UNIVERSAL DAMPER AND INTERCHANGEABLE HUB ASSEMBLY
20180073569 · 2018-03-15
Inventors
Cpc classification
F16D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2250/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/644
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2001/103
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/68
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D13/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A clutch disc assembly, comprising a friction plate, a damper fixedly secured to the friction plate, comprising an inwardly facing saline and a retainer plate, the retainer plate comprises a first radially inwardly facing surface and a second radially inwardly facing surface radially offset from the first radially inwardly facing surface, and a hub, the hub comprises a first radially outwardly facing surface having a circumferential groove, a second radially outwardly facing surface having an outer saline that meshes with the inwardly facing saline to non-rotatably connect the hub and the damper, and an internal saline surface.
Claims
1. A clutch disc assembly, comprising: a friction plate; a damper fixedly secured to the friction plate, comprising: an inwardly facing saline; and, a retainer plate, comprising: a first radially inwardly facing surface; and, a second radially inwardly facing surface radially offset from the first radially inwardly facing surface; and, a hub comprising: a first radially outwardly facing surface having a circumferential groove; a second radially outwardly facing surface having an outer saline that meshes with the inwardly facing saline to non-rotatably connect the hub and the damper; and, an internal saline surface.
2. The clutch disc assembly as recited in claim 1, further comprising a retainer ring, wherein the retainer ring is operatively arranged to secure within the circumferential groove.
3. The clutch disc assembly as recited in claim 2, wherein the friction plate, the damper, and the retainer plate are arranged concentrically about an axis of rotation.
4. The clutch disc assembly as recited in claim 3, wherein the hub is operatively arranged to be inserted in the damper in a first axial direction.
5. The clutch disc assembly as recited in claim 4, wherein the hub is operatively arranged to be removed from the damper in a second axial direction.
6. The clutch disc assembly as recited in claim 5, wherein the first radially inwardly facing surface comprises an internal saline operatively arranged to mesh with the outer saline to non-rotatably connect the hub to the damper.
7. The clutch disc assembly as recited in claim 6, wherein the hub, the damper, the retainer plate, and the friction plate are arranged concentrically about the axis of rotation.
8. The clutch disc assembly as recited in claim 7, wherein the second radially inwardly facing surface is operatively arranged to interfere with the outer saline such that, when the outer saline is engaged with the inwardly facing saline, the retainer plate prevents the hub from further movement in the first axial direction.
9. The clutch disc assembly as recited in claim 8, wherein the first radially outwardly facing surface is operatively arranged to be inserted through the second radially inwardly facing surface in the first axial direction such that, when the outer saline is engaged with the inwardly facing saline, the first radially outwardly facing surface extends beyond the second radially inwardly facing surface such that the circumferential groove is exposed.
10. The clutch disc assembly as recited in claim 9, wherein the retainer ring is operatively arranged to interfere with the second radially inwardly facing surface such that, when secured in the circumferential groove, the retainer ring prevents the hub from movement in the second axial direction.
11. The clutch disc assembly as recited in claim 10, wherein the damper comprises one or more damping springs.
12. The clutch disc assembly as recited in claim 11, wherein the internal saline surface comprises an internal saline geometry that is capable of meshing with an input shaft outer saline geometry.
13. A clutch disc assembly, comprising: a friction plate having a through-bore; a retainer plate comprising: a first radially inwardly facing surface having an inwardly facing saline; and, a second radially inwardly facing surface radially offset from the first radially inwardly facing surface; and, a hub comprising: a first radially outwardly facing surface having a circumferential groove; a second radially outwardly facing surface having an outer saline that meshes with the inwardly facing saline to non-rotatably connect the hub and the damper; and, an internal saline surface.
14. The clutch disc assembly as recited in claim 13, wherein the friction plate, the retainer plate, and the hub are arranged concentrically about an axis of rotation.
15. The clutch disc assembly as recited in claim 14, further comprising a retainer ring, wherein the retainer ring is operatively arranged to secure within the circumferential groove.
16. The clutch disc assembly as recited in claim 15, wherein the hub is operatively arranged to be inserted in the friction plate in a first axial direction.
17. The clutch disc assembly as recited in claim 16, wherein the hub is operatively arranged to be removed from the friction plate in a second axial direction.
18. The clutch disc assembly as recited in claim 17, wherein the second radially inwardly facing surface is operatively arranged to interfere with the outer saline such that, when the outer saline is engaged with the inwardly facing saline, the retainer plate prevents the hub from further movement in the first axial direction.
19. The clutch disc assembly as recited in claim 18, wherein the retainer ring is operatively arranged to interfere with the second radially inwardly facing surface such that, when secured in the circumferential groove, the retainer ring prevents the hub from movement in the second axial direction.
20. A method of assembling a clutch disc assembly, the method comprising: non-rotatably securing a retainer plate to a damper, wherein the damper has an internal saline and the retainer plate comprises a first radially inwardly facing surface and a second radially inwardly facing surface radially offset from the second radially inwardly facing surface, wherein the retainer plate is arranged such that the first radially inwardly facing surface is directed toward a front side of the damper; non-rotatably securing the damper to a friction plate, wherein the damper comprises an opening located on the front side of the damper such that the first radially inwardly facing surface of the retainer plate is exposed; inserting, in a first axial direction, a front end of a hub through the opening in the damper, wherein the front end of the hub comprises a circumferential groove; aligning, in a circumferential direction, a rear end of the hub with the internal saline of the damper, wherein the rear end of the hub comprises an outer saline that meshes with the internal saline of the damper; inserting, in the first axial direction, the rear end of the hub into the damper such that the outer saline engages with the internal saline and abuts against the retainer plate; and, affixing a retainer ring to the circumferential groove of the front end of the hub.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] Various embodiments are disclosed, by way of example only, with reference to the accompanying schematic drawings in which corresponding reference symbols indicate corresponding parts, in which:
[0010]
[0011]
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[0017]
DETAILED DESCRIPTION
[0018] At the outset, it should be appreciated that like drawing numbers on different drawing views identify identical, or functionally similar, structural elements. It is to be understood that the claims are not limited to the disclosed aspects.
[0019] Furthermore, it is understood that this disclosure is not limited to the particular methodology, materials and modifications described and as such may, of course, vary. It is also understood that the terminology used herein is for the purpose of describing particular aspects only, and is not intended to limit the scope of the claims.
[0020] Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood to one of ordinary skill in the art to which this disclosure pertains. It should be understood that any methods, devices or materials similar or equivalent to those described herein can be used in the practice or testing of the example embodiments. The assembly of the present disclosure could be driven by hydraulics, electronics, and/or pneumatics.
[0021] It should be appreciated that the term substantially is synonymous with terms such as nearly, very nearly, about, approximately, around, bordering on, close to, essentially, in the neighborhood of in the vicinity of etc., and such terms may be used interchangeably as appearing in the specification and claims. It should be appreciated that the term proximate is synonymous with terms such as nearby, close, adjacent, neighboring, immediate, adjoining, etc., and such terms may be used interchangeably as appearing in the specification and claims. The term approximately is intended to mean values within ten percent of the specified value.
[0022] By non-rotatably connected elements, we mean that: the elements are connected so that whenever one of the elements rotate, all the elements rotate; and relative rotation between the elements is not possible. Radial and/or axial movement of non-rotatably connected elements with respect to each other is possible, but not required.
[0023] Adverting now to the figures,
[0024] To clarify the spatial terminology, objects 12, 13, and 14 are used. An axial surface, such as surface 15 of object 22, is formed by a plane co-planar with axis 11. Axis 11 passes through planar surface 15; however any planar surface co-planar with axis 11 is an axial surface. A radial surface, such as surface 16 of object 13, is formed by a plane orthogonal to axis 11 and co-planar with a radius, for example, radius 17. Radius 17 passes through planar surface 16; however any planar surface co-planar with radius 17 is a radial surface. Surface 18 of object 14 forms a circumferential, or cylindrical, surface. For example, circumference 19 passes through surface 18. As a further example, axial movement is parallel to axis 11, radial movement is orthogonal to axis 11, and circumferential movement is parallel to circumference 19. Rotational movement is with respect to axis 11. The adverbs axially, radially, and circumferentially refer to orientations parallel to axis 11, radius 17, and circumference 19, respectively. For example, an axially disposed surface or edge extends in direction AD, a radially disposed surface or edge extends in direction R, and a circumferentially disposed surface or edge extends in direction CD.
[0025]
[0026] Clutch disc 20 comprises friction plate 22. Friction plate 22 is a double dry clutch friction disc; however, it should be appreciated that any other suitable type of clutch disc (e.g., single dry clutch friction disc) can be used. Friction disc 22 comprises friction material on at least one face (i.e., the face that engages the flywheel) or on both faces. Friction plate 22 can comprise any material suitable for connecting clutch disc 20 to a flywheel to transmit power to an input shaft (e.g., input shaft for a transmission). For example, friction plate 22 can be organic material riveted to wavy metal cushion segments (i.e., marcels), which soften clutch engagement, or rigidly mounted cerametallic friction material.
[0027] Universal damper 30 comprises damping springs 32, opening 36, and retainer plate 38. Universal damper 30 is non-rotatably secured to friction plate 22 with one or more rivets 34. It should be appreciated, however, that any other suitable means of non-rotatably securing universal damper 30 to friction plate 22 can be used. Retainer plate 38 is non-rotatably secured to universal damper 30, and comprises circular retainer plate aperture 40, having diameter d.sub.PLATE, and internal splines 42, having a minor diameter that is greater than or equal to diameter d.sub.PLATE. Retainer plate 38 further comprises abutment 72 located between retainer plate aperture 40 and internal splines 42 (see
[0028] Interchangeable hub 50 is a round tube comprising outer splines 52, retainer ring flange 54, and internal splines 56. Splines are evenly spaced ridges that line the inside and outside wall surface of interchangeable hub 50 to non-rotatably lock friction plate 22, universal damper 30, and interchangeable hub 50 with the input shaft. Internal splines 56 on interchangeable hub 50 should be chosen such that they mesh with the splines on the input shaft. Interchangeable hub 50 has outer diameter d.sub.HUB. Interchangeable hub outer diameter d.sub.HUB is less than retainer plate aperture diameter d.sub.PLATE. Outer splines 52 have major saline diameter d.sub.MAJ that is greater than retainer plate aperture diameter d.sub.PLATE, which causes retainer plate 38 to interfere with interchangeable hub 50 and prevent further axial movement in direction A.D. (see abutment 72 in
[0029] Retainer ring 60 is a fastener that axially locks interchangeable hub 50 into universal damper 30. Retainer ring 60 has outer diameter d.sub.RING, which is greater than retainer plate diameter d.sub.PLATE, and is capable of maintaining its structural dimensions and material properties after being installed in the circumferential groove of retainer ring flange 54. Retainer ring 60 is affixed to interchangeable hub 50 at the exposed retainer ring flange 54 (see
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[0034] It will be appreciated that various aspects of the disclosure above and other features and functions, or alternatives thereof, may be desirably combined into many other different systems or applications. Various presently unforeseen or unanticipated alternatives, modifications, variations, or improvements therein may be subsequently made by those skilled in the art which are also intended to be encompassed by the following claims.
LIST OF REFERENCE NUMERALS
[0035] 10 Cylindrical Coordinate System [0036] 11 Longitudinal Axis [0037] 12 Object [0038] 13 Object [0039] 14 Object [0040] 15 Axial Surface [0041] 16 Radial Surface [0042] 17 Radius [0043] 18 Surface [0044] 19 Circumference [0045] 20 Clutch Disc [0046] 22 Friction plate [0047] 30 Universal Damper [0048] 32 Damping Springs [0049] 34 Rivets [0050] 36 Opening [0051] 38 Retainer Plate [0052] 40 Retainer Plate Aperture [0053] 42 Retainer Plate Internal Splines [0054] 50 Interchangeable Hub [0055] 52 Interchangeable Hub Outer Splines [0056] 54 Retainer Ring Flange [0057] 56 Interchangeable Hub Internal Splines [0058] 60 Retainer Ring [0059] 70 Engagement Length [0060] 72 Abutment [0061] d.sub.PLATE Retainer Plate Aperture Diameter [0062] d.sub.OPEN Universal Damper Opening Diameter [0063] d.sub.HUB Interchangeable Hub Outer Diameter [0064] d.sub.MAJ Interchangeable Hub Major (Outer) Saline Diameter [0065] d.sub.SHAFT Retainer Ring Flange Shaft (Outer) Diameter [0066] d.sub.GROOVE Retainer Ring Flange Groove (Inner) Diameter [0067] d.sub.RING Retainer Ring Outer diameter [0068] AD1 Axial Direction 1 [0069] AD2 Axial Direction 2