SUB-ASSEMBLY FOR E-AXLE
20250237297 ยท 2025-07-24
Inventors
Cpc classification
F16H57/031
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/295
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2048/343
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K2001/001
PERFORMING OPERATIONS; TRANSPORTING
International classification
F16H48/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K1/00
PERFORMING OPERATIONS; TRANSPORTING
F16H48/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/295
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A sub-assembly for limiting differential motion to an eAxle with a differential for differentially outputting torque about an axis is provided. An actuator is configured to generate a rotational force about the axis. A cam mechanism is configured to convert the rotational force into a thrust force in a direction of the axis. A clutch assembly includes a first drum separably coupling with the differential, and a second drum separably coupling with a side gear of the differential, The clutch assembly is disposed adjacent to the cam mechanism so as to receive the thrust force to bring a friction clutch into action. A cover is configured to enclose the cam mechanism and the clutch assembly and couple with the eAxle to support any one of the cam mechanism and the clutch assembly against the thrust force.
Claims
1.-6. (canceled)
7. The sub-assembly of claim 22, wherein the actuator is coupled with the cam mechanism to transmit the rotational force.
8. The sub-assembly of claim 22, wherein the cam mechanism is interposed between the clutch assembly and one of the cover and the differential.
9. The sub-assembly of claim 22, wherein the friction clutch is a multi-plate clutch including first clutch plates engaged with the first drum and second clutch plates engaged with the second drum and stacked alternately with the first clutch plates.
10. The sub-assembly of claim 22, wherein the first drum and the second drum respectively include splines configured to couple with the differential, the splines overlapping with each other in a radial direction.
11. The sub-assembly of claim 7, wherein the actuator is interposed between the cam mechanism and the cover.
12. The sub-assembly of claim 7, wherein the actuator is fixed to the cover.
13. The sub-assembly of claim 22, wherein the friction clutch is configured to brake the differential motion between the first drum and the second drum.
14. The sub-assembly of claim 22, wherein the cam mechanism includes a base member and a thrust member, the thrust member being moveable along the axis and the base member being immovable along the axis.
15. The sub-assembly of claim 14, wherein the thrust member is coupled with the actuator and is rotatable about the axis.
16. (canceled)
17. The sub-assembly of claim 22, wherein the friction clutch is radially aligned with the cam mechanism.
18. The sub-assembly of claim 22, wherein the friction clutch is radially offset relative to the cam mechanism.
19.-21. (canceled)
22. A sub-assembly for limiting differential motion to an electric axle (eAxle) with a differential configured to differentially output torque about an axis, comprising: an actuator configured to generate a rotational force about the axis; a cam mechanism configured to convert the rotational force into a thrust force in a direction of the axis; a clutch assembly including a first drum and a second drum each separably combinable with the differential, and a friction clutch arranged between the first drum and the second drum, the clutch assembly being disposed adjacent to the cam mechanism so as to receive the thrust force to bring the friction clutch into action; a cover configured to enclose the cam mechanism and the clutch assembly and to combine with the eAxle to support any one of the cam mechanism and the clutch assembly against the thrust force or a thrust reaction force; and a mediation member arranged between the cam mechanism and the second drum, the mediation member configured to transfer the thrust force from the cam mechanism to the friction clutch, and wherein the mediation member includes a projection and the second drum includes a through-hole, the projection being arranged in the through hole and configured to contact the friction clutch.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
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[0011]
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DETAILED DESCRIPTION
[0018] Exemplary embodiments will be described hereinafter with reference to the appended drawings. Drawings are not necessarily made to scale and therefore it is particularly noted that dimensional relations are not limited to those drawn therein. Throughout the following descriptions and appended claims, unless otherwise described, an axis means a rotation axis commonly owned by a differential and the sub-assembly, and terms radial and circumferential are defined in regard to the axis. Further, for convenience of explanation, right and left are determined in regard to the direction of travel of the vehicle, whereas any embodiments would be of course possible where the right and the left were arbitrarily interchanged.
[0019] Referring to
[0020] The electric motor 1 has a hollow output shaft and the right axle 9R passes through the hollow shaft and is led out to the exterior, thereby the electric motor 1 and the differential 5 are arranged coaxially. In this case, the reduction gear set 3 may be, as shown in
[0021] As the differential 5 that could be used in a common eAxle cannot limit differential motion, when one of the right and left driving wheels loses traction, the differential 5 cannot output torque to the other as well. The sub-assembly 7, in combination with an eAxle including the differential 5, imparts a function of limiting differential motion to the eAxle. The sub-assembly 7 may be combined with any type of eAxle as far as the differential 5 is arranged at one end of the eAxle, and may, needless to say, be combined with either an off-set shaft type illustrated in
[0022] Referring mainly to
[0023] Referring to
[0024] The base member 31 is seated on and thus supported by a proper immovable member of the eAxle, namely its casing or a carrier of its planetary gear set for example. Or, the cam mechanism 13 may be arranged closer to the end wall of the cover 17 as compared with the clutch assembly 15 as shown in
[0025] While the above descriptions relate to the example using the cam balls 33, roller or any other rolling members may be used in place of the cam balls 33, or alternatively applicable are cam structures or ball screws that one or both of the members 31, 35 have. Further the base member 31 instead of the thrust member 35 may be in mesh with the wheel 23 and thereby rotate about the axis X and the thrust member 35 may be instead prevented from rotating. Any of these examples enables the cam mechanism 13 to convert the rotational force generated by the actuator 11 into the axial thrust force.
[0026] The clutch assembly 15 is for example provided with an inner drum 51, an outer drum 53, and a friction clutch for frictionally braking the outer drum 53 relative to the inner drum 51. The inner drum 51, as shown in
[0027] In any case, these engagements may be established by spline-coupling or keyway-coupling. Either the spline-coupling or the keyway-coupling can facilitate coupling and separation and nonetheless provides sufficient coupling strength for torque transmission, but is not indispensable. By such a coupling, when the friction clutch effects the braking ability, the side gear 5L is braked relative to the differential case 5C and thereby its differential motion therebetween is limited.
[0028] When the side gears 5R, 5L make a differential motion, a relative rotation according to the differential motion occurs between the inner drum 51 and the outer drum 53. Although not necessarily, a bearing 63 may be interposed between the drums 51, 53 as shown in
[0029] The friction clutch is a clutch for braking the differential motion between the drums 51, 53, and may be a multi-plate clutch provided with a plurality of clutch plates 55, one group of which drivingly couple with the inner drum 51 and another of which drivingly couple with the outer drum 53. These groups are alternately stacked and thus generate friction between the plates when a thrust force acts on the whole of the plates, thereby frictionally braking the outer drum 53 relative to the inner drum 51.
[0030] To receive the thrust force from the cam mechanism 13 and thereby come into action, as shown in
[0031] Alternatively, the clutch plates 55 are not necessarily disposed axially adjacent to the cam mechanism 13 but may, as shown in
[0032] In the example described above in
[0033] Further, although not necessarily, a ball bearing 67 may be interposed in the cam mechanism 13, particularly between the base member 31 and the outer drum 53 for example. This is, along with the needle bearing 63, beneficial in aligning respective constituents with the axis X.
[0034] While the cam mechanism 13 as a whole is immovable around the axis X, the clutch assembly 15 along with the differential 5 rotates about the axis X. To allow both relative rotation and transmission of the thrust force, a thrust bearing 41 may be interposed therebetween. Further between the thrust bearing 41 and the clutch plates 55, a pressure plate 57 may be interposed in order to promote uniformity of thrust force application.
[0035] As will be readily understood, as the actuator 11 brings the cam mechanism 13 into action to exert the thrust force on the clutch assembly 15, the differential motion between the axles 9R and 9L becomes limited. The limiting ability increases when the thrust force increases in accordance with the input by the actuator 11, and the limiting ability decreases when the thrust force decreases.
[0036] The clutch assembly 15 is rotatably supported by the cover 17. To allow its rotation, a bearing 61 is interposed between the outer drum 53 and the cover 17 for example. The bearing 61 is, as well, preferably in contact with the back face of the outer drum 53 and also supported by the end wall of the cover 17, thereby bearing the thrust force. In
[0037] The cover 17 is generally a bowl- or pot-like container composed of a circumferential wall around the axis X and the end wall elongated from the circumferential wall toward the axis X, and is so dimensioned as to enclose the cam mechanism 13, the clutch assembly 15 and components related thereto. The cover 17, at the end section 17E thereof, combines or unites with the casing of the eAxle. Further, in the examples shown in
[0038] In the embodiments shown in
[0039] Referring to
[0040] Further, in the structure exemplified in
[0041] In the example where the cam mechanism 13 is disposed at the side of the end wall of the cover 17, as exemplarily shown in
[0042] Use of the sub-assembly according to any of the examples described above will readily impart a function of limiting differential motion to an eAxle. Because the sub-assembly need not be incorporated into the eAxle, it does not give rise to axial size increase of the eAxle and therefore design change about the vehicle body is not required. The sub-assembly coupled with the eAxle can, nevertheless, be handled unitarily and its handling does not inherently differ from handling of the eAxle alone. It facilitates assembly of a vehicle as with a conventional eAxle. On the other hand, as the sub-assembly alone can be separated from the eAxle, it facilitates maintenance.
[0043] Although certain exemplary embodiments are described above, modifications and variations of the embodiments will occur to those skilled in the art, in light of the above teachings.