermined angular range, each roller 411 is moved along each cam 412.
When rotational phase difference is produced between the base member 31 and the mass body 32 by the contact between each roller 411 and each cam 412, a centrifugal force generated in each centrifugal element 40 and each roller 411 is converted into a force directed in the circumferential direction to reduce the rotational phase difference.
Each coil spring 42 is disposed between the bottom surface of each recess 314 and the radially inner surface of each centrifugal element 40, and urges each centrifugal element 40 radially outward. Each centrifugal element 40 and each roller 411 are pressed onto each cam 412 of the mass body 32 by the urging force of each coil spring 42. Therefore, each roller 411 makes contact with each cam 412 even when a centrifugal force does not act on each centrifugal element 40 in a condition that the base member 31 is not rotated.
Actuation of each cam mechanism 41 (inhibition of torque fluctuations) will be explained with
A torque transmitted to the output shaft 5 is transmitted to the base member 31. When torque fluctuations do not exist in torque transmission, the base member 31 and the mass body 32 are rotated in the condition shown in
As described above, the rotation-directional relative displacement between the base member 31 and the mass body 32 is referred to as “rotational phase difference”. In
On the other hand, when torque fluctuations exist in torque transmission, rotational phase difference ±θ is produced between the base member 31 and the mass body 32 as shown in
As shown in
Additionally, the first force component P1 acts as a force to move the base member 31 to the rightward in
As described above, when rotational phase difference is produced between the base member 31 and the mass body 32 by torque fluctuations, the base member 31 receives a force (the first force component P1) directed to reduce the rotational phase difference between the both by the centrifugal force acting on each centrifugal element 40 and the working of each cam mechanism 41. Torque fluctuations are inhibited by this force.
The aforementioned force inhibiting torque fluctuations varies in accordance with the centrifugal force, in other words, the rotation speed of the base member 31, and also varies in accordance with the rotational phase difference and the shape of each cam 412. Therefore, by suitably setting the shape of each cam 412, characteristics of the damper device 100 can be made optimal in accordance with the specification of the engine and so forth.
For example, each cam 412 can be made in a shape that makes the first force component P1 linearly vary in accordance with the rotational phase difference in a condition where the centrifugal force acting is constant. Alternatively, each cam 412 can be made in a shape that makes the first force component P1 non-linearly vary in accordance with the rotational phase difference.
As shown in
The torque limiting portion 31d limits transmission of a torque inputted to the body 31c from the output shaft 5. Specifically, when the torque inputted to the body 31c from the output shaft 5 is less than a predetermined threshold, the torque limiting portion 31d rotates the body 31c unitarily with the output shaft 5. In other words, the torque limiting portion 31d transmits the torque, transmitted thereto from the output shaft 5, to the body 31c. On the other hand, when the torque inputted to the body 31c from the output shaft 5 is greater than or equal to the predetermined threshold, the torque limiting portion 31d rotates the body 31c relative to the output shaft 5. In other words, the torque limiting portion 31d does not transmit the torque, transmitted thereto from the output shaft 5, to the body 31c. It should be noted that regardless of the value of the torque inputted from the output shaft 5, the boss portion 31b is rotated unitarily with the output shaft 5.
The torque limiting portion 31d limits transmission of the torque inputted to the body 31c from the output shaft 5 by a friction force. The torque limiting portion 31d includes an urging member 31e. The urging member 31e urges the body 31c toward an attachment portion 31f of the boss portion 31b in the axial direction. It should be noted that the boss portion 31b includes a boss body 31g and the attachment portion 31f . The boss body 31g has a cylindrical shape and is attached to the output shaft 5. The attachment portion 31f extends radially outward from the boss body 31g. The attachment portion 31f has a disc shape. The urging member 31e makes contact with the inner peripheral end of the body 31c. The body 31c is interposed and held between the attachment portion 31f and the urging member 31e.
When the torque inputted to the body 31c is less than the predetermined threshold, the body 31c is unitarily rotated with the boss portion 31b by a static friction force between the body 31c and the attachment portion 31f . On the other hand, when the torque inputted to the body 31c is greater than or equal to the predetermined threshold, a force exceeding the maximum static friction force acts on the body 31c, whereby the body 31c is rotated relative to the boss portion 31b. It should be noted that a friction material may be interposed between the body 31c and the attachment portion 31f.
The urging member 31e is, for instance, a disc spring. The outer peripheral end of the urging member 31e makes contact with the body 31c. On the other hand, the inner peripheral end of the urging member 31e makes contact with a support plate 31h to be described.
The torque limiting portion 31d further includes the support plate 31h. The support plate 31h supports the urging member 31e in the axial direction. The support plate 31h is disposed at an interval from the body 31c in the axial direction. The urging member 31e is disposed axially between the body 31c and the support plate 31h. The urging member 31e makes contact at one end thereof with the body 31c in the axial direction, while making contact at the other end thereof with the support plate 31h in the axial direction. While in a compressed state, the urging member 31e is disposed between the body 31c and the support plate 31h.
The torque limiting portion 31d further includes a spacer(s) 31i. The spacer(s) 31i has a cylindrical shape. The spacer(s) 31i is disposed axially between the boss portion 31 band the support plate 31h. A fastening member(s) 103 such as a rivet(s) fastens the attachment portion 31f, the support plate 31h and the spacer(s) 31i together. The spacer(s) 31i reliably produces a space between the attachment portion 31f and the support plate 31h in the axial direction. The body 31c and the urging member 31e are disposed in the axial space reliably produced by the spacer(s) 31i.
In the aforementioned exemplary embodiment, the output member 22 includes the second through hole 22a, but may include a recess instead of the second through hole 22a. In this case, the output shaft 5 is coupled to the recess.
2 Damper device body
21 Input member
22 Output member
22
a Second through hole
3 Dynamic vibration absorber
31 Base member
31
a First through hole
31
b First boss portion
32 Mass body
5 Output shaft
100 Damper device
Number | Date | Country | Kind |
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2016-240113 | Dec 2016 | JP | national |
This application is the U.S. National Phase of International Application No. PCT/JP2017/038123, filed Oct. 23, 2017. That application claims priority to Japanese Patent Application No. 2016-240113, filed Dec. 12, 2016. Both of those applications are incorporated by reference herein in their entireties.
Filing Document | Filing Date | Country | Kind |
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PCT/JP2017/038123 | 10/23/2017 | WO | 00 |