NON-LOCATING BEARING ASSEMBLY
20220389956 · 2022-12-08
Inventors
- Juergen Barthelme (Grettstadt, DE)
- Helmut Hauck (Euerbach, DE)
- Sebastian KRAUS (Schwanfeld, DE)
- Andreas Herbert Kraus (Bergrheinfeld, DE)
- Stefanie Seufert (Rothhausen, DE)
- Alexander Dilje (Schweinfurt, DE)
- Hans-Juergen Friedrich (Konigsberg-Romershofen, DE)
- Berthold BEYFUSS (Wasserlosen-Kaisten, DE)
Cpc classification
F16C19/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2226/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C35/077
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C27/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2361/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C23/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A non-locating bearing assembly includes a bearing unit configured to support a rotatable component relative to a stationary component, the bearing unit including a first stationary bearing ring and a second rotatable bearing ring. The rotatable bearing ring is fixedly connectable to the rotatable component, and a bearing carrier is attached to the stationary bearing ring in a rotationally fixed but axially displaceable manner by a combination of a friction fit and an interference fit. The bearing carrier is configured to be fixedly connected to the stationary component.
Claims
1. A non-locating bearing assembly comprising: a bearing unit configured to support a rotatable component relative to a stationary component, the bearing unit including a first stationary bearing ring and a second rotatable bearing ring, the rotatable bearing ring being fixedly connectable to the rotatable component, and a bearing carrier attached to the stationary bearing ring in a rotationally fixed but axially displaceable manner by a combination of a friction fit and an interference fit, wherein the bearing carrier is configured to be fixedly connected to the stationary component.
2. The non-locating bearing assembly according to claim 1, wherein the non-locating bearing assembly is provided as a preinstallable unit.
3. The non-locating bearing assembly according to claim 1, including a spring in the bearing carrier configured to axially preload the bearing ring toward an end of the bearing carrier.
4. The non-locating bearing assembly according to claim 3, including a stop element on the bearing carrier, the stop element being configured to interact with the spring element or the bearing ring to limit an axial movement of the spring element or the bearing ring.
5. The non-locating bearing assembly according to claim 1, including means for connecting the stationary bearing ring to the bearing carrier by the combination of the friction fit and the interference fit, the means for connecting being located between the bearing carrier and the stationary bearing ring.
6. The non-locating bearing assembly according to claim 5, wherein the means for connecting comprises a connecting element having a ring portion surrounding the stationary bearing ring and a projection extending into a recess in the bearing carrier, the ring portion forming a friction fit with the stationary bearing ring to resist rotation of the connecting element relative to the stationary bearing ring and the projection extending into the recess forming an interference fit to resist rotation of the connecting element relative to the bearing carrier.
7. The non-locating bearing assembly according to claim 6, wherein the ring portion of the connecting element is located in a circumferential groove in the stationary bearing ring.
8. The non-locating bearing assembly according to claim 7, wherein the connecting element is resilient in a radial direction and configured to apply a radially inward force against a bottom of the groove, and wherein the projection is formed by at least one radially outwardly directed end of the connecting element.
9. The non-locating bearing assembly according to claim 8, wherein the connecting element is a snap ring.
10. The non-locating bearing assembly according to claim 7, wherein the connecting element includes radially resilient tabs configured to snap or spread into the groove to form the friction fit.
11. The non-locating bearing assembly according to claim 7, wherein the circumferential groove is formed at a transition from a radial surface of the bearing ring to an end surface of the bearing ring and is open in an axial direction.
12. The non-locating bearing assembly according to claim 5, wherein the means for connecting comprises a connecting element having a ring portion on an interior surface of the bearing carrier and a projection extending into a recess in the stationary bearing ring, the ring portion forming a friction fit with the bearing carrier to resist rotation of the connecting element relative to the bearing carrier and the projection extending into the recess forming an interference fit to resist rotation of the connecting element relative to the stationary bearing ring.
13. The non-locating bearing assembly according to claim 12, wherein the ring portion of the connecting element is located in a circumferential groove in the bearing carrier.
14. The non-locating bearing assembly according to claim 13, wherein the connecting element is resilient in a radial direction and configured to apply a radially outward force against a bottom of the groove, and wherein the projection is formed by at least one radially inwardly directed end of the connecting element.
15. The non-locating bearing assembly according to claim 14, wherein the connecting element is a snap ring.
16. The non-locating bearing assembly according to claim 15, wherein the wherein the connecting element includes radially resilient tabs configured to snap or spread into the groove to form the friction fit.
17. A non-locating bearing assembly comprising: a bearing unit configured to support a rotating component relative to a stationary component, the bearing unit including a first stationary bearing ring and a second rotatable bearing ring, the rotatable bearing ring being fixedly connectable to the rotating component, and a bearing carrier to which the stationary bearing ring is attached in a rotationally fixed but axially displaceable manner, wherein the bearing carrier is configured to be fixedly connected to the stationary component.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0059] In the following, identical or functionally equivalent elements are designated by the same reference numbers.
[0060] The appended Figures show preferred exemplary embodiments of a non-locating bearing assembly 1 including a bearing carrier 2 in which a bearing unit 4 and a spring element 6 are disposed. The exemplary embodiments depicted show a non-locating bearing assembly 1 that can be used, for example, for supporting a shaft in a housing, wherein the housing is stationary and the shaft is configured to rotate. Of course, the non-locating bearing assembly 1 is also usable in other applications, for example, a stationary pin and a rotating housing.
[0061] It is advantageous here in particular when the bearing carrier 2 and the bearing unit 4 are manufactured from the same material or at least from materials having identical or similar thermal expansion coefficients. Fit changes in operation can thereby be prevented.
[0062] In the depicted exemplary embodiments, the bearing carrier 2 is configured pot-shaped and includes a pot rim configured as flange 20, a pot wall 22, and a pot base 24, wherein the pot base 24 includes a large recess 26 in order to attach the non-locating bearing assembly 1 to the movable component (not depicted). Furthermore, the bearing carrier 2 includes attachment options 28 that are preferably disposed equally spaced along the flange 22. The attachment elements 28 can be configured as through-holes that are suitable for the receiving of screws. Of course, other attachment elements are also possible.
[0063] The bearing unit 4 comprises a bearing outer ring 40 that is configured in the depicted exemplary embodiment as a stationary bearing ring and a bearing inner ring 42 that is rotatable here, which are disposed spaced with respect to each other and receive rolling elements 44 between them that are guided and held uniformly spaced by a cage 46. As mentioned above, the exemplary embodiments are suited in particular for a shaft bearing assembly in a housing wherein the outer ring is disposed rotationally fixed but axially displaceable. However, it is equally possible to form the bearing inner ring axially displaceable. Such a design is advantageous in particular with rotating housings, such as, for example, a hollow shaft.
[0064] In the exemplary embodiments depicted the bearing unit is furthermore configured as a ball bearing, but all other types of rolling-element bearings and plain bearings are also possible.
[0065] Furthermore, it can be seen from the Figures that in addition to the bearing unit 4 a spring element 6 is also disposed in the bearing carrier 2. This spring element 6 ensures that the bearing outer ring 40 is preloaded in the bearing carrier 2. Here one side of the spring element 6 is supported on the pot base 24 of the bearing carrier 2 and the other side is supported on an end side 50 of the bearing outer ring 40.
[0066] In order to in particular provide a preinstalled non-locating bearing assembly 1, the bearing carrier 2 can furthermore be equipped on the flange side with a stop 32 that contacts and supports the bearing outer ring 40 on its other end side 52. It is thereby also possible to arrange the bearing unit overall in an already preloaded rest position in the bearing carrier 2. At the same time the entire non-locating bearing assembly 1 can be attached to a stationary component without having to account for tolerances so that a particularly simple installation is possible. A wave spring made of a flat wire is preferably used as the spring element 6.
[0067] However, every other type of spring element 6 is also equally possible, such as, for example, a plate spring.
[0068] As mentioned above, in the exemplary embodiments depicted the non-locating bearing assembly 1 is a non-locating bearing assembly in which the outer ring 40 is rotationally fixed but axially displaceable while the bearing inner ring 42 is fixed to a shaft not depicted here. In contrast, the bearing carrier 2 that receives the bearing unit 4 is fixed and also not axially displaceable with respect to a housing (not depicted) in which the non-depicted shaft is supported.
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[0070] As depicted in particular in
[0071] Thus it is also possible, for example, as shown in
[0072] The snap ring 76 can in particular be manufactured from a metallic material and provide a certain spring action radially outward so that a securing of the projection 62 in the groove 48 is ensured. Alternatively the snap ring 76 can also be configured such that it shows a spring action radially inward so that the material of the snap ring abuts close to the groove base and exerts a radial force inwardly on it so that the friction fit between snap ring 76 and groove 48 is increased.
[0073] As can furthermore be seen from
[0074] It can also be seen from the view from
[0075] A garter spring applies a radially outwardly acting spring force F on the bearing carrier 2 so that a friction fit is achieved between garter spring and bearing-carrier inner wall. In addition, the garter spring abuts against the side walls of the groove 48′ so that a friction fit is also achieved here between the garter spring and the groove.
[0076] In addition, the garter spring includes a plurality of windings and is preferably manufactured from a metallic material. These windings ensure that the garter spring embeds in the abutment surface formed by the inner side of the bearing carrier 2 or interacts with irregularities that arise during the manufacture of the bearing carrier 2 so that in addition to a friction force, an interference-fit component also prevents rotation of the outer ring 40 relative to the bearing carrier 2. The windings similarly also grip into the side walls of the groove 48 so that the friction fit is also strengthened here by interference-fit components, and the bearing ring 40 is prevented from rotating relative to the bearing carrier.
[0077] The grooves 48 or 48′ are usually already present in bearing rings 40 for non-locating bearings so that preexisting non-locating bearing assemblies can also be equipped with the improved connecting element 60.
[0078] The groove 48 itself can be configured not only as a U-shaped groove 48 including side walls 48-1, 48-2, 48-3, which is introduced into a radial surface 54 (see
[0079] On the connecting element 60, of course not only one projection 62, but rather a plurality of projections 62 can be provided that are distributed circumferentially about the ring 64.
[0080] The above-discussed connecting element 60 can be manufactured from plastic and from metal.
[0081] Furthermore, the connecting element 60 can also have a certain ovality so that the bearing ring is also prevented from rotating by the fact that due to the ovality, further rotation of the bearing ring 40 relative to the connecting element 60 or the bearing carrier 2 is prevented.
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[0083] In order to furthermore secure the bearing ring 40 against rotation in the bearing carrier 2, the connecting element 60 furthermore includes projections 62 that, as can also be seen from
[0084] In order to also simultaneously provide the connecting element 60 with the function of a stop element 32, it is provided that the opening 30 is furthermore dimensioned such that the axial displaceability of the connecting element 60 in the opening 30 is axially limited both toward the bearing carrier base 24 and toward the flange 20. This can be achieved, for example, by the projection 62 interacting with the flange 20, wherein in particular the projection 62 has a larger diameter radially than the opening 30.
[0085] Alternatively, however, a stop element 32 can also be shaped here from the flange 20, as depicted in
[0086] Instead of an additional groove 48 in the bearing outer ring 6, an already existing groove, such as, for example, a groove 49 for receiving a seal element for the attaching of the connecting element 60 can also be used.
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[0088] In the first exemplary embodiment shown in
[0089] At the same time it can be seen from
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[0091] In addition to the arrangement of the opening 30 in the pot wall 22 of the bearing carrier 22, the opening 30 can of course also, in a manner analogous to the exemplary embodiment depicted in
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[0094] Since the connecting element 60 completely surrounds the end side 52 of the bearing ring 40, the friction fit of the bearing ring 40 is maximized so that the connecting element 60 is attached to the bearing ring 40 such that they are rotationally fixed even with high rotational load.
[0095] The axial movability of the bearing 4 with respect to the bearing carrier 2 can be achieved in the exemplary embodiment depicted here via the size of the opening 74. Here the opening 74 can in turn provide a stop both for both axial directions. However, it is also possible to use only the step 54 of the groove 48 as an axial limitation that interacts with the staking 32 in order to limit the axial movability of the bearing 4 and to provide the bearing 4 and the bearing carrier 2 as a preassembled unit.
[0096] It is to be noted overall that all exemplary embodiments and the features shown therein can also be present combined with one another differently. Thus a plate spring can always be used instead of the wave spring. The arrangement of bearing unit 4 and spring element 6 is also arbitrarily selectable. It is furthermore possible to provide a corresponding spring element 6 on both the one side and on the other side of the bearing 4. Instead of the staking forming the stop 32, other possibilities for providing a stop 32 or an axial movement limitation of the bearing ring are also comprised by the scope of protection.
[0097] Overall, using the proposed non-locating bearing assembly 1 a simple-to-handle unit can be provided that can be directly installed in its entirety without having to take account of tolerances of the housing, shaft, bearing, snap ring, elastomer ring, and spring. The usability of an entirely preassembled unit also reduces the installation time and thus installation costs. Since bearing carrier 2 and bearing unit 4 are manufactured from the same material, or from materials that thermally expand in a similar manner, a drastic reduction of the negative influence of different temperature-dependent expansions of bearing and light metal of a housing can be achieved.
[0098] Representative, non-limiting examples of the present invention were described above in detail with reference to the attached drawings. This detailed description is merely intended to teach a person of skill in the art further details for practicing preferred aspects of the present teachings and is not intended to limit the scope of the invention. Furthermore, each of the additional features and teachings disclosed above may be utilized separately or in conjunction with other features and teachings to provide improved non-locating bearing assemblies.
[0099] Moreover, combinations of features and steps disclosed in the above detailed description may not be necessary to practice the invention in the broadest sense, and are instead taught merely to particularly describe representative examples of the invention. Furthermore, various features of the above-described representative examples, as well as the various independent and dependent claims below, may be combined in ways that are not specifically and explicitly enumerated in order to provide additional useful embodiments of the present teachings.
[0100] All features disclosed in the description and/or the claims are intended to be disclosed separately and independently from each other for the purpose of original written disclosure, as well as for the purpose of restricting the claimed subject matter, independent of the compositions of the features in the embodiments and/or the claims. In addition, all value ranges or indications of groups of entities are intended to disclose every possible intermediate value or intermediate entity for the purpose of original written disclosure, as well as for the purpose of restricting the claimed subject matter.
REFERENCE NUMBER LIST
[0101] 1 Non-locating bearing assembly [0102] 2 Bearing carrier [0103] 20 Flange [0104] 22 Pot wall [0105] 24 Pot base [0106] 26 Recess [0107] 28 Attachment element [0108] 30 Opening [0109] 32 Stop; staking [0110] 36 Wall of the opening [0111] 4 Bearing unit [0112] 40 Bearing outer ring [0113] 42 Bearing inner ring [0114] 44 Rolling element [0115] 46 Cage [0116] 48 Rotation-securing element-groove [0117] 49 Seal groove [0118] 50; 52 End surfaces of the bearing ring [0119] 54 Step [0120] 60 Connecting element [0121] 62 Rotation-securing element-projection [0122] 64 Ring element [0123] 66 Rotation-securing element-tabs [0124] 68 Undercut [0125] 70 Second annular element of the connecting element [0126] 72 Second projections of the connecting element [0127] 74 Opening in the annular element [0128] 6, 6′ Spring element