WO2019082597A1 - クラッチ装置 - Google Patents
クラッチ装置Info
- Publication number
- WO2019082597A1 WO2019082597A1 PCT/JP2018/036284 JP2018036284W WO2019082597A1 WO 2019082597 A1 WO2019082597 A1 WO 2019082597A1 JP 2018036284 W JP2018036284 W JP 2018036284W WO 2019082597 A1 WO2019082597 A1 WO 2019082597A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- clutch
- center
- pressure
- cam surface
- slipper
- Prior art date
Links
- 238000013459 approach Methods 0.000 claims description 5
- 238000000926 separation method Methods 0.000 claims description 2
- 230000012447 hatching Effects 0.000 description 9
- 230000005540 biological transmission Effects 0.000 description 8
- 230000004048 modification Effects 0.000 description 6
- 238000012986 modification Methods 0.000 description 6
- 230000002093 peripheral effect Effects 0.000 description 6
- 238000000465 moulding Methods 0.000 description 5
- 229910000838 Al alloy Inorganic materials 0.000 description 3
- 239000000956 alloy Substances 0.000 description 3
- 230000015572 biosynthetic process Effects 0.000 description 3
- 230000000903 blocking effect Effects 0.000 description 2
- 239000002783 friction material Substances 0.000 description 2
- 238000004080 punching Methods 0.000 description 2
- 229910000639 Spring steel Inorganic materials 0.000 description 1
- 238000010521 absorption reaction Methods 0.000 description 1
- 229910052782 aluminium Inorganic materials 0.000 description 1
- XAGFODPZIPBFFR-UHFFFAOYSA-N aluminium Chemical compound [Al] XAGFODPZIPBFFR-UHFFFAOYSA-N 0.000 description 1
- 230000002238 attenuated effect Effects 0.000 description 1
- 239000010960 cold rolled steel Substances 0.000 description 1
- 238000004891 communication Methods 0.000 description 1
- 230000008878 coupling Effects 0.000 description 1
- 238000010168 coupling process Methods 0.000 description 1
- 238000005859 coupling reaction Methods 0.000 description 1
- 239000000463 material Substances 0.000 description 1
- 239000007769 metal material Substances 0.000 description 1
- 239000000203 mixture Substances 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16D—COUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
- F16D13/00—Friction clutches
- F16D13/22—Friction clutches with axially-movable clutching members
- F16D13/38—Friction clutches with axially-movable clutching members with flat clutching surfaces, e.g. discs
- F16D13/52—Clutches with multiple lamellae ; Clutches in which three or more axially moveable members are fixed alternately to the shafts to be coupled and are pressed from one side towards an axially-located member
- F16D13/54—Clutches with multiple lamellae ; Clutches in which three or more axially moveable members are fixed alternately to the shafts to be coupled and are pressed from one side towards an axially-located member with means for increasing the effective force between the actuating sleeve or equivalent member and the pressure member
- F16D13/56—Clutches with multiple lamellae ; Clutches in which three or more axially moveable members are fixed alternately to the shafts to be coupled and are pressed from one side towards an axially-located member with means for increasing the effective force between the actuating sleeve or equivalent member and the pressure member in which the clutching pressure is produced by springs only
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16D—COUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
- F16D13/00—Friction clutches
- F16D13/22—Friction clutches with axially-movable clutching members
- F16D13/38—Friction clutches with axially-movable clutching members with flat clutching surfaces, e.g. discs
- F16D13/52—Clutches with multiple lamellae ; Clutches in which three or more axially moveable members are fixed alternately to the shafts to be coupled and are pressed from one side towards an axially-located member
- F16D13/54—Clutches with multiple lamellae ; Clutches in which three or more axially moveable members are fixed alternately to the shafts to be coupled and are pressed from one side towards an axially-located member with means for increasing the effective force between the actuating sleeve or equivalent member and the pressure member
- F16D13/56—Clutches with multiple lamellae ; Clutches in which three or more axially moveable members are fixed alternately to the shafts to be coupled and are pressed from one side towards an axially-located member with means for increasing the effective force between the actuating sleeve or equivalent member and the pressure member in which the clutching pressure is produced by springs only
- F16D2013/565—Clutches with multiple lamellae ; Clutches in which three or more axially moveable members are fixed alternately to the shafts to be coupled and are pressed from one side towards an axially-located member with means for increasing the effective force between the actuating sleeve or equivalent member and the pressure member in which the clutching pressure is produced by springs only with means for releasing the clutch pressure in case of back torque
Definitions
- the present invention relates to a clutch device that transmits and disconnects a rotational driving force of a drive shaft, which is driven to rotate by a motor, to a driven shaft that drives a driven body.
- a clutch device is disposed between a motor such as an engine and a driven body such as a wheel to transmit or cut off the rotational driving force of the motor to the driven body. It is used.
- the clutch device arranges a plurality of friction plates rotated by the rotational driving force of the prime mover and a plurality of clutch plates connected to the driven body so as to face each other, and closely and separate these friction plates and the clutch plate Thereby, transmission or interruption of the rotational driving force can be optionally performed.
- a clutch device with a cam surface is disclosed.
- This clutch device has a clutch member side first cam surface (center side assist cam surface) formed on the clutch member and a pressure member side formed on the pressure member on the clutch member side second cam surface (center side slipper cam surface).
- the clutch device is provided between the center clutch and the pressure clutch in order to set one of the assist torque and the slipper torque to a desired torque value.
- the clutch device is provided between the center clutch and the pressure clutch in order to set one of the assist torque and the slipper torque to a desired torque value.
- the present invention has been made to address the above problems, and an object thereof is to provide a clutch device capable of setting desired different torque values without affecting each other between assist torque and slipper torque. It is.
- a feature of the present invention is a clutch device for transmitting or blocking the rotational driving force of a driving shaft to a driven shaft, wherein a clutch plate disposed opposite to a friction plate rotationally driven by the rotational driving of the driving shaft A center clutch which is held and connected to a driven shaft, and a pressure clutch which is disposed opposite to the center clutch so as to be able to approach or separate from and rotate relative to the friction clutch or the clutch plate.
- the pressure clutch has a pressure-side assist cam surface and a pressure-side slipper cam surface, each of which is an inclined surface extending in the axial direction, and the center clutch is a pressure side assist cam surface when the pressure-side assist cam surface approaches.
- the center side assist cam surface and the center side slipper cam surface are formed at different radial positions.
- pressure side slipper cam surfaces are formed at different radial positions, and the center side assist cam surfaces and center side slipper cam surfaces are formed at different radial positions, and the pressure side assist cam surfaces and pressure side slips The cam surfaces can be formed at different radial positions.
- the clutch device includes the assist contact surface which is the contact surface between the center side assist cam surface and the pressure side assist cam surface, the center side slipper cam surface, and the pressure side slipper cam surface.
- the slipper contact surfaces which are contact surfaces, in different positions in the radial direction of the center clutch, desired different torque values can be set. That is, according to the present invention, the assist torque and the slipper torque can be set to desired torque values without changing the strength of the coil spring provided between the center clutch and the pressure clutch.
- the assist torque and the slipper torque are set to desired torque values without making the inclination angle of the cam surface on the assist torque side and the inclination angle of the cam surface on the slipper torque different from each other. can do.
- the pressure clutch in the clutch device, includes a flat ring-shaped support plate disposed opposite to the center clutch and integrally rotating with the pressure clutch. And at least one of the pressure side slipper cam surfaces is formed on the support plate.
- the clutch device is provided with a flat ring-shaped support plate disposed opposite to the center clutch and integrally rotating with the pressure clutch. Since at least one of the pressure side assist cam surface and the pressure side slipper cam surface is formed on the support plate, the pressure clutch and center clutch including the arrangement positions of the pressure side assist cam surface and the pressure side slipper cam surface It is possible to improve the freedom of design.
- the center clutch is provided with a flat ring-shaped support plate that is disposed to face the pressure clutch and rotates integrally with the center clutch. And at least one of the center side slipper cam surfaces is formed in the support plate.
- the clutch device is provided with a flat ring-shaped support plate disposed opposite to the pressure clutch and integrally rotating with the center clutch. Since at least one of the center side assist cam surface and the center side slipper cam surface is formed on the support plate, the pressure clutch and the center clutch including the arrangement positions of the center side assist cam surface and the center side slipper cam surface It is possible to improve the freedom of design.
- the pressure side assist cam surface, the pressure side slipper cam surface, the center side assist cam surface, and the center side slip cam surface must be provided on these support plates. There is nothing to do with it. That is, in the clutch device according to the present invention, even when the support plate is provided on the pressure clutch or the center clutch, the pressure side assist cam surface and the pressure side slipper cam surface may be provided only on the pressure clutch. The center side assist cam surface and the center side slipper cam surface may be provided only in the center clutch.
- the slipper contact surface is formed at a position radially inward of the center clutch with respect to the assist contact surface.
- the clutch device generally has a slipper torque because the slipper contact surface is formed at a position radially inward of the center clutch with respect to the assist contact surface.
- the driver can be given the feeling of the clutch device in which the difference between the assist torque and the assist torque is increased.
- Another feature of the present invention is that, in the clutch device, the slipper contact surface is formed at a position radially outward of the center clutch with respect to the assist contact surface.
- the clutch device generally has a slipper torque because the slipper contact surface is formed at a position radially outward of the center clutch with respect to the assist contact surface.
- the driver can be given the feeling of a clutch device in which the difference between the assist torque and the assist torque is reduced.
- Another feature of the present invention is that, in the clutch device, the slipper contact surface is formed to have an area smaller than the area of the assist contact surface.
- the clutch device is formed such that the area of the slipper contact surface is smaller than the area of the assist contact surface, so the center side slipper cam surface and the pressure side slipper cam surface
- the center clutch and the pressure clutch can be reduced in weight by miniaturizing the configuration of the parts constituting the.
- the center-side slipper cam surface is biased toward the center inner ring-shaped projecting portion axially protruding in a ring shape at the inner edge portion of the center clutch.
- the pressure-side slipper cam surface is formed to be integrally connected to the center inner ring-shaped protrusion, or is biased toward the pressure inner ring-shaped protrusion that is axially formed in the inner edge portion of the pressure clutch in a ring shape.
- the pressure is to be formed integrally with the pressure inner ring-shaped protrusion.
- the clutch device comprises the center-side slipper cam surface as the center inner ring-like protrusion on the center clutch, or the pressure-side slipper cam surface as the pressure inner ring-like protrusion on the pressure clutch Since it is formed in a state of being integrally connected to these parts in a biased manner, molding of the respective cam surfaces is facilitated, and the respective cam surfaces, the center inner ring-shaped protrusion and the pressure inner ring-shaped protrusion The rigidity of can be improved.
- the radial length of the pressure side slipper cam surface sliding on the center side slipper cam surface is at least the center It can be set freely if the length facing the side slipper cam surface is secured. Further, by forming the pressure side slipper cam surface with respect to the pressure inner ring-shaped projection, the radial length of the center side slipper cam surface sliding on the pressure side slipper cam surface is at least the pressure side slipper cam. It can be set freely if the length opposite to the surface is secured.
- the pressure side slipper cam surface is biased toward the pressure outer ring-like projecting portion formed to protrude in a ring shape at the outer edge portion of the pressure clutch.
- the center-side slipper cam surface is biased toward the center outer ring-like protrusion which is formed by projecting in a ring shape at the outer edge of the center clutch. It is to form in the state connected integrally to the inside of an outside ring shaped projection part.
- the clutch device comprises the pressure-side slipper cam surface as a pressure-outer ring-like protrusion in the pressure clutch, or the center-side slipper cam surface as a center-outside ring-like protrusion in the center clutch Since each cam face is formed integrally in a state of being biased to the part, molding of each cam face is facilitated, and each cam face, pressure outer ring-like protrusion and center outer ring-like protrusion The rigidity of can be improved.
- the radial length of the center side slipper cam surface sliding on the pressure side slipper cam surface is at least It can be set freely if the length facing the side slipper cam surface is secured.
- the radial length of the pressure-side slipper cam surface sliding on the center-side slipper cam surface is at least the center-side slipper cam. It can be set freely if the length opposite to the surface is secured.
- FIG. 1 It is a sectional view showing the outline of the whole composition of the clutch device concerning one embodiment of the present invention in the state of clutch ON. It is a perspective view which shows roughly the external appearance structure of the center clutch integrated in the clutch apparatus shown in FIG. It is a top view which shows roughly the external appearance structure of the center clutch shown in FIG. It is a perspective view which shows roughly the external appearance structure of the pressure clutch integrated in the clutch apparatus shown in FIG. (A) and (B) show the operating state of the cam surface in the clutch device shown in FIG. 1, and (A) schematically shows a state where the pressure side assist cam surface is on the center side assist cam surface It is sectional drawing, (B) is sectional drawing which shows typically the state which the pressure side slipper cam surface got on on the center side slipper cam surface.
- FIG. It is sectional drawing which shows the state of the clutch OFF in the clutch apparatus shown in FIG. It is a perspective view which shows roughly the external appearance structure of the pressure clutch integrated in the clutch apparatus which concerns on the modification of this invention. It is a top view which shows roughly the external appearance structure of the pressure clutch shown in FIG. It is a schematic of the whole structure of the clutch apparatus which concerns on the modification of this invention, and is sectional drawing which shows the state of clutch ON. It is a perspective view which shows roughly the external appearance structure of the center clutch integrated in the clutch apparatus shown in FIG. It is a top view which shows roughly the external appearance structure of the center clutch shown in FIG. It is a perspective view which shows roughly the external appearance structure of the pressure clutch integrated in the clutch apparatus shown in FIG.
- FIG. (A) to (D) schematically show variations in the formation position of the pressure side assist cam surface, pressure side slipper cam surface, center side assist cam surface, and center side slipper cam surface when the support plate is provided in the pressure clutch It is explanatory drawing shown.
- (A) to (D) schematically illustrate variations in the formation position of the center side assist cam surface, center side slipper cam surface, pressure side assist cam surface, and pressure side slipper cam surface when the support plate is provided in the center clutch It is explanatory drawing shown.
- FIG. 1 is a cross-sectional view schematically showing the entire configuration of a clutch device 100 according to the present invention.
- This clutch device 100 is a mechanical device for transmitting and blocking the driving force of an engine (not shown) which is a motor in a two-wheeled vehicle (motorcycle) to a wheel (not shown) which is a driven body. It is disposed between a transmission (not shown).
- the clutch device 100 includes a clutch housing 101.
- the clutch housing 101 is a component for holding the friction plate 103 and transmitting the driving force from the engine to the friction plate 103, and is formed by forming an aluminum alloy material into a cylindrical shape with a bottom. More specifically, an internal gear-like spline is formed in the cylindrical portion of the clutch housing 101, and a plurality of (five in the present embodiment) friction plates 103 are formed on the clutch housing 101. In the state of being able to be displaced along the axial direction of the clutch and capable of integral rotation with the clutch housing 101, it is spline-fitted and held.
- the clutch housing 101 is attached to the input gear 102 by a rivet 101 a via a torque damper (not shown) on the left side in the drawing.
- the input gear 102 is a gear component engaged with a drive gear connected to a drive shaft (not shown) that is rotationally driven by the engine and rotationally driven, and is rotatably supported by a shaft 110 described later via a bearing 102a.
- the clutch housing 101 is rotationally driven integrally with the input gear 102 independently of the shaft 110 at a concentric position with the shaft 110.
- the friction plate 103 is a flat annular component pressed against the clutch plate 104, and is formed by punching a thin plate made of an aluminum material into an annular shape.
- an external tooth that meshes with the internal tooth spline of the clutch housing 101 is formed on the outer peripheral portion of each friction plate 103.
- friction members made of plural pieces of paper are attached and oil grooves (not shown) are formed between the respective friction members.
- these friction plates 103 are formed in the same size and shape, respectively.
- a plurality of (four in the present embodiment) clutch plates 104 are held by the center clutch 105 and the pressure clutch 111 in a state of being sandwiched by the friction plates 103.
- the clutch plate 104 is a flat annular component pressed against the friction plate 103, and is formed by punching out a thin plate made of SPCC (cold rolled steel plate) in an annular shape. Oil grooves (not shown) having a depth of several micrometers to several tens of micrometers for holding clutch oil are formed on both side surfaces (front and back surfaces) of these clutch plates 104, and the purpose is to improve wear resistance. Surface hardening treatment is applied respectively.
- each clutch plate 104 an internal gear shape spline-fitted to the center side fitting portion 108 formed on the center clutch 105 and the pressure side fitting portion 115 formed on the pressure clutch 111 on the inner peripheral portion of each clutch plate 104 Splines are formed respectively.
- the clutch plates 104 are formed in the same size and shape, respectively.
- the friction material may be provided on the clutch plate 104 instead of the friction plate.
- the center clutch 105 is a component for accommodating the clutch plate 104 and the pressure clutch 111 and transmitting the driving force of the engine to the transmission side, as shown in FIGS. 2 and 3, respectively, and is made of an aluminum alloy material. It is formed by being formed into a substantially cylindrical shape. More specifically, the center clutch 105 is mainly configured by integrally forming the center inner ring-shaped protruding portion 105a, the inner plate portion 105b, and the center outer ring-shaped protruding portion 105c.
- the center inner ring-shaped projecting portion 105 a is a portion connected to the shaft 110 while holding the pressure clutch 111, and is formed in a cylindrical shape protruding in an axial direction at an inner edge portion of the center clutch 105.
- An internal gear-like spline is formed along the axial direction of the center clutch 105 on the inner peripheral surface of the center inner ring-like protrusion 105a, and the shaft 110 is spline-fitted to this spline. That is, the center clutch 105 integrally rotates with the shaft 110 at a position concentric with the clutch housing 101 and the shaft 110.
- the inner plate portion 105 b is a portion formed between the center inner ring-shaped protrusion portion 105 a and the center outer ring-shaped protrusion portion 105 c, and is formed between the three center-side cam portions 106 arranged in a circumferential shape. Two pillar through holes 107 are formed and configured, respectively.
- the three center side cam portions 106 are convex portions that form the center side assist cam surface 106 a and the center side slipper cam surface 106 b, and are formed to extend along the circumferential direction of the center clutch 105. In this case, the three center cams 106 are equally formed along the circumferential direction of the center clutch 105.
- a center side assist cam surface 106a and a center side slipper cam surface 106b are respectively formed at both ends of the center cam portion 106 in the circumferential direction of the center clutch 105.
- Each center side assist cam surface 106a is a portion for generating an assist torque which is a force to increase the pressure contact force between the friction plate 103 and the clutch plate 104 in cooperation with the pressure side assist cam surface 112a described later.
- sloped surfaces are formed to gradually project to the pressure clutch 111 side.
- each center-side assist cam surface 106 a is formed in a direction facing each support column through hole 107.
- each center-side assist cam surface 106a is in the vicinity of the center-side fitting portion 108 formed on the radially outer periphery in a state where the center-side cam portion 106 is integrally connected to the center inner ring-shaped protrusion 105a. It is formed extending to the end.
- Each center-side slipper cam surface 106b cooperates with a pressure-side slipper cam surface 112b described later to generate slipper torque which is a force to quickly separate the friction plate 103 and the clutch plate 104 and shift to a half clutch state.
- the center-side assist cam surface 106a is an inclined surface that is inclined in the same direction as the center-side assist cam surface 106a on the opposite side in the circumferential direction.
- each center side slipper cam surface 106b is formed in a direction facing the pressure clutch 111 side opposite to the center side assist cam surface 106a.
- Each center-side slipper cam surface 106 b is formed to extend radially outward in a state in which the center-side cam portion 106 is integrally connected to the center inner ring-shaped projecting portion 105 a.
- each center side slipper cam surface 106b is formed to have a length shorter than the length of each center side assist cam surface 106a extending in the radial direction.
- each center side slipper cam surface 106b is formed in an area smaller than the area of each center side assist cam surface 106a at a position inside the radial position where each center side assist cam surface 106a is formed.
- the three column through holes 107 are through holes for respectively passing through three cylindrical columns 113 described later.
- the three column through holes 107 are equally formed along the circumferential direction of the center clutch 105 at positions between the three center side cam portions 106.
- the center outer ring-like protrusion 105c is a portion for holding a part of the plurality of clutch plates 104, and is formed in a cylindrical shape projecting in a ring shape in the axial direction at the outer edge of the center clutch 105 and this cylinder The end of the portion formed in a shape is formed in a flange shape so as to protrude.
- a center side fitting portion 108 is formed on the outer peripheral surface of the cylindrically formed portion of the center outer ring-like protruding portion 105c.
- the center side fitting portion 108 is a portion that holds the clutch plate 104 so as to be displaceable along the axial direction of the center clutch 105 with the friction plate 103 interposed therebetween and to be integrally rotatable with the center clutch 105. It is composed of toothed gear-like splines. Further, in the center side fitting portion 108, protruding teeth 108a are formed on a part of the spline that constitutes the center side fitting portion 108.
- the protruding teeth 108 a are portions for preventing the clutch plate 104 and / or the friction plate 103 from falling off, and one of the spline teeth constituting the center side fitting portion 108 corresponds to the pressure side fitting portion 115 of the pressure clutch 111. It is formed to extend to a length reaching the relief portion 115a.
- the protruding teeth 108a are formed at positions adjacent to the three center side cam portions 106 in the radial direction outer side of the center clutch 105, respectively. That is, three protruding teeth 108 a are provided in a uniform arrangement along the circumferential direction of the center clutch 105.
- the shaft 110 is a hollow shaft, and one end (left side in the figure) rotatably supports the input gear 102 and the clutch housing 101 via the cylindrical bearing 102 a at the end side thereof and the spline fitting
- the center clutch 105 to be engaged is fixedly supported via a nut 110a.
- the other end (left side in the figure) of the shaft 110 is connected to a transmission (not shown) in the two-wheeled vehicle. That is, the shaft 110 corresponds to the driven shaft in the present invention.
- the pressure clutch 111 is a component for bringing the friction plate 103 and the clutch plate 104 into close contact with each other by pressing the friction plate 103, and the outer diameter of the aluminum alloy material is substantially the same as the outer diameter of the clutch plate 104. Is formed into a substantially disk shape. More specifically, as shown in FIG. 4, the pressure clutch 111 is mainly configured by integrally forming the inner side plate portion 111 a and the pressure outer ring-shaped protruding portion 111 b.
- the inner side plate portion 111a has three cylindrical columns 113 between three pressure side cam portions 112 arranged circumferentially, respectively, on the outer peripheral surface of the center inner ring-shaped projecting portion 105a in the center clutch 105. It fits in a slidable state. That is, the pressure clutch 111 is rotatably provided independently of the center clutch 105 and the shaft 110 at a position concentric with the clutch housing 101, the center clutch 105 and the shaft 110.
- the three pressure side cam portions 112 are convex portions forming the pressure side assist cam surface 112 a and the pressure side slipper cam surface 112 b, and are formed extending in the circumferential direction of the pressure clutch 111. In this case, the three pressure side cam portions 112 are equally formed along the circumferential direction of the pressure clutch 111.
- a pressure side assist cam surface 112 a and a pressure side slipper cam surface 112 b are respectively formed at both end portions of the pressure side cam portion 112 in the circumferential direction of the pressure clutch 111.
- Each pressure-side assist cam surface 112 a slides on the center-side assist cam surface 106 a of the center clutch 105, and is an inclined surface that gradually protrudes toward the center clutch 105 along the circumferential direction of the pressure clutch 111. It consists of That is, the center side assist cam surface 106 a and the pressure side assist cam surface 112 a constitute an assist mechanism.
- Each pressure side assist cam surface 112 a is formed to extend to the radially inner cylindrical support 113 in a state where the pressure side cam portion 112 is integrally connected to a pressure side fitting portion 115 described later.
- Each pressure-side slipper cam surface 112b slides on the center-side slipper cam surface 106b, and extends in the same direction as the pressure-side assist cam surface 112a in the opposite circumferential direction to the pressure-side assist cam surface 112a.
- Each is configured with an inclined surface. That is, the center side slipper cam surface 106b and the pressure side slipper cam surface 112b constitute a slipper mechanism.
- Each of the pressure side slipper cam surfaces 112 b has a radially inner cylindrical support in a state where the pressure side cam portion 112 is integrally connected to the pressure side fitting portion 115 in the same manner as the pressure side assist cam surfaces 112 a. It is formed extending to 113. That is, each pressure side slipper cam surface 112b is formed to have the same length and area as each pressure side assist cam surface 112a in the radial direction and in the area. As a matter of course, each pressure side slipper cam surface 112b may be formed in the same area as the center side slipper cam surface 106b at a position facing the center side slipper cam surface 106b.
- the three cylindrical columns 113 are cylindrical portions extending in a columnar shape in the axial direction of the center clutch 105 in order to support the support plate 114a, and female screws on the inner periphery of which the mounting bolts 114b are screw fitted It is formed. These three cylindrical supports 113 are formed equally along the circumferential direction of the pressure clutch 111.
- the support plate 114a is a component for sandwiching the clutch spring 114c with the inner side plate portion 105b of the center clutch 105, and is formed by forming a metal material in a plate shape in a flat ring shape.
- the support plate 114 a is attached to the pressure clutch 111 via a mounting bolt 114 b at a position opposite to the center clutch 105 on the opposite side to the pressure clutch 111, and the center clutch 105 is integrated with the pressure clutch 111. And relative rotation while rotating. Further, a release pin 114d is provided at the center of the support plate 114a via a bearing.
- the clutch spring 114c is an elastic body for pressing the pressure outer ring-shaped projection 111b of the pressure clutch 111 against the friction plate 103 by pressing the pressure clutch 111 toward the center clutch 105, and spirally winds spring steel. It consists of a coil spring. The clutch spring 114 c is disposed between each of the three cylindrical columns 113.
- the release pin 114d is a rod-like component for pressing the support plate 114a when the transmission state of the rotational drive force of the clutch device 100 is in the disconnected state, and one end (right side in the figure) is a clutch release mechanism not shown. It is connected.
- the clutch release mechanism is a mechanical device that presses the release pin 114d toward the shaft 110 by the operation of a clutch control lever (not shown) of the driver of the mobile vehicle on which the clutch device 100 is mounted.
- the pressure outer ring-shaped protrusion 111b is a portion holding the other part of the plurality of clutch plates 104, and is formed in a cylindrical shape protruding in a ring shape in the axial direction of the outer edge portion of the pressure clutch 111.
- the end of the cylindrically formed portion is formed in a flange-like shape.
- a pressure side fitting portion 115 is formed on the outer peripheral surface of the cylindrically formed portion of the pressure outer ring-shaped projecting portion 111b.
- the pressure side fitting portion 115 holds the clutch plate 104 together with the friction plate 103 so as to be displaceable along the axial direction of the pressure clutch 111 and to be integrally rotatable with the pressure clutch 111. It consists of a spline of the shape of a circle.
- the splines constituting the pressure side fitting portion 115 are formed with the same tip circle, bottom circle and tooth thickness as the splines constituting the center side fitting portion 108, and the center side fitting portion 108. Is formed with a shorter tooth width than the spline teeth that make up the. Further, in the pressure side fitting portion 115, a relief portion 115 a is formed in a part of the spline that constitutes the pressure side fitting portion 115.
- the relief portion 115a is a portion for preventing physical interference of the protruding teeth 108a, and one of the spline teeth constituting the pressure side fitting portion 115 is omitted, and is configured as a curved surface. More specifically, in the relief portion 115a, one spline tooth on the pressure side fitting portion 115 where the protruding tooth 108a is located is omitted, and both sides in the circumferential direction with respect to the omitted spline tooth are respectively It consists of a flat circular arc surface without unevenness which is directly connected flush with the two adjacent tooth bases. Therefore, the relief portions 115 a are formed in a uniform arrangement along the circumferential direction of the pressure clutch 111 corresponding to the three projecting teeth 108 a.
- a predetermined amount of clutch oil (not shown) is filled in the clutch device 100.
- the clutch oil is mainly supplied between the friction plate 103 and the clutch plate 104 to prevent absorption of friction heat generated between them and wear of the friction material. That is, the clutch device 100 is a so-called wet multi-plate friction clutch device.
- clutch device 100 is a clutch in the case where the driver (not shown) of the vehicle does not operate the clutch operation lever (not shown). Since the release mechanism (not shown) does not press the release pin 114d, the pressure clutch 111 presses the friction plate 103 by the elastic force of the clutch spring 114c. As a result, the center clutch 105 is rotationally driven with the friction plate 103 and the clutch plate 104 pressed against each other to be in a frictionally coupled clutch-on state. That is, the rotational driving force of the prime mover is transmitted to the center clutch 105, and the shaft 110 is rotationally driven.
- the pressure clutch 111 is pressed by the cam action (arrow a in the figure) in which the pressure side assist cam surface 112a formed in the pressure clutch 111 rides on the center side assist cam surface 106a formed in the center clutch 105. Is displaced in the direction of approaching while relatively rotating with respect to the center clutch 105 (arrow b in the figure), and the assist function in which the pressing force is intensified sharply acts.
- the pressure clutch 111 is pressed against the center clutch 105 by a strong force by the assist mechanism.
- the assist torque Ta by which the pressure clutch 111 is pressed against the center clutch 105 is defined by the following equation 1.
- ⁇ a is a friction coefficient at the assist contact surface Fa where the center side assist cam surface 106 a and the pressure side assist cam surface 112 a make frictional contact
- Ra is the effective diameter of the assist contact surface Fa
- Pa is a rotational driving force from the driving shaft side acting on the center clutch 105.
- the effective diameter Ra of the assist contact surface Fa is the center position of the rotation center O of the center clutch 105 (or pressure clutch 111) and the central position of the radial width of the center clutch 105 (or pressure clutch 111) Distance between In FIG. 3, the assist contact surface Fa is shown by light hatching and the slipper contact surface Fs is shown by dark hatching.
- Ta ⁇ a ⁇ Ra ⁇ Pa
- the slipper torque Ts which acts when the pressure clutch 111 is separated from the center clutch 105, is defined by the following equation 2 as in the case of the assist torque Ta.
- ⁇ b is a coefficient of friction at the slipper contact surface Fs where the center side slipper cam surface 106b and the pressure side slipper cam surface 112b make frictional contact
- Rs is the effective diameter of the slipper contact surface Fs
- Ps ′ ′ is a rotational driving force from the driven shaft side acting on the pressure clutch 111.
- the clutch device 100 can set the assist torque Ta and the slipper torque Ts to desired torque values according to the effective diameter Ra of the assist contact surface Fa and the effective diameter Rs of the slipper contact surface Fs.
- the projecting teeth 108a formed on the center outer ring-shaped projecting portion 105c of the center clutch 105 are located on the relief portion 115a formed on the pressure side fitting portion 115 of the pressure clutch 111. It overlaps with each other. For this reason, the friction plate 103 and / or the clutch plate 104 present at the boundary between the center side fitting portion 108 and the pressure side fitting portion 115 have the center outer ring-like protrusion 105c and the pressure outer ring shaped by the projecting teeth 108a. It does not fall off from the protrusion part 111b, respectively.
- the protruding teeth 108a are rotationally displaced relative to the pressure clutch 111, but the pressure side fitting portion 115 of the pressure clutch 111 is in contact with the tooth bottom where the relief portion 115a is adjacent. Since they are integrally connected integrally and flush, there is no physical interference such as collision with the spline teeth constituting the pressure side fitting portion 115.
- the clutch release mechanism presses the release pin 114d. It is displaced in a direction away from the center clutch 105 against the elastic force of the clutch spring 114c. As a result, the center clutch 105 is in the clutch-off state in which the frictional connection between the friction plate 103 and the clutch plate 104 is released, so that the rotational drive is attenuated or the rotational drive is stopped. That is, the rotational driving force of the prime mover is interrupted with respect to the center clutch 105.
- the projecting teeth 108 a formed on the center outer ring-shaped projecting portion 105 c in the center clutch 105 are heavy on the relief portion 115 a formed in the pressure side fitting portion 115 in the pressure clutch 111.
- the gap between the end face on the center side of the center side fitting portion 108 and the end face on the pressure side of the pressure side fitting portion 115 are weak.
- the friction plate 103 and / or the clutch plate 104 existing at the boundary between the center side fitting portion 108 and the pressure side fitting portion 115 have the center outer ring-like protruding portion 105c and the pressure outer side by the protruding teeth 108a. It does not fall off from the ring-shaped protrusion 111b.
- the clutch device 100 includes the assist contact surface Fa, which is the contact surface between the center assist cam surface 106a and the pressure assist cam surface 112a, and the center slipper cam.
- Different desired torque values can be set by forming slipper contact surfaces Fs, which are contact surfaces between the surface 106b and the pressure side slipper cam surface 112b, at different positions in the radial direction of the center clutch 105. it can.
- the clutch device 100 forms the center-side slipper cam surface 106b at a position radially inward with respect to the center-side assist cam surface 106a, whereby the slipper contact surface to the assist contact surface Fa Fs was formed at the radially inner position of the center clutch 105.
- the positions of the center side assist cam surface 106 a and the center side slipper cam surface 106 b in the radial direction are compared at the central positions of the widths of the assist contact surface Fa and the slipper contact surface Fs in the radial direction.
- the pressure side assist cam surface 112a and the pressure side slipper cam surface 112b are formed at the same position and the same length in the radial direction of the pressure clutch 111 (center clutch 105). That is, the clutch device 100 forms the center side slipper cam surface 106b in a state of being integrally connected to the outer surface of the center inner ring-like protrusion 105a in the center clutch 105, and the radial length of the center side assist cam surface 106a. Formed in a shorter length.
- the clutch device 100 can facilitate the formation of each cam surface, and can improve the rigidity of each of the cam surfaces and the center inner ring-shaped protrusion 105 a.
- the slipper contact surface Fs may be formed at a position on the inner side in the radial direction of the center clutch 105 with respect to the assist contact surface Fa, and is not necessarily limited to the above embodiment. Therefore, for example, instead of or in addition to forming the center side slipper cam surface 106b at the radially inner position with respect to the center side assist cam surface 106a, the clutch device 100 can generate the pressure side assist cam surface 112a.
- the pressure side slipper cam surface 112b may be formed at a radially inner position.
- the slipper contact surface Fs was formed in the position inside the radial direction of the center clutch 105 with respect to the assist contact surface Fa.
- the clutch device 100 can generally give the driver the feeling of the clutch device in which the difference between the slipper torque Ts and the assist torque Ta is increased.
- the positions of the center assist cam surface 106a and the pressure side assist cam surface 112a, and the center slipper cam surface 106b and the pressure slipper cam surface 112b in the radial direction of the center clutch 105 are different from each other. It should be formed.
- the clutch device 100 has the pressure side slipper cam surface 112b and the pressure side assist cam surface 112a with respect to the radial direction of the pressure clutch 111 (center clutch 105).
- the slipper contact surface Fs can also be formed at the outer position of the center clutch 105 in the radial direction with respect to the assist contact surface Fa. That is, the clutch device 100 has the center side slipper cam surface 106b and / or the pressure side slipper cam surface 112b outside of the center clutch 105 in the radial direction with respect to the center side assist cam surface 106a and / or the pressure side assist cam surface 112a.
- the slipper contact surface Fs can also be formed at a position on the radially outer side of the center clutch 105 with respect to the assist contact surface Fa. According to these, the clutch device 100 can generally give the driver the feeling of the clutch device in which the difference between the slipper torque Ts and the assist torque Ta is reduced.
- the clutch device 100 is integrally connected to the inner surface of the pressure outer ring-shaped protrusion 111b in the pressure clutch 111.
- the pressure side slipper cam surface 112b By forming the pressure side slipper cam surface 112b in a state and forming a length shorter than the radial length of the pressure side assist cam surface 112a, molding of each cam can be facilitated, and each of these cams can be formed.
- the rigidity of the surface and pressure outer ring-shaped projection 111b can be improved.
- the assist contact surface Fa is shown by light hatching and the slipper contact surface Fs is shown by dark hatching.
- the slipper contact surface Fs is formed by the area smaller than the contact area of the assist contact surface Fa. According to this, the clutch device 100 can miniaturize the configuration of the portion constituting the center side slipper cam surface 106b and the pressure side slipper cam surface 112b, and can reduce the weight of the center clutch 105 and the pressure clutch 111.
- the slipper contact surface Fs can also be formed to be the same as or larger than the contact area of the assist contact surface Fa.
- the clutch device 100 is configured as a so-called external type in which the clutch is disengaged when a clutch release mechanism (not shown) provided outside the clutch device 100 presses the release pin 114d.
- the clutch device according to the present invention can be configured as a so-called internal cutting type in which the clutch is released by the clutch release mechanism provided inside the clutch device.
- the clutch device 200 includes a clutch housing 101, an input gear 102, a friction plate 103, a clutch plate 104, a center clutch 105, a center side cam portion 106, a column through hole 107, and a center side.
- Clutches corresponding to the fitting portion 108, the shaft 110, the pressure clutch 111, the pressure side cam portion 112, the cylindrical support 113, the support plate 114a, the mounting bolt 114b, the clutch spring 114c, the release pin 114d and the pressure side fitting portion 115 Housing 201, input gear 202, friction plate 203, clutch plate 204, center clutch 205, center side cam portion 206, column through hole 207, center side fitting portion 208, shaft 21 , Pressure clutch 211, pressure side cam portion 212, the tubular struts 213, support plate 214a, the mounting bolts 214b, is configured to include respective clutch spring 214c, the release pin 214d and the pressure-side fitting portion 215.
- the center clutch 205 is formed in a state in which the center side cam portion 206 is integrally connected to the inside of the center inner ring-shaped protruding portion 205a formed to extend cylindrically on the pressure clutch 211 side and the inner plate A cylindrical support 213 is formed on the portion 205b. Further, the cylindrical support 213 is a portion of three columns to which the support plate 214a is attached by the mounting bolt 214b through the inside of the support through hole 207 and is integrally formed with the center clutch 205.
- the pressure clutch 211 has an inner side of the pressure side fitting portion 215 having a diameter larger than that of the center side fitting portion 208 (in other words, in the present invention, the projecting teeth 108a and the relief portion 115a in the above embodiment are not essential components).
- pillar through-hole 207, and the pressure inner ring-shaped protrusion part 216 are each formed in the inner side board part 211a formed in this.
- the column through hole 207 is a portion through which the cylindrical column 213 penetrates in a state in which the clutch spring 214 c is accommodated, and is formed in a bottomed cylindrical shape protruding toward the center clutch 205 side.
- the pressure inner ring-shaped protrusion 216 is a cylindrical portion formed to protrude in a ring shape in the axial direction at the inner edge portion of the pressure clutch 211, and is provided on the inner side of each of the column through hole 207 and the pressure side cam portion 212. It is formed of the outer surface.
- a push rod 217 is provided slidably.
- the push rod 217 is a rod-like component for bringing the clutch into the OFF state by pressing the release pin 214d.
- the push rod 217 constitutes the clutch release mechanism together with components such as an actuator (not shown) made of a motor for driving the push rod 217.
- the positions of the assist contact surface Fa and the slipper contact surface Fs in the radial direction of the center clutch 205 can be made different.
- the clutch device 200 forms the slipper contact surface Fs on the outer side in the radial direction with respect to the assist contact surface Fa, as shown in FIGS.
- the center side assist cam surface 206a and the center side slipper cam surface 206b can be extended and formed radially inward from the three center side cam portions 206 integrally formed on the inner side surface of the portion 205c.
- each center side slipper cam surface 206b is formed to have a length shorter than the length of each center side assist cam surface 206a extending in the radial direction.
- each center-side slipper cam surface 206b is formed at a position smaller than the area of each center-side assist cam surface 206a at a position outside the radial position where the center-side assist cam surface 206a is formed.
- the pressure side assist cam surface 212a and the pressure side are directed radially outward from the three pressure side cam portions 212 integrally formed on the outer side surface of the pressure inner ring-like protruding portion 216.
- Slipper cam surfaces 212b are respectively extended and formed.
- the pressure side slipper cam surface 212b may be formed to have the same radial length as the pressure side assist cam surface 212a, or the same length at the position corresponding to the center side slipper cam surface 206b. You may form.
- the clutch device 200 is integrally connected to the inner side surface of the center outer ring-like protruding portion 205c in the center clutch 205.
- the center side slipper cam surface 206b By forming the center side slipper cam surface 206b in a state and forming a length shorter than the radial length of the center side assist cam surface 206a, molding of each cam can be facilitated, and each of these cams is formed.
- the rigidity of the surface and center outer ring-like protrusion 205c can be improved.
- the assist contact surface Fa is shown by light hatching and the slipper contact surface Fs is shown by dark hatching.
- the clutch device 200 includes a pressure inner ring in the pressure clutch 211.
- the pressure-side assist cam surface 212a and the pressure-side slipper cam surface 212b can be formed so as to extend radially outward from the three pressure-side cam portions 212 integrally formed on the outer side surface of the protruding portion 216.
- each pressure side slipper cam surface 212b is formed to have a length shorter than the length of each pressure side assist cam surface 212a extending in the radial direction.
- each pressure-side slipper cam surface 212b is formed at a position smaller than the area of each pressure-side assist cam surface 212a at a position inside the radial position where the pressure-side assist cam surface 212a is formed.
- the center side assist cam surface 206a and the center side are directed radially inward from the three center side cam portions 206 integrally formed on the inner side surface of the center outer ring shaped projecting portion 205c.
- Slipper cam surfaces 206b are respectively extended and formed.
- the center side slipper cam surface 206b may have the same radial length as the center side assist cam surface 206a, or the same length at the position corresponding to the pressure side slipper cam surface 212b. You may form.
- each pressure side slipper cam surface 212b is integrally connected to the outer surface of the pressure inner ring-shaped protrusion 216 in the pressure clutch 211
- each pressure side slipper cam surface 212b is formed in a state and forming a length shorter than the radial length of each pressure side assist cam surface 212a, molding of each cam can be facilitated, and these The rigidity of each cam surface and the pressure inner ring-like protrusion 216 can be improved.
- the assist contact surface Fa is shown by light hatching and the slipper contact surface Fs is shown by dark hatching.
- the pressure side assist cam surfaces 112a and 212a and the pressure side slipper cam surfaces 112b and 212b are formed only on the pressure clutches 111 and 211, respectively.
- the pressure side assist cam surfaces 112 a and 212 a and the pressure side slipper cam surfaces 112 b and 212 b may be formed to face the center clutches 105 and 205. Therefore, as shown in FIGS. 14B to 14D, the pressure side assist cam surfaces 112a and 212a and the pressure side slipper cam surfaces 112b and 212b are at least one side of the pressure clutch 111 with respect to the center clutches 105 and 205, respectively. , 211, and may be formed on the support plates 114a and 214a that rotate integrally.
- the pressure outer ring projections 111b and 211b and the pressure inner ring projections 216 can also be formed on the support plates 114a and 214a.
- the center side assist cam surfaces 106a and 206a and the center side slipper cam surfaces 106b and 206b are formed on the support plates 114a and 214a of the center clutches 105 and 205, respectively. Or it is formed in the surface of the side opposite to pressure side slipper cam surface 112b, 212b.
- the support plates 114a and 214a are integrally coupled to the pressure clutches 111 and 211 at positions facing the center clutches 105 and 205, and integrally with the pressure clutches 111 and 211. It is configured to rotate.
- the support plates 114a and 214a are integrally connected to the center clutches 105 and 205 at positions facing the pressure clutches 111 and 211, respectively. It can also be configured to rotate integrally with 205.
- the center side assist cam surfaces 106a and 206a and the center side slipper cam surfaces 106b and 106b can be formed only on the center clutches 105 and 205, as shown in FIG. Further, as shown in FIGS. 15B to 15D, at least one of the center side assist cam surfaces 106a and 206a and the center side slipper cam surfaces 106b and 106b is a center clutch 105 with respect to the pressure clutches 111 and 211. , 205 can be formed integrally with the support plates 114a, 214a.
- center outer ring projections 105c and 205c and the center inner ring projections 105a and 205a can also be formed on the support plates 114a and 214a.
- the pressure side assist cam surfaces 112a and 212a and the pressure side slipper cam surfaces 112b and 212b are formed on the support plates 114a and 214a of the pressure clutches 111 and 211, respectively. Or it is formed in the surface of the side opposite to center side slipper cam surface 106b, 206b.
- FIGS. 14 (A) to (D) and FIGS. 15 (A) to (D) the pressure side assist cam surfaces 112a and 212a and the center side assist cam surfaces 106a and 206a are shown in a box with "A”.
- the pressure-side slipper cam surfaces 112b and 212b and the center-side slipper cam surfaces 106b and 206b are indicated by boxes indicated by "S”.
- Center inner ring-like protrusion part 105b ... inner side Plate portion, 105c: Center outer ring-like projecting portion, 106: Center side cam portion, 106a: Center side assist cam surface, 106b: Center side slipper cam surface, 107: post through hole, 108: center side fitting portion, 108a ...
- protruding teeth 110: shaft, 110a: nut, 111: pressure clutch, 111a: inner plate portion, 111b: pressure outer ring-like protrusion, 112: pressure side cam portion, 112a: pressure side assist cam surface, 112b: pressure side slipper cam surface 113: cylindrical post, 114a: support plate, 114b: mounting bolt, 114c: clutch spring, 114d: release pin, 115: pressure side fitting portion, 115a: relief portion, DESCRIPTION OF SYMBOLS 200 ... Clutch apparatus, 201 ... Clutch housing, 202 ... Input gear, 203 ... Friction plate, 204 ... Clutch plate, 205 ... Center clutch, 205a ...
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- Engineering & Computer Science (AREA)
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- Mechanical Engineering (AREA)
- Mechanical Operated Clutches (AREA)
- One-Way And Automatic Clutches, And Combinations Of Different Clutches (AREA)
Abstract
Description
クラッチ装置100は、クラッチハウジング101を備えている。クラッチハウジング101は、フリクションプレート103を保持するとともにこのフリクションプレート103にエンジンからの駆動力を伝達するための部品であり、アルミニウム合金材を有底円筒状に成形して構成されている。より具体的には、クラッチハウジング101の筒状部には、内歯歯車状のスプラインが形成されており、このスプラインに複数枚(本実施形態においては5枚)のフリクションプレート103がクラッチハウジング101の軸線方向に沿って変位可能、かつ同クラッチハウジング101と一体回転可能な状態でスプライン嵌合して保持されている。
次に、上記のように構成したクラッチ装置100の作動について説明する。このクラッチ装置100は、前記したように、車両におけるエンジンと変速機との間に配置されるものであり、車両の運転者によるクラッチ操作レバーの操作によってエンジンの駆動力の変速機への伝達および遮断を行なう。
(数1)
Ta=μa×Ra×Pa
(数2)
Ts=μs×Rs×Ps
100…クラッチ装置、101…クラッチハウジング、101a…リベット、102…入力ギア、102a…軸受、103…フリクションプレート、104…クラッチプレート、105…センタークラッチ、105a…センター内側リング状突出部、105b…内側板部、105c…センター外側リング状突出部、106…センター側カム部、106a…センター側アシストカム面、106b…センター側スリッパカム面、107…支柱貫通孔、108…センター側嵌合部、108a…突出歯、
110…シャフト、110a…ナット、111…プレッシャークラッチ、111a…内側板部、111b…プレッシャー外側リング状突出部、112…プレッシャー側カム部、112a…プレッシャー側アシストカム面、112b…プレッシャー側スリッパカム面、113…筒状支柱、114a…サポートプレート、114b…取付ボルト、114c…クラッチスプリング、114d…レリーズピン、115…プレッシャー側嵌合部、115a…逃げ部、
200…クラッチ装置、201…クラッチハウジング、202…入力ギア、203…フリクションプレート、204…クラッチプレート、205…センタークラッチ、205a…センター内側リング状突出部、205b…内側板部、205c…センター外側リング状突出部、206…センター側カム部、206a…センター側アシストカム面、206b…センター側スリッパカム面、207…支柱貫通孔、208…センター側嵌合部、210…シャフト、211…プレッシャークラッチ、211a…内側板部、211b…プレッシャー外側リング状突出部、212…プレッシャー側カム部、212a…プレッシャー側アシストカム面、212b…プレッシャー側スリッパカム面、213…筒状支柱、214a…サポートプレート、214b…取付ボルト、214c…クラッチスプリング、214d…レリーズピン、215…プレッシャー側嵌合部、216…プレッシャー内側リング状突出部、217…プッシュロッド。
Claims (8)
- 原動軸の回転駆動力を従動軸に伝達または遮断するクラッチ装置において、
前記原動軸の回転駆動によって回転駆動するフリクションプレートに対向配置されるクラッチプレートを保持するとともに前記従動軸に連結されるセンタークラッチと、
前記センタークラッチに対して接近または離隔可能かつ相対回転可能な状態で対向配置されて前記フリクションプレートまたは前記クラッチプレートを弾性的に押圧するプレッシャークラッチとを備え、
前記プレッシャークラッチは、
軸方向に張り出した傾斜面からなるプレッシャー側アシストカム面およびプレッシャー側スリッパカム面をそれぞれ有しており、
前記センタークラッチは、
前記プレッシャー側アシストカム面が接近する際にこのプレッシャー側アシストカム面と摺動し合って前記接近する力を増加させる傾斜面からなるセンター側アシストカム面および前記プレッシャー側スリッパカム面が離隔する際にこのプレッシャー側スリッパカム面と摺動し合って前記離隔する力を増加させる傾斜面からなるセンター側スリッパカム面をそれぞれ有しており、
前記センター側アシストカム面と前記プレッシャー側アシストカム面との接触面であるアシスト接触面と前記センター側スリッパカム面と前記プレッシャー側スリッパカム面との接触面であるスリッパ接触面とは、前記センタークラッチの径方向の位置が互いに異なる位置に形成されていることを特徴とするクラッチ装置。 - 請求項1に記載したクラッチ装置において、
前記プレッシャークラッチは、
前記センタークラッチに対向配置されて前記プレッシャークラッチとともに一体的に回転する平板リング状のサポートプレートを備えており、
前記プレッシャー側アシストカム面および前記プレッシャー側スリッパカム面のうちの少なくとも一方は、
前記サポートプレートに形成されていることを特徴とするクラッチ装置。 - 請求項1に記載したクラッチ装置において、
前記センタークラッチは、
前記プレシャークラッチに対向配置されて前記センタークラッチと一体的に回転する平板リング状のサポートプレートを備えており、
前記センター側アシストカム面および前記センター側スリッパカム面の少なくとも一方は、
前記サポートプレートに形成されていることを特徴とするクラッチ装置。 - 請求項1ないし請求項3のうちのいずれか1つに記載したクラッチ装置において、
前記スリッパ接触面は、
前記アシスト接触面に対して前記センタークラッチの径方向の内側の位置に形成されていることを特徴とするクラッチ装置。 - 請求項1ないし請求項3のうちのいずれか1つに記載したクラッチ装置において、
前記スリッパ接触面は、
前記アシスト接触面に対して前記センタークラッチの径方向の外側の位置に形成されていることを特徴とするクラッチ装置。 - 請求項1ないし請求項5のうちのいずれか1つに記載したクラッチ装置において、
前記スリッパ接触面は、
前記アシスト接触面の面積よりも小さい面積で形成されていることを特徴とするクラッチ装置。 - 請求項4に記載したクラッチ装置において、
前記センター側スリッパカム面を前記センタークラッチにおける内縁部に軸方向にリング状に突出して形成されたセンター内側リング状突出部側に偏らせて同センター内側リング状突出部に一体的に繋がった状態で形成する、または前記プレッシャー側スリッパカム面を前記プレッシャークラッチにおける内縁部に軸方向にリング状に突出して形成されたプレッシャー内側リング状突出部側に偏らせて同プレッシャー内側リング状突出部に一体的に繋がった状態で形成することを特徴とするクラッチ装置。 - 請求項5に記載したクラッチ装置において、
前記プレッシャー側スリッパカム面を前記プレッシャークラッチにおける外縁部にリング状に突出して形成されたプレッシャー外側リング状突出部側に偏らせて同プレッシャー外側リング状突出部の内側に一体的に繋がった状態で形成する、または前記センター側スリッパカム面を前記センタークラッチにおける外縁部にリング状に突出して形成されたセンター外側リング状突出部側に偏らせて同センター外側リング状突出部の内側に一体的に繋がった状態で形成することを特徴とするクラッチ装置。
Priority Applications (4)
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EP18871169.1A EP3702634B1 (en) | 2017-10-26 | 2018-09-28 | Clutch device |
CN201880061935.7A CN111148917B (zh) | 2017-10-26 | 2018-09-28 | 离合器装置 |
BR112020007559-0A BR112020007559A2 (pt) | 2017-10-26 | 2018-09-28 | dispositivo de embreagem para transmitir força motriz rotativa de um eixo de transmissão á um eixo de transmissão ou bloqueando a transmissão |
US16/753,002 US11215237B2 (en) | 2017-10-26 | 2018-09-28 | Clutch device |
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JP2017207188A JP6553696B2 (ja) | 2017-10-26 | 2017-10-26 | クラッチ装置 |
JP2017-207188 | 2017-10-26 |
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US (1) | US11215237B2 (ja) |
EP (1) | EP3702634B1 (ja) |
JP (1) | JP6553696B2 (ja) |
CN (1) | CN111148917B (ja) |
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Cited By (5)
Publication number | Priority date | Publication date | Assignee | Title |
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US20190285125A1 (en) * | 2018-03-14 | 2019-09-19 | Exedy Corporation | Clutch device |
CN111255816A (zh) * | 2020-01-17 | 2020-06-09 | 重庆隆鑫机车有限公司 | 滑动离合器及发动机 |
JP7225461B1 (ja) | 2022-06-30 | 2023-02-20 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車 |
JP7252405B1 (ja) | 2022-09-28 | 2023-04-04 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車 |
WO2024009771A1 (ja) * | 2022-07-05 | 2024-01-11 | 株式会社エフ・シー・シー | クラッチ装置 |
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IT201700031815A1 (it) * | 2017-03-22 | 2018-09-22 | Adler Spa | Frizione, in particolare frizione per motocicli, e relativo metodo di montaggio |
JP7231333B2 (ja) * | 2018-03-16 | 2023-03-01 | 株式会社エフ・シー・シー | クラッチ装置 |
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WO2023063153A1 (ja) * | 2021-10-14 | 2023-04-20 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車 |
EP4310351A1 (en) * | 2022-07-05 | 2024-01-24 | Kabushiki Kaisha F.C.C. | Clutch device |
JP7403702B1 (ja) * | 2022-07-05 | 2023-12-22 | 株式会社エフ・シー・シー | クラッチ装置 |
JP7212193B1 (ja) * | 2022-07-06 | 2023-01-24 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車 |
JP2024014669A (ja) * | 2022-07-21 | 2024-02-01 | 株式会社エフ・シー・シー | クラッチ装置 |
JP7196356B1 (ja) * | 2022-09-06 | 2022-12-26 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車 |
JP7203271B1 (ja) * | 2022-09-13 | 2023-01-12 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車並びにプレッシャプレートの製造方法 |
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- 2018-09-28 US US16/753,002 patent/US11215237B2/en active Active
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Cited By (11)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20190285125A1 (en) * | 2018-03-14 | 2019-09-19 | Exedy Corporation | Clutch device |
US10895287B2 (en) * | 2018-03-14 | 2021-01-19 | Exedy Corporation | Clutch device |
CN111255816A (zh) * | 2020-01-17 | 2020-06-09 | 重庆隆鑫机车有限公司 | 滑动离合器及发动机 |
JP7225461B1 (ja) | 2022-06-30 | 2023-02-20 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車 |
WO2024004365A1 (ja) * | 2022-06-30 | 2024-01-04 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車 |
JP2024006005A (ja) * | 2022-06-30 | 2024-01-17 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車 |
US11879504B1 (en) | 2022-06-30 | 2024-01-23 | Kabushiki Kaisha F.C.C. | Clutch device and motorcycle |
WO2024009771A1 (ja) * | 2022-07-05 | 2024-01-11 | 株式会社エフ・シー・シー | クラッチ装置 |
JP7252405B1 (ja) | 2022-09-28 | 2023-04-04 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車 |
US11859674B1 (en) | 2022-09-28 | 2024-01-02 | Kabushiki Kaisha F.C.C. | Clutch device and motorcycle |
JP2024048736A (ja) * | 2022-09-28 | 2024-04-09 | 株式会社エフ・シー・シー | クラッチ装置および自動二輪車 |
Also Published As
Publication number | Publication date |
---|---|
BR112020007559A2 (pt) | 2020-09-24 |
US11215237B2 (en) | 2022-01-04 |
JP2019078373A (ja) | 2019-05-23 |
JP6553696B2 (ja) | 2019-07-31 |
EP3702634A1 (en) | 2020-09-02 |
EP3702634B1 (en) | 2023-12-27 |
CN111148917B (zh) | 2021-09-28 |
US20200292010A1 (en) | 2020-09-17 |
CN111148917A (zh) | 2020-05-12 |
EP3702634A4 (en) | 2021-07-14 |
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