AN ASSEMBLY FOR A DIFFERENTIAL UNIT OF A VEHICLE
20210095750 · 2021-04-01
Assignee
Inventors
Cpc classification
F16H48/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2048/423
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The assembly comprises: —a differential housing (24a) having a longitudinal axis (23); —a differential side gear (18) connected to a drive shaft (11), rotatably mounted inside and relative to the differential housing around the axis; —a blocking system for blocking the differential unit operation, comprising: —a blocking member (50) mounted inside the differential housing in a rotationally fixed manner; —and an actuation system (60) for sliding the blocking member along the axis between a blocking position, in which the blocking member and the differential side gear are rotationally secured to one another, and a released position. The actuation system comprises: —a connecting device (70) comprising: —an outer portion (80) mounted on and outside the differential housing in a rotationally fixed manner, wherein the outer portion can slide relative to the differential housing along the axis; —a through portion (71) which extends through the differential housing peripheral wall and fixedly connects the connecting device outer portion (80) and the blocking member (50); —an actuation device (65) located outside the differential housing (24a) and capable of moving the blocking member (50) relative to the differential housing (24a) between said released and blocking positions, via the connecting device (70).
Claims
1. An assembly for a differential unit of a vehicle, comprising: a differential housing having a longitudinal axis; a differential side gear configured to be connected to a drive shaft capable of being connected to a wheel of a vehicle, the differential side being located inside the differential housing and being rotatably mounted relative to the differential housing around the longitudinal axis; a blocking system for blocking the differential unit operation, comprising a blocking member movable between a released position and a blocking position, and an actuation system for moving the blocking member between said released and blocking positions; characterized in that: the blocking member is mounted inside the differential housing in a rotationally fixed manner relative to the differential housing, and can slide relative to the differential housing, along the longitudinal axis: between the released position, in which the blocking member is spaced apart from the differential side gear; and the blocking position, in which the blocking member and the differential side gear are rotationally secured to one another by the cooperation between at least one engagement portion of the blocking member and at least one engagement portion of the differential side gear; the actuation system comprises: a connecting device comprising: an outer portion mounted on and outside the differential housing, the outer portion being rotatably fixed relative to the differential housing and capable of sliding relative to the differential housing along the longitudinal axis; and at least one through portion which extends through a differential housing peripheral wall, in order to fixedly connect the connecting device outer portion and the blocking member, in use; an actuation device located outside the differential housing and capable of moving the blocking member relative to the differential housing between said released and blocking positions, via the connecting device.
2. The assembly according to claim 1, characterized in that the at least one engagement portion of the blocking member comprises at least one raised or depressed relief, said at least one engagement portion being preferably in the form of a plurality of teeth extending from the periphery of the blocking member, with the blocking member being ring-shaped, and configured to be engaged in a set of teeth arranged on the differential side gear.
3. The assembly according to claim 1, characterized in that an inner face of the differential housing is provided with at least one raised or depressed relief and an outer face of the blocking member is provided with at least one corresponding depressed or raised relief, the inner face of the differential housing and the outer face of the blocking member preferably being provided with corresponding longitudinally extending splines which allow a relative longitudinal sliding movement and prevents a relative rotational movement around the longitudinal axis between the blocking member and the differential housing.
4. The assembly according to claim 1, characterized in that the or each through portion of the connecting device is engaged in a through opening provided in the peripheral wall of the differential housing, said through portion being capable of axially sliding in said through opening, which is preferably elongated in the longitudinal direction, and being rotatably fixed relative to the differential housing.
5. The assembly according to claim 4, characterized in that the blocking member comprises at least one receiving portion of the or each through portion of the connecting device, preferably in the form of a through aperture provided in a peripheral wall of the blocking member.
6. The assembly according to claim 5, characterized in that the or each through aperture is elongated circumferentially.
7. The assembly according to claim 1, characterized in that the outer portion of the connecting device comprises an inner face provided with at least one raised or depressed relief and in that an outer face of the differential housing is provided with at least one corresponding depressed or raised relief, preferably in the form of at least two protrusions, which are circumferentially spaced relative to one another and which project from the inner face of the connecting device outer portion, and at least two cavities which extend axially, which are circumferentially spaced relative to one another and which are arranged on the differential housing outer face, in order to allow a relative longitudinal sliding movement and prevent a relative rotational movement around the longitudinal axis between the differential housing and the outer portion of the connecting device.
8. The assembly according to claim 1, characterized in that the outer portion of the connecting device comprises at least one receiving portion of the or each through portion of the connecting device, preferably in the form of a hole or an inner annular groove.
9. The assembly according to claim 1, characterized in that the outer portion of the connecting device comprises an outer face provided with an outer annular groove or an outer annular ridge for receiving part of the actuation device.
10. The assembly according to claim 9, characterized in that the actuation device and the outer portion of the connecting device are free to rotate around the longitudinal axis relative to one another, the actuation device comprising at least one finger engaged in the outer annular groove of the connecting device outer portion, or one hollow portion for receiving the outer annular ridge of the connecting device outer portion.
11. The assembly according to claim 1, characterized in that the at least one through portion of the connecting device comprises at least two pins extending radially, preferably four and more preferably eight pins regularly angularly spaced.
12. The assembly according to claim 1, characterized in that it further comprises a support member configured to be axially maintained between the differential side gear and an inner collar of the differential housing, and further forming an inner abutment for preventing a radial inward movement of the or each through portion of the connecting device.
13. A differential unit of a vehicle, the differential unit comprising a differential carrier housing, and, mounted in said differential carrier housing: an assembly according to claim 1; a crown wheel having a longitudinal axis, arranged to be driven in rotation around said longitudinal axis by an input shaft; a differential arranged substantially inside the crown wheel and comprising differential side pinions which rotates relative to a joint cross attached to the crown wheel and two differential side gears each connected to at least one differential side pinion and to a drive shaft capable of being connected to a wheel of a vehicle, outside the differential carrier housing; a differential housing arrangement containing the differential and part of the drive shafts, said differential housing arrangement comprising two differential housings each secured to the crown wheel, on both sides of the crown wheel, the differential housings having the same longitudinal axis as the crown wheel; wherein one differential housing and the differential side gear located inside said differential housing are part of said assembly.
14. The differential unit according to claim 13, characterized in that the actuation device is mounted on the differential carrier housing in a rotationally fixed manner.
15. The differential unit according to claim 13, characterized in that the blocking member is ring-shaped and is preferably arranged around one drive shaft.
16. The differential unit according to claim 13, characterized in that it further comprises, on either side of the crown wheel, a supporting device which is attached to the differential carrier housing and which comprises a ring-shaped portion in which is received part of one drive shaft inside a differential housing and a bearing surrounding the differential housing, the blocking member being located, according to a projection along the longitudinal axis, between the differential side gear and the corresponding bearing.
17. A driven wheel system for a vehicle, comprising at least one left wheel and one right wheel, each wheel being connected to a differential unit according to claim 13 by means of a drive shaft, at least one joint, a lower arm articulated at both ends and preferably an upper arm articulated at both ends.
18. A driven wheel system for a vehicle, the driven wheel system forming an axle and comprising: a differential unit according to claim 13; an axle housing which constitute a second housing portion designed to be assembled to a first housing portion for forming the differential carrier housing, and which at least partially contains the drive shafts; at least one wheel connected to one end of each drive shaft.
19. A vehicle comprising at least one driven wheel system according to claim 17.
20. A differential housing for a differential unit of a vehicle, the differential housing being configured for receiving at least part of a differential, the differential housing having a peripheral wall which has a substantially tubular shape, a longitudinal axis, an inner face and an outer face, characterized in that the differential housing comprises: on its inner face, at least one raised or depressed relief for forming an inner sliding connection with a blocking member of the differential unit, along the longitudinal axis, preferably in the form of longitudinal extending splines; on its outer face, at least one raised or depressed relief forming an outer sliding connection with part of an actuation system of the blocking member, along the longitudinal axis, preferably in the form of at least two circumferentially spaced parallelepiped cavities; at least one through opening provided in the peripheral wall, configured to form a sliding connection with part of an actuation system of the blocking member, along the longitudinal axis, the through opening(s) being preferably elongated in the longitudinal direction.
21. The differential housing according to claim 20, characterized in that it is configured to cooperate with a differential side gear and a blocking system for forming an assembly.
22. A differential side gear for a differential unit of a vehicle, the differential side gear having an annular shape and a longitudinal axis, and comprising two opposite faces, the differential side gear being provided with a central hole for receiving in a rotationally fixed manner a drive shaft capable of being connected to a wheel of a vehicle, the differential side gear comprising a first set of teeth for meshing with at least one differential side pinion of the differential unit, characterized in that the differential side gear further comprises at least one raised or depressed relief, distinct from the first set of teeth or having a different orientation with respect to the first set of teeth, for forming a rotationally coupled connection around the longitudinal axis, preferably between the differential side gear and a blocking member of the differential unit by means of the engagement of a corresponding engagement portion of the blocking member in said at least one raised or depressed relief.
23. The differential side gear according to claim 22, characterized in that the at least one raised or depressed relief of the differential side gear is formed by a second set of teeth, which preferably protrude outwardly from a peripheral region of the differential gear and axially from a face of the differential side gear that is opposite to the first set of teeth.
24. The differential side gear according to claim 22, characterized in that it is configured to cooperate with a differential housing and a blocking system for forming an assembly.
25. A blocking member for blocking the operation of a differential unit of a vehicle, the blocking member being configured to be mounted inside a differential housing of the differential unit, the blocking member having a peripheral wall which has substantially the shape of a cylinder having a longitudinal axis, an inner face and an outer face, characterized in that the blocking member comprises: on its outer face, at least one raised or depressed relief forming an outer sliding connection along the longitudinal axis, preferably in the form of longitudinal extending splines; at least one engagement portion for forming a rotationally coupled connection around the longitudinal axis with a differential side gear of a differential unit, said at least one engagement portion being preferably in the form of a plurality of teeth extending from the periphery of the blocking member; at least one receiving portion of a part of an actuation system of the blocking member, preferably in the form of a through aperture provided in the peripheral wall.
26. The blocking member according to claim 25, characterized in that said receiving portion of a part of an actuation system of the blocking member comprises a through aperture provided in the peripheral wall, the through aperture being preferably elongated circumferentially.
27. The blocking member according to claim 25, characterized in that it is configured to cooperate with a differential housing and a differential side gear for forming an assembly.
28. A ring for a blocking system of a differential unit of a vehicle, the ring being configured to be mounted around a differential housing of the differential unit and having a longitudinal axis, an inner face and an outer face, characterized in that the ring comprises: on its inner face, at least one raised or depressed relief for forming an inner sliding connection with the differential housing, along the longitudinal axis, preferably in the form of at least two circumferentially spaced protrusions; on its inner face, at least one receiving portion of a part of an actuation system pertaining to the blocking system, preferably in the form of a hole or an inner annular groove; on its outer face, an outer annular groove or an outer annular ridge for receiving part of an actuation device pertaining to the blocking system.
29. The ring according to claim 28, characterized in that it forms part of a blocking system configured to cooperate with a differential housing and a differential side gear for forming an assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0081] With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples.
[0082] In the drawings:
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DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS OF THE INVENTION
[0097] As shown in
[0098] The vehicle 1 also comprises at least one driven wheel system 6. The or each driven wheel system 6 has an axis 12, and comprises a differential unit 10, which includes a differential 15, and at least partly two drive shafts 11. Each drive shaft 11 has a first end connected to the differential 15 and a second end connected to at least one wheel 8. In the illustrated embodiment, the vehicle 1 comprises a first driven rear wheel system 6a and a second driven rear wheel system 6b located rearwards from the first driven rear wheel system 6a. Each rear wheel system 6a, 6b can comprise two wheels 8 on either side, thus forming a dual mounted tires arrangement.
[0099] An additional shaft 9 connects the input shaft 3 to the differential unit 10 of the second driven rear wheel system 6b, through the differential unit 10 of the first driven rear wheel system 6a, and is the input shaft for the differential unit 10 of the second driven rear wheel system 6b.
[0100] The invention is of particular interest for a vehicle having an independent wheel configuration, as schematically illustrated in
[0101] However, the invention can also be used for a vehicle having a rigid axle configuration, as schematically illustrated in
[0102] The invention can be applied in heavy-duty vehicles, such as trucks, buses and construction equipment, as well as medium-duty vehicles. Although the following description is made with reference to a rear wheel system, it has to be noted that the invention can be used on another driven wheel system, for example on a driven front wheel system.
[0103] Reference is now made to
[0104] The differential unit 10 comprises a differential carrier housing 20, which can made of a first housing portion 20a and a second housing portion 20b (shown in
[0105] Inside the differential carrier housing 20 is located a crown wheel 22 having a longitudinal axis 23. The crown wheel 22 is driven in rotation around said longitudinal axis 23 by the input shaft 3, by engagement of teeth arranged on a pinion (not shown) mounted on said input shaft 3 and teeth arranged on the crown wheel 22 (not shown).
[0106] As shown in
[0107] Besides, the transverse direction Y is defined as the direction which is orthogonal to the longitudinal direction X and substantially horizontal when the vehicle 1 is on a horizontal surface. Direction Y corresponds the longitudinal direction X′ of the vehicle 1. The axis 13 of the input shaft 3 is parallel to the transverse direction Y, i.e the longitudinal direction X′ of the vehicle 1.
[0108] Moreover, direction Z is defined as the vertical direction when the vehicle 1 is on a horizontal surface.
[0109] The invention will be described when the vehicle 1 is on a horizontal surface.
[0110] Inside the crown wheel 22 is arranged a differential 15 which comprises differential side pinions 16, for example four differential side pinions, which are fitted on a joint cross 17 attached to the crown wheel 22, and two differential side gears 18. Each differential side gear 18 meshes with at least one differential side pinion 16 and is fastened to a first end of one of the drive shafts 11. The differential side pinions 16 are not illustrated in
[0111] The differential unit 10 further comprises, inside the differential carrier housing 20, a differential housing arrangement 24 which contains the differential 15 and part of the drive shafts 11, namely the part of each drive shaft 11 which is located near the first end of said drive shaft 11. The differential housing arrangement 24 is secured to the crown wheel 22. It may be made of two parts, namely two differential housings 24a, 24b each forming a sleeve around the corresponding differential side gears 18 and partly around the drive shaft 11, said differential housings 24a, 24b being fastened on both sides of the crown wheel 22.
[0112] Thus, on each side of the crown wheel 22, the differential side gear 18 is mounted at the first end of the drive shaft 11 in a rotationally fixed manner. Furthermore, both the differential side gear 18 and the drive shaft 11 are rotatably mounted relative to the differential housing 24a, 24b around the longitudinal axis 23. A bearing 26 can be mounted around the drive shaft 11, between the drive shaft 11 and the differential housing 24a, 24b.
[0113] The crown wheel 22, differential 15, and differential housing 24 are rotating parts inside and with respect to the differential carrier housing 20. They are mounted on the inner side of the differential carrier housing 20 by means of two supporting devices 30, arranged on both sides of the crown wheel 22. Each supporting device 30 is attached to the differential carrier housing 20 and comprises a ring-shaped portion in which is received part of one drive shaft 11 inside a differential housing 24a, 24b and a bearing 27 surrounding the differential housing 24a, 24b. More specifically, the bearing 27 can have an inner ring mounted on the differential housing 24a, 24b and an outer ring mounted on the supporting device 30. The bearings 27 are preferably conical bearings.
[0114] The differential unit 10 further comprises a blocking system 100 (see
[0115] The whole blocking system 100 can be located inside the differential carrier housing 20. The blocking system 100 can be located in an area substantially facing one differential housing along a direction orthogonal to the longitudinal axis 23, preferably facing the differential housing 24a that does not extend inside the crown wheel 22.
[0116] The differential housing 24a, differential side gear 18 and blocking system form an assembly 110 as shown in
[0117] According to the invention, the blocking member 50 is located inside the differential housing 24a and is configured to rotationally secure said differential housing 24a and the corresponding differential side gear 18, i.e. the differential side gear 18 located in said differential housing 24a.
[0118] The blocking member 50 may be ring-shaped, with a peripheral wall 51 having substantially the shape of a cylinder. The blocking member 50 is preferably arranged around one drive shaft 11. The blocking member 50 may be located, according to a projection along the longitudinal axis 23, between the differential side gear 18 and the corresponding bearing 27 which is mounted between the supporting device 30 and the differential housing 24a.
[0119] As shown on
[0122] In an embodiment, the actuation device 65 can be located outside the differential housing 24a. Then, the connecting device 70 comprises: [0123] an outer portion 80, mounted on and outside the differential housing 24a, said outer portion 80 being rotationally secured to the differential housing 24a and movable relative to the differential housing 24a along the axis 23, so as to allow the blocking member 50 to be moved between said released and blocking positions; [0124] at least one through portion 71 which extends through the peripheral wall of the differential housing 24a, in order to fixedly connect the outer portion 80 of the connecting device 70 and the blocking member 50, in use.
[0125] “Fixedly connecting” two parts means that these two parts are connected in a rotationally and axially fixed manner. This does not necessarily means that the two parts are secured to one another.
[0126] Owing to this arrangement, the invention makes it possible to transfer an actuation movement from a non rotating component (namely the actuation device 65) to a moving blocking member 50 surrounded by a rotating differential housing 24a. Having a non rotating actuation device 65 makes the implementation simpler, as wires and pipes can be easily connected.
[0127] The blocking member 50 can be rotationally secured to the differential housing 24a and can be able to move relative to the differential housing 24a along the longitudinal axis 23: [0128] between the released position, in which the blocking member 50 is spaced apart from the differential side gear 18; [0129] and the blocking position, in which the blocking member 50 and the differential side gear 18 are rotationally secured to one another by the cooperation between at least one engagement portion of the blocking member 50 and at least one engagement portion of the differential side gear 18. In the blocking position, the differential housing 24a and the differential side gear 18 rotate at the same speed around the longitudinal axis 23, and the differential 15 is thus locked.
[0130] “Rotationally secured” means that the blocking member 50 is mounted in a rotationally fixed manner relative to the differential side gear 18.
[0131] In other words, according to the invention, the differential unit operation is blocked by blocking the rotation between the differential side gear 18 and the differential housing 24a, which results in indirectly blocking the rotation between the drive shaft 11 and the crown wheel 22.
[0132] As shown on
[0133] On the inner face 41, the differential housing 24a can comprise means for forming an inner sliding connection with the blocking member 50 along the longitudinal axis 23. These means can comprise at least one raised or depressed relief, for example longitudinal extending splines 43.
[0134] A “sliding connection” between two parts is a connection that allows a relative sliding movement of said parts along the longitudinal axis 23, but prevents a relative rotation movement between said parts around this longitudinal axis 23.
[0135] On the outer face 42, the differential housing 24a can comprise means for forming an outer sliding connection along the longitudinal axis 23 with part of the actuation system 60, more specifically with the outer portion 80 of said actuation system 60. These means can comprise at least one raised or depressed relief. In an embodiment, these means can be in the form of at least two circumferentially spaced cavities 44. The cavities 44 can be parallelepiped. There may be provided at least four, more preferably eight, cavities preferably regularly angularly spaced on the outer face 42 of the differential housing 24a. Alternatively, the differential housing 24a could be provided with outer splines and the actuation system outer portion 80 could be provided with corresponding inner splines.
[0136] As shown in
[0137] The differential housing 24a can comprise at least one through opening 48 provided in the peripheral wall 40. The or each through opening 48 is configured to form a sliding connection along the longitudinal axis 23 with part of an actuation system 60 of the blocking member 50, more specifically with the through portion 70 of said actuation system 60. The or each through opening 48 is preferably elongated in the longitudinal direction X. There may be provided at least four, more preferably eight, through openings 48 preferably regularly angularly spaced on the outer face 42 of the differential housing 24a. Each through opening 48 can be located between two adjacent cavities 44.
[0138] As shown on
[0139] On its outer face 54, the blocking member 50 may have longitudinal extending splines 55 for cooperation with the spline 43 of the differential housing 24a, or another means for providing a sliding connection between the blocking member 50 and the differential housing 24a, along the longitudinal axis 23.
[0140] The blocking member 50 may further have at least one engagement portion for forming a rotationally coupled connection around the longitudinal axis 23 with the differential side gear 18. Preferably, this engagement portion is in the form of a plurality of teeth 56 which extend from the periphery of the blocking member 50. The teeth 56 may extend axially from the periphery of the blocking member 50; they can have a parallelepiped shape. In other words, the blocking member 50 can be a dog clutch.
[0141] The peripheral wall 51 of the blocking member 50 can also comprise at least one through aperture 57 for receiving part of an actuation system 60 of the blocking member 50, more specifically the through portion 70 of said actuation system 60. There may be provided at least four, more preferably eight, through apertures 57, preferably regularly angularly spaced on the peripheral wall 51 of the blocking member 50. Preferably the through apertures 57 are elongated circumferentially.
[0142] As shown on
[0143] The differential side gear 18 is provided with a central hole 76 for receiving the drive shaft 11 in a rotationally fixed manner. To that end, the central hole 76 can comprise inner longitudinally extending splines 77. On the face 74 facing the crown wheel 22, the differential side gear 18 comprises a first set of teeth 78 for meshing with at least one differential side pinion 16 of the differential unit 10.
[0144] Furthermore, the differential side gear 18 can comprise a second set of teeth 79, which preferably protrude outwardly from a peripheral region of the differential gear 18 and axially from the face 75, for engagement with the teeth 56 of the blocking member 50. Alternatively, the differential side gear 18 and the blocking member 50 could be provided with other complementary engagement portions for forming a rotationally coupled connection around the longitudinal axis 23 between the differential side gear 18 and the blocking member 50. Preferably, said engagement can be achieved by interference, for example between complementary raised or depressed reliefs.
[0145] Providing the teeth 79 cooperating with the blocking member 50 on the differential side gear 18 is advantageous. Indeed, first of all, it takes benefit of the fact that the differential side gear 18 is made of a high grade material. Consequently, there is no need to make a surface treatment for having a high resistance of the teeth 79, nor to provide a separate piece made of a high grade material for forming the teeth 79. Secondly, this makes it possible to manufacture the whole differential side gear 18, including the teeth 79 of the second set, in one and the same operation of precision forging. Said precision forging is the current manufacturing process of conventional differential side gear 18 provided with the first set of teeth 78. As no additional manufacturing step is needed, the invention does not involve additional costs.
[0146] An embodiment of the outer portion 80 of the connecting device 70 is shown in
[0147] According to this non limiting embodiment, said connecting device outer portion 80 comprises or forms a ring having an inner face 81 and an outer face 82. The ring is configured to be mounted around the differential housing 24a. The ring has the same longitudinal axis 23 as the crown wheel 22 in the mounted position.
[0148] On its inner face 81, the ring 80 can comprise at least two circumferentially spaced protrusions 84 capable of sliding longitudinally in the cavities 44 of the differential housing 24a. Alternatively, there could be provided other means for forming an inner longitudinal sliding connection with the differential housing 24a. The protrusions 84 may be parallelepiped, with a longitudinal dimension lower than the longitudinal dimension of the cavities 44, so that the sliding movement can be guided on the whole range of movement. The transverse dimension of the protrusions 84 may be substantially identical to the transverse dimension of the cavities 44 (with an operational clearance) to prevent relative rotation.
[0149] Still on its inner face 81, the ring 80 can comprise an inner annular groove 85 for receiving part of the actuation system 60, more specifically the through portion 70 of the connecting device 70 of said actuation system 60. Alternatively, the inner annular groove 85 could be replaced by a hole, as said through portion 70 and said ring 80 are rotationally secured to one another, or another receiving portion.
[0150] On its outer face 82, the ring 80 can comprise an outer annular groove 86 for receiving part of the actuation device 65. Alternatively, the ring 80 can comprise an outer annular ridge for receiving part of the actuation device 65.
[0151] The actuation device 65 may comprise a hydraulic actuator 66 or any other actuator, and a spring 67 for biasing the actuation device towards the released position. The actuation device 65 is preferably mounted on the differential carrier housing wall, inside the differential carrier housing 20, in a rotationally fixed manner. Such a configuration is simpler, especially regarding the mounting and sealing of pipes provided for carrying an actuating fluid. With this configuration, the connecting device outer portion 80 is a rotating part relative to the actuation device 65.
[0152] The actuation device 65 may comprise at least one finger 68 engaged in the outer annular groove 86 of the connecting device outer portion 80, so that the actuation device 65 and the outer portion 80 of the connecting device 70 are free to rotate around the longitudinal axis 23 relative to one another. However, preferably, no relative longitudinal sliding is possible, so that the actuation device 65 longitudinal movement results in the same longitudinal movement of the connecting device outer portion 80, between the released and blocked positions of the blocking member 50. If the ring 80 comprises an outer annular ridge instead of an outer annular groove, the actuation device 65 may comprise a hollow portion for receiving said ridge.
[0153] In an embodiment, the through portion 71 of the connecting device 70 comprises at least two pins extending radially, preferably four and more preferably eight pins regularly angularly spaced.
[0154] Each through portion 71, i.e. each pin 71, is engaged: [0155] in the inner annular groove 85 of the ring 80, with no degree of freedom in the longitudinal direction X; [0156] in one through opening 48 provided in the differential housing peripheral wall 40, said pin 71 being capable of axially sliding in said through opening 48 as it is elongated, but being rotatably fixed relative to the differential housing 24a, for example because the transverse dimension of the pin 71 is substantially identical to the transverse dimension of the through opening 48; [0157] and in one through aperture 57 provided in the blocking member peripheral wall 51, with no degree of freedom in the longitudinal direction X.
[0158] The blocking member 50 is therefore fixedly connected to the connecting device outer portion 80. As a consequence, the actuation device 65 longitudinal movement results in the same longitudinal movement of the blocking member 50, between the released and blocked positions of the blocking member 50. In the mounted position, the blocking member 50 and outer portion 80 are substantially facing each other along a radial direction (i.e. a direction orthogonal to the longitudinal axis 23).
[0159] The pins 71 act as pieces that transfer the movement of the connecting device outer portion 80 to the blocking member 50. However, they do not transfer the torque, and are only subjected to the pushing force of the actuation device 65, which is significantly lower than the torque. Consequently, the pins 71 or other through portion is not required to be dimensioned to withstand large efforts.
[0160] The longitudinal movement of the blocking member 50 is stopped in both directions. This can be achieved either by abutments cooperating with the blocking member 50 itself, or by limiting the stroke of the actuation device 65.
[0161] In case the pins 71, or other connecting device through portions, are not secured to the connecting device outer portion 80 and/or to the blocking member 50, the assembly 110 may comprise a support member 90 (see
[0162] As shown in
[0163] A trend in heavy duty transport industry is to move from rigid axles to independent wheel suspension (IRS), to improve several features (dynamic behavior, volume capacity for battery/fuel . . . , wheel alignment, comfort . . . ). In an IRS arrangement, for mechanical strength reasons, for providing enough space to allow operational movements of the components, and for improving fuel efficiency, the drive shafts must have a minimum length that may not be easily compatible with the legal constraints, namely the regulatory maximum transverse length of the vehicle.
[0164] The invention gives a solution for implementing a differential unit with a blocking system on a vehicle having an IRS arrangement, with dual mounted tires and without wheel reduction, by providing a differential unit having a smaller dimension in the transverse direction of the vehicle.
[0165] The invention advantages are all the more significant as IRS is a key solution to develop an optimized electrified driveline, which is a promising development in transportation industry.
[0166] Although the invention has been described for a rear wheel system, it can be used in another driven wheel system, especially in a front driven wheel system. Besides, the vehicle can have a different configuration than the one illustrate in
[0167] It is to be understood that the present invention is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.