Engagement-disengagement, suspension or steering release bearing, and motor vehicle equipped with such a release bearing
09664233 ยท 2017-05-30
Assignee
Inventors
Cpc classification
F16C33/7876
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/7856
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/761
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D23/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/7826
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/163
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2361/43
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/78
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/783
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/768
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C33/76
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/78
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D23/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An engagement-disengagement, suspension or steering release bearing. The release bearing includes a rolling bearing forming a member for transmitting an axial force and comprising a rotating ring and a non-rotating ring between which a rolling chamber is mounted for rolling bodies and a sealing gasket, which is mounted on a first ring among the rotating and non-rotating rings, and which comprises a framework, having an edge folded down radially toward a groove arranged on a surface of the first ring, and a fitting, having a sealing lip in sliding bearing against, or adjacent to, a corresponding surface of the second ring, The fitting of the seal is suitable for filling the groove of the first ring and part of the fitting is jammed between the folded down edge of the framework and the groove in the configuration with the seal mounted on the first ring.
Claims
1. An engagement-disengagement, suspension or steering release bearing, the release bearing comprising: a rolling bearing forming a member transmitting an axial force and comprising a rotating ring and a non-rotating ring between which a rolling chamber for rolling bodies is defined; and a sealing gasket, wherein the sealing gasket is mounted on a first ring among the rotating and non-rotating rings, and wherein the sealing gasket comprises a framework, having an edge folded down radially toward a groove arranged on a surface of the first ring, and a fitting, having a sealing lip in sliding bearing one of against or adjacent to, a corresponding surface of a second ring among the other of the rotating and non-rotating rings, wherein the fitting of the sealing gasket is suitable for filling the groove of the first ring and part of the fitting is jammed between the folded down edge of the framework and the groove, wherein the part of the fitting jammed between the folded down edge of the framework and the groove is provided to be sheared during the application of an axial separating force applied on the first and second rings of the rolling bearing, wherein the rolling bodies are suitable for exerting a reaction force to the axial separating force on the sealing gasket, which are adapted to push the folded down edge of the framework toward the groove and shear the part of the fitting jammed between the folded down edge of the framework and the groove.
2. The release bearing according to claim 1, wherein the groove is arranged on an inner radial surface of the first ring.
3. The release bearing according to claim 2, wherein an outer diameter of the framework is slightly smaller than a diameter of the inner radial surface of the first ring.
4. The release bearing according to claim 1, wherein a difference in diameter between an outer diameter of the framework and a diameter of the surface of the first ring is equal to 0.3 mm.
5. The release bearing according to claim 1, wherein the framework is made from metal and the fitting is made from elastomer.
6. The release bearing according to claim 1, wherein the sealing gasket is secured in rotation with the first ring, which rotates.
7. The release bearing according to claim 1, wherein the groove has a depth greater than 0.1 mm.
8. The release bearing according to claim 1, wherein the groove has a depth equal to 0.2 mm.
9. An engagement-disengagement, suspension or steering release bearing, the release bearing comprising: a rolling bearing forming a member transmitting an axial force and comprising a rotating ring and a non-rotating ring between which a rolling chamber for rolling bodies is defined; and a sealing gasket, wherein the sealing gasket is mounted on a first ring among the rotating and non-rotating rings, and wherein the sealing gasket comprises a framework, having an edge folded down radially toward a groove arranged on a surface of the first ring, and a fitting, having a sealing lip in sliding bearing one of against or adjacent to, a corresponding surface of a second ring among the other of the rotating and non-rotating rings, wherein the fitting of the sealing gasket is suitable for filling the groove of the first ring and part of the fitting is jammed between the folded down edge of the framework and the groove, wherein a difference in diameter between an outer diameter of the framework and a diameter of the surface of the first ring is smaller than 0.8 mm.
10. A motor vehicle, comprising at least one release bearing, each release bearing comprising: a rolling bearing forming a member transmitting an axial force and comprising a rotating ring and a non-rotating ring between which a rolling chamber for rolling bodies is defined; and a sealing gasket, wherein the sealing gasket is mounted on a first ring among the rotating and non-rotating rings, and wherein the sealing gasket comprises a framework, having an edge folded down radially toward a groove arranged on a surface of the first ring, and a fitting, having a sealing lip in sliding bearing one of against or adjacent to, a corresponding surface of a second ring among the other of the rotating and non-rotating rings, wherein the fitting of the sealing gasket is suitable for filling the groove of the first ring and part of the fitting is jammed between the folded down edge of the framework and the groove, wherein the part of the fitting jammed between the folded down edge of the framework and the groove is provided to be sheared during the application of an axial separating force applied on the first and second rings of the rolling bearing, wherein the rolling bodies are suitable for exerting a reaction force to the axial separating force on the sealing gasket, which are adapted to push the folded down edge of the framework toward the groove and shear the part of the fitting jammed between the folded down edge of the framework and the groove, wherein the at least one release bearing is integrated into the motor vehicle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be better understood, and other advantages thereof will appear more clearly, in light of the following description of one embodiment of a rolling bearings according to its principle, provided solely as an example and done in reference to the appended drawings, in which:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE PRESENT INVENTION
(6)
(7) The release bearing 1 comprises a rolling bearing 2 having a rotating outer ring 20 secured in rotation with the diaphragm and a non-rotating inner ring 22 between which a rolling chamber is defined. A single series of rolling bodies 24 is positioned in the rolling chamber, while being kept in position by a cage 26. In the example of the figures, the rolling bodies 24 are beads, but they may be needles or rollers.
(8) Reference X2 denotes a central axis of the rolling bearing 2, i.e., the relative axis of rotation of the rings 20 and 22 with respect to one another. The rings 20 and 22 are centered on the axis X2.
(9) In the rest of the description, a rear direction designates an axial direction, i.e., parallel to the axis X2, that is turned toward the piston, the piston being suitable for bearing on the right side of the rolling bearing 2 in
(10) The rotating ring 20 comprises an annular part 20b that is positioned in front, i.e., on the side of the noses 3, and that extends radially to the axis X2, and a tubular part 20a, which is positioned behind, and which extends globally parallel to the axis X2. The noses 3 of the diaphragm bear against a front face S20b of the front part 20b opposite the rolling chamber.
(11) The inner ring 22 also comprises an annular part 22b, which is positioned in front and which extends radially to the axis X2, and a tubular part 22a, which extends backward globally parallel to the axis X2.
(12) A sheet metal sleeve 5, shown in mixed lines in
(13) A lock washer 7, also shown in mixed lines, is positioned coaxially around the cylindrical part 54. More specifically, this lock washer 7 is inserted between the curved free edge of the part 54 and the front face of the part 22b of the ring 22.
(14) References S20 and S22 respectively denote the rolling surfaces of the beads 24 on the ring 20 and on the ring 22. These surfaces S20 and S22 are curved, in the form of a toroid portion, with a curve radius equal to that of the beads 24. The rings 20 and 22 each extend toward the rear, relative to the surface S20 or S22, by a tubular part centered on the axis X2. Thus, reference S20i denotes an inner radial surface of the part 20a, that inner radial surface S20i extending the surface S20 toward the rear. Reference S22e also denotes an outer radial surface of the part 22a, that outer radial surface S22e extending the surface S22 toward the rear. Reference D20i denotes the diameter of the surface S20i; in the example, the diameter is chosen to be equal to 62.49 mm.
(15) A peripheral groove 21 is arranged on the inner radial surface S20i of the ring 20. This groove 21 extends over the entire circumference of the ring 20 and has a globally V-shaped section with a flat bottom. The groove 21 comprises a bottom 21a and two side edges 21b. The two edges 21b are inclined relative to a direction radial to the axis X2 such that the width of the groove 21 decreases going from the mouth to the bottom 21a of the groove 21. Reference 12l denotes the maximum width of the groove 21, i.e., the width measured at the mouth of the groove. The groove 21 has a depth p21, measured radially relative to the axis X2, which is greater than 0.1 mm, preferably equal to 0.2 mm.
(16) In one embodiment of the invention that is not shown, the peripheral groove 21 may assume the form of a series of grooves delimited over predetermined angular sectors.
(17) A seal 4 is mounted coaxially between the rings 20 and 22, behind the rolling bearing 2. This seal 4 is fastened to the outer ring 20 and is designed to isolate the rolling chamber from the outside, opposite the noses 3 of the diaphragm. It further makes it possible to keep the grease near the rolling bodies during operation. The seal 4 is inserted between the surfaces S20i and S22e. It comprises a framework 40 made from a relatively rigid material, for example metal. It also comprises a fitting 42 made from a flexible material, which may be made from synthetic elastomer or natural rubber. The fitting 42 may be overmolded on the framework 40 or attached by any other appropriate means, such as gluing or welding. The fitting 42 forms a lip 42a which, in the example, bears slidingly against the outer radial surface S22e of the ring 22. However, the lip 42a may not be in contact with the surface S22e, but extend at a small radial distance therefrom, i.e., be adjacent to the surface S22e.
(18) As more particularly shown in
(19) In one embodiment of the invention that is not shown, the edge 40c may be discontinuous.
(20) As shown in
(21) Part 42b of the fitting 42 fills the groove 21. In fact, that part 42b has a radial thickness e42b that is larger than or equal to the depth p21 of the groove 21 and a width 142b that is greater than or equal to the maximum width 12l of the groove 21. In order to fill the groove 21, the part 42b may therefore be shaped to the geometry thereof or compressed. That portion 42b is jammed, due to the aforementioned difference in diameter, radially between the folded down edge 40c of the framework 40 and the bottom 21a of the groove 21. In this way, the seal 4 is axially secured to the ring 20.
(22) When an axial separating force is exerted on the rings 20 and 22, as shown by arrows F1 and F2 in
(23) Thus, the beginning of the relative axial movement between the rings 20 and 22, in the direction of arrows F1 and F2, results in bringing the beads 24 toward the part 20a, then into contact with the seal 4. In this configuration shown in
(24) In fact, the ring 20 exerts, on the fitting 42 of the seal 4, an adherence force, globally parallel to the axis X2 and oriented forward, while the reaction force E2 of the beads 24, which is opposite the axial separating force F1, F2 and which is transmitted to the part 42b of the fitting 42 by the folded down edge 40c of the framework 40, exerts, on the part 42b, a globally axial force oriented backward, i.e., opposite the adherence force between the fitting 42 and the ring 20. These two opposing forces therefore shear the component material of the part 42b.
(25) The separating force of the rings 20 and 22 therefore results in the formation of a shear stress within the fitting 42. The latter being flexible, it withstands high shear forces, which gives the release bearing 1 a high resistance to disassembly.
(26) In so doing, the beads 24 improve the anchoring of the seal 4 relative to the ring 20, which allows the seal 4 to withstand a reaction force, or separating force, exerted by the beads 24.
(27) In other words, the cooperation of the part 42b of the fitting 42 with the groove 21, under the action of the folded down edge 40c of the framework 40, results in the seal 4 forming an effective release bearing for a beginning of axial separating movement of the rings 20 and 22, under the effect of the pulling out force represented by arrows F1 and F2 in
(28) It will be noted that the greater the pulling out force F1+F2 is, the more the beads 24 push the folded down edge 40c toward the inside of the groove 21 owing to the force E2, and the more the part 42b is compressed and sheared, which implies that the anchoring of the seal 4 on the ring 20 is that much more effective.
(29) In the current case where the separating force of the rings 20 and 22 is essentially axial, the beads 24 act simultaneously over the entire circumference of the seal 4. However, in the case where the separating force between the rings 20 and 22 is not strictly parallel to the axis X2, i.e., in the case where that force is only partially axial, the beginning of relative movement of the rings 20 and 22 may result in only part of the beads 24 coming into contact with the seal 4. In that case, only one or several portions of the edge 40c compress(es) and/or shear(s) the part 42b against the groove 21. This is, however, sufficient to form a release bearing with respect to the separating or spacing movement of the rings 20 and 22 along the axis X2. It will be understood that, if the separating force is released, the ring 20 may return to the configuration of
(30) The invention is described above and shown in the figures in the case where the seal 4 is mounted on the outer ring 20. Alternatively, this seal 4 may be mounted on the inner ring 22. In that case, the configuration of the seal is reversed and a groove similar to the groove 21 is arranged on the outer radial surface S22e of the inner ring 22 and the edge 40c of the framework 40 is folded down radially toward the inside, toward the axis X2.
(31) The invention is described above in the case where the outer ring is rotating. It may also be implemented in the case where it is the inner ring that rotates.
(32) The invention can also be used with a rolling release bearing, as described in WO-A-2010/031756.
(33) The invention is described above in the case of its use for an engagement-disengagement release bearing. It is also applicable to other release bearings, particularly a suspension release bearing or a steering release bearing.
(34) The technical features of the embodiments and alternatives considered above may be combined with one another to create new embodiments.