Torque converter in vehicle
09810301 · 2017-11-07
Assignee
Inventors
Cpc classification
F16H2045/0278
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2045/0263
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H45/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2045/0205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/1471
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2045/0294
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/13128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H45/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/131
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed is a torque converter in a vehicle, in which a torsional damper reduces a natural frequency and absorbs vibration energy in an anti-resonance state for enhancing a vibration isolation function. The torque converter in a vehicle includes a torsional damper including a retaining plate coupled to the piston, a plurality of springs arranged at the retaining plate for imparting elastic force in a circumferential direction, a driven plate coupled to a spline hub which acts as a reaction force on the springs and forwards driving power to a transmission, and an inertial lever arranged between the piston and the driven plate, the inertial lever including a fixed pivot coupling portion coupled to the piston with a fixed pivot and a movable pivot coupling portion coupled to the driven plate with a movable pivot.
Claims
1. A torque converter in a vehicle comprising: a front cover; an impeller connected to the front cover to rotate together with the front cover; a turbine arranged at a position opposite to the impeller; a reactor positioned between the impeller and the turbine for changing an oil flow from the turbine toward the impeller; a lock-up clutch having a piston for directly connecting the front cover to the turbine; and a torsional damper coupled to the lock-up clutch for absorbing an impact and vibration acting in a rotation direction, wherein the torsional damper includes a retaining plate coupled to the piston, a plurality of springs arranged at the retaining plate for imparting elastic force in a circumferential direction, a driven plate coupled to a spline hub which acts as a reaction force on the springs and forwards driving power to a transmission, and an inertial lever arranged between the piston and the driven plate, the inertial lever including a fixed pivot coupling portion coupled to the piston with a fixed pivot and a movable pivot coupling portion coupled to the drivers plate with a movable pivot.
2. The torque converter of claim 1, wherein the inertial lever has a ballast coupled to one end or two ballasts each coupled to one of two ends thereof.
3. The torque converter of claim 1, wherein the fixed pivot coupling portion is arranged between the movable pivot coupling portion of the inertial lever and a ballast coupled to the inertial lever.
4. The torque converter of claim 1, wherein the movable pivot coupling portion is arranged between the fixed pivot coupling portion of the inertial lever and a ballast coupled to the inertial lever.
5. The torque converter of claim 1, wherein the movable pivot coupling portion is a long hole provided in the inertial lever in a radial direction of a rotation shaft to pass through the inertial lever in a direction of the rotation shaft for coupling the inertial lever to the driven plate with a shaft member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(10) Hereafter, a torque converter in a vehicle in accordance with exemplary embodiments of the present invention will be described with reference to the accompanying drawings such that persons ordinarily skilled in the art may carry easily out the present invention. As those skilled in the art would realize, the described embodiments may be modified in various different ways, all without departing from the spirit or scope of the present invention. Parts in the drawings that are not relevant to the description of the present invention are omitted for describing the present invention clearly, and like reference numerals designate like elements throughout the specification.
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(12) The torque converter in accordance with a first exemplary embodiment of the present invention includes a front cover 4 rotatably connected to a crankshaft of an engine, an impeller 6 connected to the front cover 4 to rotate together with the front cover 4, a turbine 8 arranged at a position opposite to the impeller 6, and a reactor (called a ‘stator’) 10 positioned between the impeller 6 and the turbine 8 for changing an oil flow from the turbine 8 to forward the oil flow toward the impeller 6. The reactor 10 which forwards the oil toward the impeller 6 has the same rotation center as the front cover 4. A lock-up clutch 14 used as means for connecting the engine to the transmission directly is arranged between the front cover 4 and the turbine 8.
(13) The lock-up clutch 14 having a substantially disc shape has a piston 16 provided thereto to be movable in an axial direction.
(14) The piston 16 has a friction member 18 coupled thereto to be brought into frictional contact with the front cover 4.
(15) The lock-up clutch 14 has a torsional damper 20 coupled thereto for absorbing a torsional force acting in a rotation direction of the shaft and attenuating vibration when the friction member 18 is brought into close contact with the front cover 4.
(16) Referring to
(17) The springs 31 are retained by a retaining plate 33 coupled to the piston 16. The springs 31 are elastically supported by a driven plate 35. That is, the springs 31 are elastically held between the retaining plate 33 and the driven plate 35, thereby absorbing the vibration and the impact in the rotation direction (circumferential direction).
(18) The driven plate 35 may be coupled with a rivet to a spline hub 37 which forwards driving power to the transmission.
(19) An inertial lever 39 is arranged between the piston 16 and the driven plate 35. The inertial lever 39 has a center portion with a fixed pivot coupling portion 41 provided thereto coupled to the piston 16 with a fixed pivot, and one other portion with a movable pivot coupling portion 43 provided thereto coupled to the driven plate 35 with a movable pivot (see
(20) The fixed pivot coupling portion 41 has a hole provided at a middle portion of the inertial lever 39 passed through in a direction parallel to a shaft, with a shaft member 41a placed therein to connect to the piston 16. That is, the inertial lever 39 is made to rotate freely at the piston 16 by the fixed pivot coupling portion 41.
(21) The movable pivot coupling portion 43 has a long hole 45 provided in one side of the inertial lever 39 parallel to a shaft, with another shaft member 43a placed therein, enabling the inertial lever 39 to move as the shaft member 43a moves along the long hole 45.
(22) The long hole 54 may serve as a stopper since the long hole 45 restricts movements of the inertial lever 39 as the shaft member 43a is brought into contact with either end of the long hole 45 and restricts an operation angle of the driven plate 35 coupled to the inertial lever 39, preventing damage to the spring 31 when the spring 31 comes into full close contact.
(23) In the meantime, the inertial lever 39 may have ballast 47 provided to one or both ends thereof. The ballast 47 may be formed of a material that is the same as that of the inertial lever 39 as one unit therewith, or may be a separate member coupled to the inertial lever 39 with coupling means.
(24) The ballast 47 may increase inertial force by increasing mass of the torsional damper 20 including the piston 16 or the driven plate 35.
(25) The operation of the torque converter in a vehicle in accordance with an exemplary embodiment of the present invention will be described.
(26) If the lock-up clutch 14 is operated, as the piston 16 moves toward the front cover 4, the friction member 18 is brought into close contact with the front cover 4 to forward the driving power of the engine which is transmitted to the front cover 4 to the piston 16. The driving power is forwarded from the piston 16 to the retaining plate 33 for the retaining plate 33 to apply pressure to the spring 31.
(27) Then, the spring 31 is compressed to apply pressure to the driven plate 35. In this case, the spring 31 initially absorbs the vibration and the impact in the rotation direction. As the piston 16 and the driven plate 35 rotate, the inertial lever 39 rotates in an arrow direction as shown in
(28) Particularly, the mass of the torsional damper 20 increased by the inertial lever 39 and the ballast 47 serves as a damper to absorb vibration energy in anti-resonance, thereby increasing a vibration isolation function.
(29) In the meantime, as the driven plate 35 rotates, the shaft member 43a is brought into contact with an end portion of the long hole 45 in the inertial lever 39. Therefore, the movement of the inertial lever 39 and the rotation of the driven plate 35 are restricted, making the long hole 45 function as the stopper.
(30) In succession, the driving power forwarded to the driven plate 35 is forwarded to the transmission through the spline hub 37.
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(32) In describing the current exemplary embodiment of the present invention, only differences from the foregoing exemplary embodiment will be described by comparing the current exemplary embodiment to the foregoing exemplary embodiment, and description of identical portions will be replaced with the foregoing example.
(33) The exemplary embodiment shown in
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(35) In describing the current exemplary embodiment of the present invention, only differences from the foregoing exemplary embodiment will be described by comparing them, and description of identical portions will be replaced with the foregoing example.
(36) The exemplary embodiment shown in
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(38) In describing the current exemplary embodiment of the present invention, only differences from the foregoing exemplary embodiment will be described by comparing them, and description of identical portions will be replaced with the foregoing example.
(39) The exemplary embodiment shown in
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(41) In describing the current exemplary embodiment of the present invention, only differences from the foregoing exemplary embodiment will be described by comparing them, and description of identical portions will be replaced with the foregoing example.
(42) The example of exemplary embodiment shown in
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(44) In describing the current exemplary embodiment of the present invention, only differences from the foregoing exemplary embodiment will be described by comparing them, and description of identical portions will be replaced with the foregoing example.
(45) The exemplary embodiment shown in
(46) Thus, the examples of the exemplary embodiments of the present invention shown in
(47) While this invention has been described in connection with what is presently considered to be practical exemplary embodiments, it is to be understood that the invention is not limited to the disclosed embodiments, but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.