Friction clutch for motor vehicles
11815135 · 2023-11-14
Assignee
Inventors
Cpc classification
F16D13/757
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/585
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D13/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/71
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A friction clutch mechanism includes a diaphragm spring, a pressure plate having a peripheral fulcrum acting against a first face of the diaphragm spring, and a pair of axially opposed intermediate fulcrums supported by a clutch cover and acting on the opposite faces of the diaphragm spring along a radially intermediate portion thereof. The friction clutch mechanism has an additional elastic element, operatively associated with a first intermediate fulcrum of the pair of axially opposed intermediate fulcrums, and axially and elastically compressible in response to a deflection of the diaphragm spring towards an open friction condition. The additional elastic element has a radially innermost annular portion resting on one or more bearing surfaces supported by the clutch cover, and a radially outermost annular portion that cantilevers and has a protrusion circumferentially extended and axially projecting towards the first face of the diaphragm spring to serve as the first intermediate fulcrum.
Claims
1. A friction clutch mechanism for motor vehicles, comprising: a diaphragm spring having a first face and a second face opposite the first face, a pressure plate with at least one peripheral fulcrum acting against the first face of the diaphragm spring along a radially outer portion thereof, a pair of axially opposed intermediate fulcrums, supported by a clutch cover and acting respectively against the first and second faces of the diaphragm spring along a radially intermediate portion thereof, an additional axially compressible elastic element operatively associated with a first intermediate fulcrum of said pair of axially opposed intermediate fulcrums located on a side of the pressure plate, wherein the additional elastic element is configured and arranged to be axially elastically compressed in response to a deflection of the diaphragm spring towards an open clutch condition; wherein the additional elastic element comprises a single element having an annular disc shape forming a radially innermost annular portion and a radially outermost annular portion, wherein the radially innermost annular portion has a flat annular base resting on one or more bearing surfaces supported directly or indirectly by the clutch cover and facing the clutch cover and the first face of the diaphragm spring, the radially outermost annular portion cantilevers in a radially outward direction from the radially innermost annular portion, and comprises at least one protrusion circumferentially extended and axially projecting towards the first face of the diaphragm spring to serve as the first intermediate fulcrum, and wherein the radially outermost annular portion of the additional elastic element comprises an annular base surface axially spaced from the one or more bearing surfaces.
2. The friction clutch mechanism of claim 1, wherein the one or more bearing surfaces are formed by a plurality of threaded support elements mounted through the clutch cover at circumferentially spaced positions.
3. The friction clutch mechanism of claim 1, wherein the bearing surface for the additional elastic element is presented by a shelf-shaped extension formed as a single piece with the clutch cover.
4. A friction clutch mechanism for motor vehicles, comprising: a diaphragm spring having a first face and a second face opposite the first face, a pressure plate with at least one peripheral fulcrum acting against the first face of the diaphragm spring along a radially outer portion thereof, a pair of axially opposed intermediate fulcrums, supported by a clutch cover and acting respectively against the first and second faces of the diaphragm spring along a radially intermediate portion thereof, an additional axially compressible elastic element operatively associated with a first intermediate fulcrum of said pair of axially opposed intermediate fulcrums located on a side of the pressure plate, wherein the additional elastic element is configured and arranged to be axially elastically compressed in response to a deflection of the diaphragm spring towards an open clutch condition; wherein the additional elastic element comprises a single element having an annular disc shape forming a radially innermost annular portion and a radially outermost annular portion, wherein the radially innermost annular portion has a flat annular base resting on one or more bearing surfaces supported directly or indirectly by the clutch cover and facing the clutch cover and the first face of the diaphragm spring, the radially outermost annular portion cantilevers in a radially outward direction from the radially innermost annular portion, and comprises at least one protrusion circumferentially extended and axially projecting towards the first face of the diaphragm spring to serve as the first intermediate fulcrum, wherein said at least one protrusion comprises at least one bead formed as a single piece with the additional elastic element and axially protruding towards the first face of the diaphragm spring, and wherein said at least one bead extends circumferentially discontinuously along the radially outermost annular portion of said additional elastic element, forming a plurality of radially outer, angularly spaced, elastically flexible tongues.
5. A friction clutch mechanism for motor vehicles, comprising: a diaphragm spring having a first face and a second face opposite the first face, a pressure plate with at least one peripheral fulcrum acting against the first face of the diaphragm spring along a radially outer portion thereof, a pair of axially opposed intermediate fulcrums, supported by a clutch cover and acting respectively against the first and second faces of the diaphragm spring along a radially intermediate portion thereof, an additional axially compressible elastic element operatively associated with a first intermediate fulcrum of said pair of axially opposed intermediate fulcrums located on a side of the pressure plate, wherein the additional elastic element is configured and arranged to be axially elastically compressed in response to a deflection of the diaphragm spring towards an open clutch condition; wherein the additional elastic element-comprises an element having an annular disc shape forming a radially innermost annular portion and a radially outermost annular portion, wherein the radially innermost annular portion has a flat annular base resting on one or more bearing surfaces supported directly or indirectly by the clutch cover and facing the clutch cover and the first face of the diaphragm spring, the radially outermost annular portion cantilevers in a radially outward direction from the radially innermost annular portion, and forms a plurality of radially outer elastically flexible tongues that are angularly spaced apart, wherein at least some of the radially outer elastically flexible tongues define a concave seat facing axially towards the diaphragm spring, and wherein the concave seats together support a toroidal ring axially projecting from the radially outer elastically flexible tongues towards the diaphragm spring to serve as the first intermediate fulcrum.
6. A friction clutch mechanism for motor vehicles, comprising: a diaphragm spring having a first face and a second face opposite the first face, a pressure plate with at least one peripheral fulcrum acting against the first face of the diaphragm spring along a radially outer portion thereof, a pair of axially opposed intermediate fulcrums, supported by a clutch cover and acting respectively against the first and second faces of the diaphragm spring along a radially intermediate portion thereof, an additional axially compressible elastic element operatively associated with a first intermediate fulcrum of said pair of axially opposed intermediate fulcrums located on a side of the pressure plate, wherein the additional elastic element is configured and arranged to be axially elastically compressed in response to a deflection of the diaphragm spring towards an open clutch condition; wherein the additional elastic element has an annular disc shape and forms a plurality of axially elastically compressible and circumferentially discrete portions, and wherein the first intermediate fulcrum is realized as a circumferential bead of a separate annular element, arranged adjacent to the additional elastic element, whereby the axially elastically compressible and circumferentially discrete portions of the additional elastic element elastically contact a face of the separate annular element facing the pressure plate.
7. The friction clutch mechanism of claim 6, wherein the axially elastically compressible and circumferentially discrete portions comprise elastically and axially compressible corrugations.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) In order that the present invention may be clearly understood, some preferred embodiments of the invention will now be described, given by way of example, with reference to the appended drawings, in which:
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DETAILED DESCRIPTION
(18) Referring now to
(19) The friction clutch defines a central actuation axis A (
(20) The diaphragm spring 11 has a first face 11a and a second face 11b opposite the first face. The peripheral fulcrum 16 on the pressure plate 14 acts against the first face 11a of the diaphragm spring 11, along a peripheral or radially outer portion 11c thereof intermediate fulcrums 12, 13 are adapted to cooperate with the diaphragm spring 11 in a radially intermediate area thereof. A first intermediate fulcrum 12 may act against the first face 11a of the diaphragm spring, whereas the second intermediate fulcrum 13 may act against the second face 11b of the diaphragm spring. According to an aspect of the present invention, the transmissibility curve shape is modified, relative to the prior art, by the introduction of an additional elastic element 20, integrated or added to the first intermediate fulcrum of the clutch mechanism.
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(22) According to an embodiment, an additional elastic element 20 is added to the first intermediate fulcrum 12 to modify a specific part of the transmissibility curve. The additional elastic element 20 introduces an additional elastic compliant element into the friction clutch mechanism, which allows the right part of the transmissibility curve D to be modified, by rounding or smoothing the knee of the curve, towards the clutch opening (towards the right in the diagram of
(23) In the embodiment schematically illustrated in
(24) During the last part of the disengagement stroke of the clutch (right section of the curve D in
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(26) The stationary clutch cover 18 has an outer surface 18a and an opposite inner surface 18b wherein a circular groove 18c is formed which holds a component 13, in this example toroidal in shape, that protrudes axially from the clutch cover towards the face 11b of the diaphragm spring and forms the second intermediate fulcrum 13, fixed with respect to the clutch cover 18.
(27) The pressure plate 14 acts axially via the peripheral fulcrum 16 against the peripheral part 11c of the first face 11a of the diaphragm spring 11, in a radially outer position with respect to the intermediate fulcrums 12, 13.
(28) According to the embodiment illustrated in
(29) In the example of
(30) According to the embodiment illustrated in
(31) The radially innermost annular portion 20a has a flat annular base 20c which rests on one or more bearing surfaces 22a presented by the flanges 22 and thus supported, in this example indirectly, by the clutch cover 18. The bearing surfaces 22a face the clutch cover 18 and the first face 11a of the diaphragm spring.
(32) The radially outermost annular portion 20b cantilevers in a radially outward direction from the radially innermost annular portion 20a, and has a circumferentially extended bead 12 axially protruding towards the first face 11a of the diaphragm spring acting as an intermediate fulcrum.
(33) In the embodiment shown in
(34) According to the embodiment illustrated in
(35) The additional elastic element 20 may have a plurality of axial holes 20e circumferentially spaced, preferably equally spaced, for passing the bushings 23 (
(36) In the embodiment of
(37) In the clutch actuation movement, the diaphragm spring 11 flexes (downwards in
(38) In accordance with the embodiment illustrated in
(39) The bead 12 at the free end of the flexible tongues 20f protrudes axially towards the diaphragm spring 11 acting as a first intermediate fulcrum. The diaphragm spring 11, by flexing downwards against the beads 12, flexes the tongues 20f in respective axial planes.
(40) In the example of
(41) According to the embodiment illustrated in
(42) As will be appreciated, the provision of an additional elastic element associated with one of the two intermediate fulcrums allows the torque transmissibility to be improved, making it more gradual; this is achieved by calibrating the compliance by selecting an additional spring having an appropriate stiffness (or elastic constant).
(43) While specific embodiments of the invention have been described, it should be understood that the present disclosure is provided for illustrative purposes only and that the present invention is not to be limited in any way by it. Various modifications will be apparent to those skilled in the art in the light of the foregoing examples. The scope of the invention is limited only by the appended claims.