SPLIT BEARING CAGE

20180003230 ยท 2018-01-04

    Inventors

    Cpc classification

    International classification

    Abstract

    A split bearing cage for a rolling-element bearing assembly includes a first bearing cage segment and a second bearing cage segment each having two side ring sections axially spaced apart by a plurality of bridges. Adjacent pairs of the bridges define rolling-element receiving pockets for receiving rolling elements of the rolling-element bearing assembly and for holding the rolling elements spaced apart from each other and for guiding the rolling elements. The first bearing cage segment is connected to the second bearing cage segment via a swivel joint that may be formed of a bolt element on a first end of the first bearing cage segment and an at least partial eyelet on the first end of the second bearing cage segment.

    Claims

    1. A split bearing cage for a rolling-element bearing assembly comprising: a first bearing cage segment, a second bearing cage segment each including two side ring sections axially spaced from one another by a plurality of bridges, and adjacent pairs of the bridges defining rolling-element receiving pockets configured to receive rolling elements of the rolling-element bearing assembly and hold the rolling elements spaced apart from each other and to guide the rolling elements, wherein the first bearing cage segment is connected to the second bearing cage segment via a swivel joint.

    2. The split bearing cage according to claim 1, wherein the swivel joint includes a bolt element and at least one eyelet element interacting with the bolt element.

    3. The split bearing cage according to claim 2, wherein the eyelet element is a hook eyelet element that partially surrounds the bolt element.

    4. The split bearing cage according to claim 1, wherein a first cage segment end of the first bearing cage segment includes a first at least partial-ring-shaped eyelet element and a first cage segment end of the second bearing cage segment includes a second at least partial-ring-shaped eyelet element, the first cage segment end of the first bearing cage segment being connected to the first bearing cage segment end of the second bearing cage segment by the bolt element.

    5. The split bearing cage according to claim 2, wherein the bolt element is axle-shaped and has at least two projecting annular ribs.

    6. The split bearing cage according to claim 2, wherein the bolt element is configured such that an outer diameter of the split bearing cage at the bolt element is less than or equal to an outer diameter to be expected of the bearing cage with installed rolling elements or wherein an outer contour of the bolt element corresponds at least at one point to an outer diameter of a rolling element to be received in the bearing cage.

    7. The split bearing cage according to claim 1, wherein a second cage segment end of the first bearing cage segment and a second cage segment end of the second bearing cage segment each include contact surface elements that are configured to form a bridge part when they touch.

    8. The split bearing cage according to claim 7, wherein the contact surface element of the second cage segment end of the first bearing cage segment is complementary to the second cage segment end of the second bearing cage segment.

    9. The splint bearing cage according to claim 8, wherein the contact surface element of the second cage segment end of the first bearing cage segment is convex and the contact surface element of the second cage segment end of the second bearing cage segment is concave.

    10. The split bearing cage according to claim 7, wherein the second cage segment end of the first bearing cage segment includes a latching hook configured to latch to the second cage segment end of the second bearing cage segment.

    11. The split bearing cage according to claim 10, wherein the latching hook extends substantially over the axial width of the first bearing cage segment.

    12. The split bearing cage according to claim 1, wherein the first bearing cage segment and the second bearing cage segment are manufactured from a fiber-reinforced injection-moldable plastic.

    13. The split bearing cage according to claim 3, wherein a second cage segment end of the first bearing cage segment and a second cage segment end of the second bearing cage segment each include contact surface elements that are configured to form a bridge part when they touch, and wherein the contact surface element of the second cage segment end of the first bearing cage segment is convex and the contact surface element of the second cage segment end of the second bearing cage segment is concave, and wherein the bolt element is configured such that an outer diameter of the split bearing cage at the bolt element is less than or equal to an outer diameter to be expected of the bearing cage with installed rolling elements or wherein an outer contour of the bolt element corresponds at least at one point to an outer diameter of a rolling element to be received in the bearing cage.

    14. A split bearing cage for a rolling-element bearing assembly comprising: a first bearing cage segment having a first side ring section and a second side ring section, the first side ring section being connected to the second side ring section by a plurality of first bridges, the first bearing cage segment having a first end and a second end circumferentially spaced from the first end; a second bearing cage segment having a first side ring section and a second side ring section, the first side ring section of the second bearing cage being connected to the second side ring section of the second bearing cage by a plurality of second bridges, the second bearing cage segment having a first end and a second end circumferentially spaced from the second bearing cage segment first end; wherein the first end of the first side ring of the first bearing cage segment includes a first at least partial eyelet and the first end of the second side ring of the first bearing cage segment includes a second at least partial eyelet, and wherein the first end of the second bearing cage segment includes a bolt having a first end swivelably mounted in the first at least partial eyelet and a second end swivelably mounted in the second at least partial eyelet.

    15. The split bearing cage according to claim 14, wherein the second end of the first bearing cage segment includes a portion complementary to a portion of the second end of the second bearing cage segment and wherein the second end of the first bearing cage segment forms a bridge part when in contact with the second end of the second bearing cage segment.

    16. The split bearing cage according to claim 15, wherein the bolt is axle-shaped and has at least two projecting annular ribs.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0021] FIG. 1 is a schematic perspective view of a split bearing cage according to an exemplary embodiment of the present disclosure.

    [0022] FIG. 2 is a schematic perspective view of a split bearing cage according to a further exemplary embodiment of the present disclosure.

    DETAILED DESCRIPTION

    [0023] In the following, identical or functionally equivalent elements are designated by the same reference numbers.

    [0024] FIGS. 1 and 2 each show a schematic perspective view of a split bearing cage 1 for a rolling-element bearing assembly (not shown) including a first and a second bearing cage segment 2, 4. Here in FIG. 2 an alternative design of the proposed split bearing cage 1 is depicted. Furthermore, each of the bearing cage segments 2, 4 includes two side ring sections 6, 8, 10, 12 that are each spaced from one another axially via bridges 14, 16, between which rolling-element receiving pockets 18, 20 are formed. The rolling-element receiving pockets 18, 20 are configured to receive rolling elements (not shown) of the rolling-element bearing assembly, to hold them spaced from one another, and to guide them.

    [0025] In order to improve the operating behavior of the split bearing cage 1, in particular for use with one-part crankshafts, the two bearing cage segments 2, 4 are connected to each other via a swivel joint 22.

    [0026] As shown in FIGS. 1 and 2, the swivel joint 22 includes a bolt element 24 and an eyelet element 26 interacting with the bolt element 24, via which the two bearing cage segments 2, 4 are connected to each other in a simple manner, with the result that the two bearing cage segments 2, 4 do not fall apart in operation. Here the bolt element 24 has an axial axis about which the eyelet element 26 is rotatably disposed in the assembled state (not shown). Furthermore, in the assembled state the bolt element 24 and the eyelet element 26 are configured and connected to each other such that they correspond to a rolling element to be received in the bearing cage 1. In comparison to the bearing cages known from the prior art, in the assembled state the bearing cage 1 can thereby have a shape and dimensioning corresponding to a one-part bearing cage, with the result that imbalances are reduced and the service live of the bearing cage 1 increases.

    [0027] Furthermore, as depicted in FIGS. 1 and 2 the eyelet element can be configured as a hook eyelet element including two snap hooks 28, 30 that in the assembled state partially surround the bolt element 24. Here the two snap hooks 28, 30 circumferentially project in a region of the side ring sections 10, 12 of the second bearing cage segment 4, with the result that with partial surrounding of the bolt element 24 by the side ring sections 6, 8 of the first bearing cage segment 2 they form a common side ring section. Imbalances can thereby be reduced and an improved running behavior of the bearing cage 1 provided.

    [0028] Furthermore, in FIGS. 1 and 2 it is shown that the bolt element 24 is configured axle-shaped including annular ribs 32, whereby a friction of the bolt element 24 with further bearing elements, in particular with the raceways of the bearing rings (not shown) is reducible, and the annular ribs 32 make possible a uniform sliding of the bearing cage. In order to avoid the further imbalances in the operation of the bearing cage, the annular ribs 32 of the bolt element 24 have at most an outer diameter that corresponds to an expected outer diameter of the bearing cage 1 with installed rolling elements. However, preferably the ribs do not radially project beyond a maximum radial extension of the bearing cage.

    [0029] As shown in particular in the exemplary embodiment of FIG. 1, a cage-segment end 34 of the first bearing cage segment 2 and a cage-segment end 36 of the second bearing cage segment 4 each include contact surface elements 38, 40 that are configured as bridge parts. In the event of contact of the bearing cage segments 2, 4, the contact surface elements 38, 40 abut on each other and form a cage bridge. In the assembled state, even in the region of the contact surfaces the bearing cage 1 can thereby have a uniform bridge width of bridges 14, 16, as known from one-part bearing cages. Here the contact surface elements 38, 40 can have contact surfaces that are configured complementary to each other, in particular concave-convex, in order to avoid assembly inaccuracies and in order to center the two contact surfaces such that the cage segments 2, 4 are optimally configured with respect to each other.

    [0030] Alternatively, as shown in particular in the exemplary embodiment of FIG. 2, the cage segment end 34 of the first bearing cage segment 2 can have a latching hook element 42 that is designed to latch on the cage segment end 36 of the second bearing cage segment 4. The two bearing cage segments 2, 4 can thereby be connected to each other in a simpler manner, with the result that a self-supporting bearing cage 1 can be provided. Here the latching hook element 42, as shown in FIG. 2, extends essentially over the axial width of the first bearing cage segment 2, with the result that a sufficient retaining force is provided even with large bearings.

    [0031] Overall, the disclosed split bearing cage a bearing cage makes possible an improved operating behavior, with the result that the service life of the bearing cage and thus of the entire bearing increases. This is made possible by the split bearing cage including at least two bearing cage segments that are connected to each other via a swivel joint, and furthermore by a cage segment end of the first bearing cage segment and a cage segment end of the second bearing cage segment having contact-surface elements that abut on each other in the event of contact of the bearing cage segments and form a cage bridge. In the installed state of the bearing cage the same shape and dimensioning of the rolling-element receiving pockets and bridges can be provided as with a one-part bearing cage. In addition, the presented bearing cage can be used in a limited installation space, such as, for example with one-part crankshafts, however other application cases of the disclosure are of course also comprised.

    [0032] 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 split bearing cages.

    [0033] 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.

    [0034] 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

    [0035] 1 Split bearing cage [0036] 2, 4 Bearing cage segment [0037] 6, 8, 10, 12 Side ring section [0038] 14, 16 Bridge [0039] 18, 20 Rolling-element receiving pockets [0040] 22 Swivel joint [0041] 24 Bolt element [0042] 26 Eyelet element [0043] 28, 30 Snap hook [0044] 32 Annular ribs [0045] 34, 36 Cage segment end [0046] 38, 40 Contact surface element [0047] 42 Latching hook element