DRIVE ASSEMBLY FOR A MOTOR VEHICLE DRIVE SHAFT
20170174076 ยท 2017-06-22
Inventors
Cpc classification
B60K17/356
PERFORMING OPERATIONS; TRANSPORTING
B60K17/24
PERFORMING OPERATIONS; TRANSPORTING
B60Y2410/1022
PERFORMING OPERATIONS; TRANSPORTING
B60K5/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60K17/24
PERFORMING OPERATIONS; TRANSPORTING
B60K17/356
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention concerns a drive assembly for a motor vehicle drive shaft comprising au engine, a gearbox, a shaft (50) divided into two half-shafts coupled to a differential, characterised in that a hydraulic machine (10) is linked to the gear-box or to the differential in order to he driven by said link, the hydraulic machine (10) forming a hearing (100) for one of the half-shafts (54).
Claims
1. A drive assembly for a motor vehicle drive shaft comprising a motor (20), a gearbox (30), a shaft (50) split into two half-shafts coupled to a differential (40), characterized in that a hydraulic machine (10) is linked to the gearbox (30) or to the differential (40) to be driven by this linkage, the hydraulic machine (10) forming a bearing (100) for one of the half-shafts (54).
2. The assembly according to claim 1, characterized in that the motor (20) is transversal with respect to the longitudinal direction of the vehicle.
3. The assembly according to claim 1, characterized in that it comprises two concentric shafts (12, 50) running from the gearbox (30) to the bearing (100).
4. The assembly according to claim 3, characterized in that the external shaft (12) is coupled to the crown gear of the differential (40) and is connected to the hydraulic machine (10) and an internal through shaft (54) is coupled to a satellite gear of the differential (40).
5. The assembly according to claim 1, characterized in that the machine (10) is a machine with a multilobe cam (16) and with radial pistons.
6. The assembly according to claim 1, characterized in that the machine (10) is formed by stacking several coaxial wafers (T1, T2, T3) each comprising a multilobe cam (16) and radial pistons.
7. The assembly according to claim 1, characterized in that the differential (40) is integrated into the gearbox (30).
8. The assembly according to claim 1, characterized in that the differential (40) is located on the side of the hydraulic machine (10).
9. The assembly according to claim 1, characterized in that on the side of the hydraulic machine (10), a long shaft (54) associated with a universal joint (55) connects one wheel to the gearbox (30) while passing through the hydraulic machine (10).
10. The assembly according to claim 1, characterized in that the two left and right universal joints (53, 55), have substantially the same length.
11. The assembly according to claim 1, characterized in that the machine (10) which serves as intermediate transmission bearing is positioned so that the couplings of the left (53) and right (55) universal joints are located at the same distance from the longitudinal axis of the vehicle, and that the two universal joints (53, 55) are at least substantially identical.
12. The assembly according to claim 1, characterized in that the hydraulic machine (10) feeds the motors associated with a second shaft.
13. The assembly according to claim 1, characterized in that the bearing (100) of a half-shaft (54), integrated with the hydraulic machine (10), is carried by an element of the casing of the hydraulic machine (10), a cap (19) for example.
14. The assembly according to claim 13, characterized in that the roller forming a bearing (100) of a half-shaft (54), integrated with the hydraulic machine (10), is a ball bearing.
15. The assembly according to claim 1, characterized in that the bearing (100) of a half-shaft (54), integrated with the hydraulic machine (10), is carried by a tubular shaft (12), itself supported by a casing element (16) of the hydraulic machine (10), through an associated roller (120).
16. The assembly according to claim 15, characterized in that the roller forming a bearing (100) for a half-shaft (54), integrated with the hydraulic machine (10) and carried by a tubular shaft (12), itself supported by a casing element (16) of the hydraulic machine (10), is a needle bearing.
17. The assembly according to claim 1, characterized in that the sealing means (150) associated with the half-shaft (54), and formed preferably by a lip seal, are interposed between the half-shaft (54) and the casing of the hydraulic machine (10) or an associated element such as a tubular shaft (12) rotatably guided by this element.
18. The assembly according to claim 1, characterized in that the sealing means (125) formed preferably by a lip seal, are interposed between a tubular intermediate shaft (12) driven by the gearbox or the differential, and the casing of the hydraulic machine.
19. A hydraulic machine conforming to claim 1, characterized in that it carries an intermediate bearing (100) for supporting a mechanical transmission shaft.
20. The machine according to claim 19, characterized in that it has the half-shaft (54) passing through it, guided by the bearing (100).
Description
[0013] Other features, aims and advantages of the present invention will appear upon reading the detailed description which follows, made with reference to the appended drawings, given by way of non-limiting examples and in which:
[0014]
[0015]
[0016]
[0017]
[0018] The general architecture of the assembly conforming to the present invention resumes the arrangements previously described in reference to
[0019] It is nevertheless recalled that, as previously indicated, the invention relates to a drive assembly including: [0020] a main motor, for example a heat engine, [0021] a gearbox driven by the main motor, [0022] a differential driven by the gearbox, [0023] a shaft split into two half-shafts, which is coupled to the differential, [0024] two universal joints coupled respectively to the half-shafts, and [0025] a hydraulic machine, preferably intended for driving a second shaft, linked to the gearbox or to the differential.
[0026] Within the scope of the present application the term universal joint or the synonymous expression Cardan joint are used in their usual sense in the automobile field to designate a mechanism allowing transmission of a rotational movement to driving and steering road-wheels, while providing a rotational link between two shafts, one driving and one driven shaft, the axes whereof are concurrent, while allowing angular displacement of the driven shaft in all relative directions with respect to the driving shaft.
[0027] Moreover, in the scope of the present invention, the term half-shaft is used to designate a portion of a shaft which does not cover the entire length of a drive shaft and does not extend all the way between two driving wheels, but only on one portion of a drive shaft, between a differential and an associated universal joint, and the expressions short shaft and long shaft are used to designate such portions of a drive shaft having different lengths.
[0028] Represented on the appended
[0029] The half-shaft 50 associated with the universal joint 55, here a right universal joint, is housed inside the tubular shaft 12, coaxially therewith.
[0030] The bearing 100 is integrated in the hydraulic machine 10 which thus supports in rotation the half-shaft 50 in proximity to the universal joint 55.
[0031] Advantageously, the external tubular shaft 12 is connected to the crown gear or the cage of the differential 40 while the internal shaft 50 is connected to a satellite gear of the differential.
[0032] By way of a non-limiting example, the bearing 100 can be formed from a ball bearing.
[0033] The hydraulic machine 10 is preferably a radial piston machine.
[0034] Such machines are for example described in documents FR-2872227 and FR 2940672.
[0035] The general structure of such a radial piston machine is well known to a person skilled in the art and will therefore not be described in detail hereafter. It is recalled, however, that generally, hydraulic motors with radial pistons comprise, in the chamber of a casing, a hydraulic/mechanical transducer composed of a multilobe cam, a cylinder block mounted with relative rotation in the casing, a shaft linked in rotation to the cylinder block, pistons guided with radial sliding in respective cylinders of the cylinder block and supported on the lobes of the cam, and a distributor adapted to apply a fluid coming from a pressurized source successively and in a controlled manner to the pistons, so that the number of pistons being different from the number of lobes formed on the cam, the successive thrust by the pistons on the lobes of the cam drives the relative rotation of the cylinder block and the elements which are linked to it with respect to the casing.
[0036] Such a system is reversible, i.e., if the shaft or an element which is mechanically linked with it is driven in rotation by an external mechanical member, the cooperation of the pistons and of the multilobe cam generates successive pressures in the cylinders so that the hydraulic/mechanical transducer then constitutes, not a motor but a hydraulic pump.
[0037] One example embodiment of such a hydraulic machine including an external multilobe cam associated with a cylinder block and internal radial pistons is described in document FR 2872227.
[0038] One example embodiment of such a hydraulic machine including an internal multilobe cam associated with a cylinder block and external radial pistons is described in document FR 2940672.
[0039] It will be noted that on the side of the hydraulic machine 10, a long shaft 50 associated with a universal joint 55 connects one wheel to the gearbox 30 while passing through the hydraulic machine 10.
[0040] Moreover, the two left 53 and right 55 universal joints have substantially the same length and are advantageously identical or at least substantially identical.
[0041] It will also be noted that preferably, the machine 10 which forms the intermediate transmission bearing is positioned so that the couplings of the left 53 and right 55 universal joints are located at the same distance from the longitudinal axis of the vehicle, so that the two universal joints 53 and 55 are identical or at least substantially identical.
[0042] Shown in the appended
[0043] In
[0044] The half-shaft 54 is formed here from two coaxial segments 540, 545, one of them, 540, coupled by any appropriate means, for example a fluted tip 541, with a satellite gear of the differential 40 and the other, 545, coupled to the universal joint 55. The two segments 540, 545 are coupled mechanically by an external splined sleeve 520, itself rotatably guided on the hydraulic machine 10 by two bearings 522, 524.
[0045] The splined sleeve 520 is engaged with two fluted tips 542 and 546 formed respectively on the respective adjacent ends of the two segments 540 and 545.
[0046] There too, as illustrated in
[0047] According to the embodiments illustrated in
[0048] Shown in the appended
[0049] Observed in this
[0050] This tubular shaft 12 serves as a power take-off for transferring torque between the hydraulic machine 10 and the differential 40.
[0051] Represented schematically in
[0052] Still more precisely, a hydraulic machine 10 is sketched on
[0053] Preferably, different wafers are angularly offset so as to smooth the constant velocity operation of the machine.
[0054] The modular construction of the machine 10 by stacking several wafers makes it possible to increase the cylinder displacement of the machine.
[0055] The bearing 100 is shown schematically in the appended
[0056] Observed in each of the
[0061] According to the embodiments illustrated in
[0062] The embodiment shown in
[0063] The intermediate tubular shaft 12 is supported in rotation by a roller 120, formed preferably from a ball bearing, interposed between the external surface of the shaft 12 and the element 16, according to the four embodiments of
[0064] According to the two embodiments illustrated in
[0065] According to both embodiments illustrated in
[0066] The four embodiments illustrated in
[0067] According to the embodiments illustrated in
[0068] According to the embodiments illustrated in the 4
[0069] It will be noted that, according to
[0070] Different configurations can be accepted for providing the connection between the half-shaft 54 and the associated universal joint 55, as can be seen by comparatively examining
[0071] A person skilled in the art will understand, upon examining
[0072] Of course, the present invention is not limited to the embodiments which have just been described, but extends to all variants conforming to its spirit.
[0073] The present invention offers in particular a solution for placing a machine with a multilobed cam in proximity to a gearbox output and thus allows space saving with respect to available solutions conforming to the prior art.