This application is a national stage of, and claims priority to, European Patent Application No. EP 21184817.1, filed on Jul. 9, 2021, which application is hereby incorporated herein by reference in its entirety.
A centered double universal joint is known from EP 1 253 338 B1 and EP 1 277 979 B1. In the centered double universal joints described there, the two outer joint forks are each articulated via a trunnion cross to the two inner joint forks, which are each arranged on a bearing housing section. The bearing housing sections are welded together and define the annular recess in which the guide disc is radially displaceably mounted with the interposition of the floating annular floating discs. The guide disc has a central guide portion with centering projections on both sides. This has a central bore starting from its end faces. The outer joint forks, whose fork arms are connected by a bridge, each have a bearing journal that receives a bearing inner ring with a spherical outer surface. The bearing journal engages in the bearing bore of the guide portion of the guide disc and is supported there via a bearing outer ring with a spherical inner surface, which receives the spherical outer surface of the bearing inner ring. The inner and outer diameters of the floating discs are in such a ratio to the diameters of the annular recess and the guide disc that the annular recess is closed to the outside in all positions of displacement of the guide disc.
Due to the required radial play between the floating discs and the central guide portion of the guide disc on the one hand and the radial play between the floating discs and the annular recess on the other hand, the floating discs are accommodated with radial play in the annular recess at least in a not fully angled state of the double universal joint. This can cause the floating discs to move radially when the double universal joint is not fully angled, thus generating noise.
A centered double universal joint can have a housing with a first inner joint fork and a second inner joint fork, a first outer joint fork hingedly connected to the first inner joint fork via a first trunnion cross, and a second outer joint fork hingedly connected to the second inner joint fork via a second trunnion cross. An annular recess is disposed in the housing about a longitudinal axis of the housing. Furthermore, the centered double universal joint has a guide disc that is guided in a radially adjustable manner in the annular recess of the housing, with the two outer joint forks being coupled to the guide disc in an articulated manner. Two floating discs are arranged in the axial direction on both sides of the guide disc in the annular recess.
According to one aspect of the present disclosure a centered double universal joint has a housing with a first inner joint fork and a second inner joint fork, a first outer joint fork articulated to the first inner joint fork via a first trunnion cross, and a second outer joint fork articulated to the second inner joint fork via a second trunnion cross. An annular recess is disposed in the housing about a longitudinal axis of the housing. Furthermore, the centered double universal joint has a guide disc that is guided in a radially adjustable manner in the annular recess of the housing, with the two outer joint forks being coupled to the guide disc in an articulated manner. Two floating discs are arranged in the axial direction on both sides of the guide disc in the annular recess. The housing, the floating discs or the guide disc are magnetized exerting a magnetic force on the floating discs in the direction of the longitudinal axis.
The housing, the floating discs, or the guide disc, can each be magnetized as a whole or magnetized in areas. In the case of area magnetization, separate elements, such as permanent magnets, can be provided that are connected to the housing, the floating discs or the guide disc. This connection of separate elements is also to be understood as magnetization in the context of the present disclosure.
In the case of magnetization of the housing, the floating discs are each moved or pulled towards the housing axially along the longitudinal axis due to the magnetic forces. When the floating discs move radially to the longitudinal axis and relative to the housing, frictional forces are thus created between the floating discs and the housing, preventing or reducing free back-and-forth movement that would generate noise.
The same applies in the case of magnetization of the guide disc, in which the floating discs are moved axially along the longitudinal axis towards the guide disc, so that friction forces are generated between the floating discs and the guide disc during radial movement of the floating discs.
Alternatively, the floating discs can also be magnetized in such a way that they are either moved towards the housing or moved towards the guide disc and corresponding frictional forces are created.
The annular recess may be axially limited by a first guide surface and a second guide surface, each oriented perpendicular to the longitudinal axis.
The guide disc may have a first guide surface and a second guide surface facing away from each other and oriented perpendicular to the longitudinal axis. The guide disc is guided in a radially adjustable manner via the guide surfaces in the annular recess of the housing.
A first floating disc of the two floating discs can be arranged between the first guide surface of the annular recess and the first guide surface of the guide disc. Further, a second floating disc of the two floating discs may be disposed between the second guide surface of the annular recess and the second guide surface of the guide disc.
If the magnetization is provided in such a way that the floating discs are each drawn to the guide surface in the annular recess, a frictional force is created between the guide surface in the annular recess and the floating discs when the guide disc moves radially. If, on the other hand, the magnetization is designed in such a way that the floating discs are attracted to the guide disc, frictional forces arise between the floating discs and the guide surfaces of the guide disc when the floating discs move radially.
In an exemplary embodiment, it may be provided that at least one magnet is embedded in each of the first guide surface and the second guide surface of the annular recess or in the first guide surface and the second guide surface of the guide disc or in the floating discs.
The at least one magnet can be seated in a recess which opens into the respective guide surface or in a surface of the respective floating disc.
The at least one magnet can be flush with the respective guide surface or surface. To avoid wear of the magnet, it can also be provided that it is arranged set back from the respective guide surface or surface.
In one embodiment, the at least one magnet may have a cylindrical outer contour, wherein the recess is complementary to the outer contour of the magnet. In particular, the recess can be designed as a blind hole.
The at least one magnet can be held in the respective recess solely by its magnetic force. However, it is also conceivable that the at least one magnet is held by a form-fit or material-fit connection. For example, the at least one magnet may be glued.
In one embodiment, a plurality of magnets may be provided that are distributed around the circumference, in particular evenly distributed around the circumference.
The magnets can be arranged at different distances from the longitudinal axis around the circumference.
The at least one magnet can be a permanent magnet.
Embodiments of a centered double universal joint are explained in more detail below with reference to the drawings, in which
In
The first universal joint of the double universal joint comprises a first outer joint fork 1 with two first outer fork arms 2 connected by a first bridge 3 at their free ends. The first bridge 3 carries a first bearing journal 4 with a first axis 5. The bearing journal 4 is cylindrical on its outer surface. On the first bearing journal 4, a first bearing inner ring 6, which has the shape of a spherical layer with a spherical outer surface 7, is held non-displaceably along the first axis 5. The first outer joint fork 1 is hinged to the first inner joint fork 8 via a first trunnion cross 10 by means of rolling bearings 11. The first inner joint fork 8 is integrally formed with its two first inner fork arms 40 with a first bearing housing section 9.
The second joint includes a second outer joint fork 12 having two second outer fork arms 13. The two second fork arms 13 are connected to each other by a second bridge 14. The second bridge 14 carries a second bearing journal 15, which has a cylindrical outer surface and is centered on the second axis 16. On the second bearing journal 15, a second bearing inner ring 17 is held axially non-displaceable along the second axis 16. The second bearing inner ring 17 has a spherical outer surface 18. The second outer joint fork 12 is articulated to the fork arms 13 of the second inner joint fork 19 via a second trunnion cross 21 by means of rolling bearings 22. The second inner joint fork 19 is integrally formed with a second bearing housing section 20 by its two second inner fork arms 41.
The first bearing housing section 9 and the second bearing housing section 20 together form the housing 23, and are welded together, but may also be connected together in other ways, such as by fastening screws. The two bearing housing sections 9, 20 together form a radially outwardly closed and radially inwardly open annular recess 24, in which a guide disc 25 together with a first floating disc 26 and a second floating disc 27, which are arranged on both sides of the guide disc 25, are received in a radially adjustable manner between an annular first guide surface 54 and an annular second guide surface 55 of the annular recess 24. The annular recess 24 is axially limited by a first guide surface 43 and a second guide surface 44, which are opposite each other. The first floating disc 26 is disposed between and guided by the first guide surface 43 of the annular recess 24 and the first guide surface 32 of the guide disc 25. The second floating disc 27 is disposed between and guided by the second guide surface 44 of the annular recess 24 and the second guide surface 33 of the guide disc 25.
The diameters of the two annular floating discs 26, 27, the guide disc 25 and the annular recess 24 are matched to each other in such a way that the adjustment of the guide disc 25 required due to the angular deflection can be carried out in the annular recess 24, the latter is held securely, and the annular recess is closed to the outside at every angular deflection. Accordingly, the largest diameter of the annular recess 24 is larger than the outer diameter of the two annular floating discs 26, 27 and larger than the outer diameter of the guide disc 25. The inner diameter of the two annular floating discs 26, 27 is smaller than the outer diameter of the guide disc 25. The guide disc 25 further includes a central first centering projection 28 and a second centering projection 29, each having a cylindrical bearing bore 30 with a longitudinal axis 31. (As shown in
A first bearing outer ring 34 with a spherical bore sits on the first bearing inner ring 6 wherein the bore is adapted to the spherical outer surface 7 of the first bearing inner ring 6. The first bearing outer ring 34 is cylindrical in shape on the outside and is slidably guided in the bearing bore 30. Accordingly, the second bearing inner ring 17 is received with the spherical outer surface 18 in a corresponding spherical bore of a second bearing outer ring 35. The second bearing outer ring 35 is also slidably received in the bearing bore 30 with its cylindrical outer surface.
The two trunnion crosses 10, 21 each have four trunnions 36, 36′, two of which are arranged on a common trunnion axis 37, 38. The trunnions 36, 36′ are mounted in bores 39 of the fork arms 2, 13, 40, 41 by means of rolling bearings 11, 22. The rolling bearings 11, 22 each comprise a bearing sleeve 42 which is seated in the respective bore 39 and rolling elements (not shown) which roll on an outer surface of the respective trunnion 36, 36′ and an inner surface of the respective bearing sleeve 42.
Due to the required radial play between the floating discs 26, 27 and the central centering projections 28, 29 of the guide disc 25 on the one hand, and the radial play between the floating discs 26, 27 and the annular recess 24 radially outward on the other hand, the floating discs 26, 27 can move radially within the annular recess 24 at least in a not fully angled state of the double universal joint as shown in
This is prevented in the embodiment shown in
1 first outer joint fork
2 first outer fork arm
3 first bridge
4 first bearing journal
5 first axis
6 first bearing inner ring
7 spherical outer surface
8 first inner joint fork
9 first bearing housing section
10 first trunnion cross
11 rolling bearing
12 second outer joint fork
13 second outer fork arms
14 second bridge
15 second bearing journal
16 second axis
17 second bearing inner ring
18 spherical outer surface
19 second inner joint fork
20 second bearing housing section
21 second trunnion cross
22 rolling bearing
23 housing
24 annular recess
25 guide disc
26 first floating disc
27 second floating disc
28 first centering projection
29 second centering projection
30 bearing bore
31 longitudinal axis
32 first guide surface of the guide disc
33 second guide surface of the guide disc
34 first bearing outer ring
35 second bearing outer ring
36, 36′ trunnion
37, 37′ trunnion axis
38, 38′ trunnion axis
39, 39′ bore
40 first inner fork arm
41 second inner fork arm
42, 42′ bearing bushing
43 first guide surface of the annular recess
44 second guide surface of the annular recess
45, 45′ magnet
46, 46′ recess
47 circle
48 inner circle
49 outer circle
Number | Date | Country | Kind |
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21184817.1 | Jul 2021 | EP | regional |