FLUID DRAINING THROUGH CLUTCH PLATES HAVING SEPARATOR FEATURES
20180372166 ยท 2018-12-27
Inventors
- Clinton E. Carey (Highland, MI, US)
- Daryl A. Wilton (Macomb, MI, US)
- James M. Hart (Belleville, MI, US)
Cpc classification
F16D13/648
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D28/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/69
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D13/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D28/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A friction clutch assembly for an automatic transmission is provided. The friction clutch assembly is configured to move between an applied position and a released or disengaged position. A plurality of clutch plates may include friction plates and interleaved reaction plates, plus an apply plate and a backing plate. A separator feature is disposed adjacent to at least one of the reaction plates, the friction plates, the apply plate, and the backing plate. At least one of the reaction plates, the friction plates, the apply plate, and the backing plate defines a passage configured to allow fluid to flow through the friction clutch assembly and around the separator feature.
Claims
1. A friction clutch assembly for an automotive transmission, the friction clutch assembly being configured to move between an applied position and a released position, comprising: a plurality of clutch plates including a plurality of friction plates splined to a first transmission member and a plurality of reaction plates interleaved with the plurality of friction plates and splined to a second transmission member; an apply plate disposed adjacent to a first end the plurality of clutch plates; a backing plate disposed adjacent to a second end of the plurality of clutch plates; and a separator feature disposed adjacent to at least one of the reaction plates, the friction plates, the apply plate, and the backing plate, wherein at least one of the reaction plates, the friction plates, the apply plate, and the backing plate defines a passage configured to allow fluid to flow through the friction assembly and around the separator feature.
2. The friction clutch assembly of claim 1, wherein the separator feature is an annular spring plate.
3. The friction clutch assembly of claim 2, the spring plate having a wavy configuration and being piloted by the second transmission member.
4. The friction clutch assembly of claim 3, the first transmission member being an inner hub and the second transmission member being a housing surrounding the plurality of clutch plates, the spring plate being disposed radially outward of the plurality of friction plates.
5. The friction clutch assembly of claim 4, wherein the passage is one of an outer groove and an aperture.
6. The friction clutch assembly of claim 5, wherein each of the reaction plates defines a plurality of passages therein, the plurality of passages being located circumferentially about a central axis and located radially outward of each friction plate.
7. The friction clutch assembly of claim 6, wherein each of the apply plate and the backing plate define a plurality of passages therein.
8. The friction clutch assembly of claim 7, each friction plate having friction material disposed on a face of the friction plate, the friction material defining friction material grooves formed therethrough.
9. The friction clutch assembly of claim 8, further comprising an actuator disposed on one side of the plurality of clutch plates, the actuator being configured to compress the plurality of clutch plates into the applied position, the actuator being one of electric, hydraulic, and pneumatic; and each passage extending radially inwardly from the spring plate.
10. A clutch plate configuration for use in an automotive transmission, the clutch plate configuration comprising: a plurality of reaction plates, each reaction plate of the plurality of reaction plates having a plurality of teeth disposed along an outer diameter, a radial section extending radially inwardly from the outer diameter, and an inner section extending radially inwardly from the radial section, each reaction plate defining a plurality of passages within the radial section of the reaction plate; and a plurality of separator features interleaved with the plurality of reaction plates, each separator feature overlapping with at least one passage of the plurality of passages so that fluid may flow past the plurality of separator features through the plurality of passages, each separator feature being configured to bias the reaction plates apart.
11. The clutch plate configuration of claim 10, further comprising an apply plate disposed adjacent to a first end of the plurality of reaction plates and a backing plate disposed adjacent to a second end of the plurality of reaction plates, the apply plate and the backing plate each having a radial section extending radially inwardly from an outer diameter and an inner section extending radially inwardly from the radial section, each of the apply plate and the backing plate defining a plurality of passages therein, each passage being defined in the radial sections.
12. The clutch plate configuration of claim 11, further comprising a plurality of friction plates interleaved with the plurality of reaction plates, each friction plate being disposed radially inwardly of the radial section of each reaction plate and radially inwardly of the plurality of separator features, the plurality of friction plates being spaced apart from the plurality of separator features, each friction plate having a plurality of teeth extending from an inner diameter of the friction plate.
13. The clutch plate configuration of claim 12, each separator feature being a wavy annular plate.
14. The clutch plate configuration of claim 13, each passage being defined as one of an outer groove and an aperture.
15. The clutch plate configuration of claim 14, each friction plate having friction material disposed on a face of the friction plate, the friction material having grooves formed therethrough to allow fluid to flow past the plurality of friction plates.
16. The clutch plate configuration of claim 15, further comprising an actuator disposed adjacent to the apply plate, the actuator being configured to be engaged and disengaged, the actuator being one of electric, hydraulic, and pneumatic, wherein when the actuator is engaged, the actuator is configured to compress the pluralities of reaction plates and friction plates into an applied position, each separator feature being configured to assist with returning the reaction plates to a separated position when the actuator is disengaged, and wherein each passage extends radially inwardly from the ring plate.
17. A clutch assembly for an automotive transmission, the clutch assembly comprising: a housing having a plurality of internal splines extending radially inwardly from an interior surface of the housing; a hub having a plurality of external splines extending radially outwardly from an outer surface of the hub; a plurality of friction plates, each having a friction plate inner diameter, a friction plate outer diameter, a first face and a second face, each friction plate having a plurality of internal teeth extending from the friction plate inner diameter, at least one of the first and second faces having friction material disposed thereon, the plurality of internal teeth intermeshing with the plurality of external splines extending from the outer surface of the hub; a plurality of reaction plates, each having a reaction plate inner diameter and a reaction plate outer diameter, each reaction plate having a plurality of external teeth extending from the reaction plate outer diameter, the plurality of external teeth intermeshing with the plurality of internal splines extending from the inner surface of the housing, the plurality of reaction plates being interleaved with the plurality of friction plates, each reaction plate having a radial section extending radially inwardly from the reaction plate outer diameter and an inner section extending radially inwardly from the radial section, each reaction plate defining a plurality of passages within the reaction plate, each passage being defined in the radial section of the reaction plate; and a plurality of separator spring plates interleaved with the plurality of reaction plates, the plurality of passages being located to allow fluid to flow past the plurality of separator spring plates through the plurality of passages, each separator spring plate being configured to bias the reaction plates apart, each separator spring plate being disposed radially outwardly of each friction plate outer diameter, the plurality of friction plates being spaced apart from the plurality of separator features.
18. The clutch assembly of claim 17, further comprising an apply plate disposed adjacent to a first end of the pluralities of friction plates and reaction plates and a backing plate disposed adjacent to a second end of the pluralities of friction plates and reaction plates, the apply plate having a radial section extending radially inwardly from an apply plate outer diameter and the backing plate having a radial section extending radially inwardly from a backing plate outer diameter, each of the apply plate and the backing plate having an inner section extending radially inwardly from the radial section, and each of the apply plate and the backing plate defining a plurality of passages therein, each passage being defined in the radial sections.
19. The clutch assembly of claim 18, each separator spring plate being a wavy annular plate, the plurality of passages comprising a plurality of apertures, each separator spring plate overlapping with the plurality of passages.
20. The clutch assembly of claim 19, each friction plate having friction material disposed on a face of the friction plate, the friction material forming friction material grooves therethrough to allow fluid to flow past the plurality of friction plates, the clutch assembly further comprising an actuator disposed adjacent to the apply plate, the actuator being configured to be engaged and disengaged, the actuator being one of electric, hydraulic, and pneumatic, wherein when the actuator is engaged, the actuator is configured to compress the pluralities of reaction plates and friction plates into an applied position, each separator spring plate being configured to assist with returning the plurality of reaction plates to a separated position when the actuator is disengaged, and wherein each passage extends radially inwardly from the ring plate.
Description
DRAWINGS
[0010] The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
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DETAILED DESCRIPTION
[0023] The following description is merely exemplary in nature and is not intended to limit the present disclosure or its application or uses.
[0024] With reference to
[0025] The plurality of interleaved clutch plates 26 includes a first plurality of smaller diameter clutch plates or discs, referred to as friction plates 28, which are slidably coupled to the hub 22 by interengaging male and female splines 30 of the hub 22 with the friction clutch plates 28. Thus, the hub 22 has a plurality of external splines 30 extending radially outwardly from an outer surface of the hub 22. A plurality of teeth 29 extend along an inner diameter 31 of each friction clutch plate 28, and the teeth 29 engage or intermesh with the splines 30 to prevent rotational motion of the friction clutch plates 28 with respect to the hub 22. In accordance with conventional friction clutch practice, at least one face 36 of each of the friction clutch plates or discs 28 includes friction material 38 disposed thereon.
[0026] A second plurality of larger diameter clutch plates or discs, which are referred to as reaction plates 32, are coupled to the housing 24 by interengaging male and female splines 34 of the housing 24 with the reaction plates 32. Thus, the housing 24 has a plurality of internal splines 34 extending radially inwardly from an interior surface of the housing 24. A plurality of teeth 35 extend along an outer diameter 37 of each reaction plate 32, and the teeth 35 engage or intermesh with the splines 34 to prevent rotational motion of the reaction plates 32 with respect to the housing 24. In this example, the reaction plates 32 are wider and thicker than the friction plates 28, having a greater outer diameter 37 than the outer diameter 54 of the friction clutch plates 28. The plurality of reaction clutch plates 32 are interleaved with the plurality of friction clutch plates 28.
[0027] An apply plate 40 is disposed at a first end 42 of the friction clutch assembly 20 adjacent to a friction clutch plate 28 in this example, and a backing plate 44 is disposed at a second opposite end 46 of the friction clutch assembly 20 adjacent to an end friction clutch plate 28a in this example. At the first end 42 of the friction clutch assembly 20 (the left end in the orientation of
[0028] Though two reaction plates 32 and three friction plates 28 are illustrated in
[0029] In
[0030] The clutch assembly 20 is configured to be moved between the disengaged or released position and the engaged or applied position. In the engaged or applied position (not shown), the actuator 48 contacts and compresses the apply plate 40 to compress the pluralities of friction and reaction plates 28, 32 against the backing plate 44. In the engaged or applied position, the transmission members 22, 24 to which the clutch plates 28, 32 are splined are coupled together by compressing the pluralities of clutch plates 28, 32 against the backing plate 44. In the engaged or applied position, there are no gaps g1, g2, g3 and there is negligible or no slippage between the actuator 48 and the clutch plates 28, 32.
[0031] Referring now to
[0032] In the illustrated example, a spring plate 50 is disposed between each of the reaction plates 32; a spring plate 50 is disposed between the reaction plate 32 and the apply plate 40; and a spring plate 50 is disposed between a reaction plate 32 and the backing plate 44. Thus, the spring plates 50 are interleaved with the plurality of reaction plates 32. Each separator feature or spring plate 50 is configured to bias the reaction plates 32 away from each other and away from the apply plate 40 and the backing plate 44. Further, each separator feature or spring plate 50 may be configured to assist with returning the reaction plates 32 to a disengaged position when the actuator 48 is disengaged.
[0033] Each of reaction plates 32, the apply plate 40, and the backing plate 44 define a plurality of passages 52 configured to allow fluid to flow through the friction clutch assembly 20 and around the spring plates 50. In other variations, friction plates 28 could also have the passage 52, for example, if the friction plates 28 were the larger clutch plates splined along the outer diameter. In the illustrated example, each of the reaction plates 32, the apply plate 40, and the backing plate 44 define a plurality of passages 52 located circumferentially about the central axis X and located radially outward of each friction plate 28.
[0034] Each spring plate 50 is disposed radially outwardly of the plurality of friction plates 28; thus, each spring plate 50 is disposed radially outwardly of the outer diameter 54 of the friction plates 28, where the friction plates 28 are spaced apart from the spring plates 50. In this example, the passages 52 overlap with the spring plates 50 and extend radially inwardly from the spring plates 50. In other words, the spring plates 50 are located in the radial space between the outer diameter 54 of the friction plates 28 and the housing 24.
[0035] Referring to
[0036] Similarly, the apply plate 40 has a radial section 60 extending radially inwardly from an outer diameter 62 and an inner section 64 extending radially inwardly from the radial section 60. Each passage 52 within the apply plate 40 is defined in the radial section 60 of the apply plate 40 and not in the inner section 64, in the illustrated example. Likewise, the backing plate 44 has a radial section 66 extending radially inwardly from an outer diameter 68 and an inner section 70 extending radially inwardly from the radial section 66. Each passage 52 within the backing plate 44 is defined in the radial section 66 of the backing plate 44 and not in the inner section 70, in the illustrated example. Accordingly, the passages 50 defined in the apply plate 40 and in the backing plate 44 are entirely radially outward of the friction plates 28.
[0037] Referring now to
[0038] Referring now to
[0039] It should be understood that although a reaction plate 32, 132 is illustrated in
[0040] Referring to
[0041] Referring now to
[0042] The description provided herein is merely exemplary in nature, and variations that do not depart from the gist thereof are intended to be within the spirit and scope of the present disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the present disclosure.