Angular contact roller bearing and method and device for the assembly thereof
20180195553 ยท 2018-07-12
Assignee
Inventors
- Rainer Eidloth (Herzogenaurach, DE)
- Reinhard Rumpel (Rottendorf, DE)
- Heinrich HOFMANN (Schweinfurt, DE)
Cpc classification
F16C33/586
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/585
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/4605
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C43/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/495
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/225
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C43/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/364
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C19/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C43/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/49
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Angular contact roller bearings are disclosed including an inner bearing ring with an inner raceway, which is arranged on the outer shell surface of said inner bearing ring so as to be inclined with respect to the bearing axis of rotation (AL), and comprising a rim which delimits said raceway at its smallest diameter. An outer bearing ring has an outer raceway, which is arranged on the inner shell surface of said outer bearing ring so as to be inclined with respect to the bearing axis of rotation (AL). A rim delimits said raceway at its greatest diameter, and a multiplicity of roller-type rolling bodies are arranged between the bearing rings and roll on the raceways of said bearing rings and are held with uniform spacings to one another in a circumferential direction by bearing cage.
The outer shell surface of the inner bearing ring and the inner shell surface of the outer bearing ring are, in each case outside the raceways, of cylindrical form so as to run coaxially with respect to the bearing axis of rotation (AL) at least in sections, and the raceways of the two bearing rings are each formed in conical fashion into the shell surfaces. The rims which are thus formed and which delimit the raceways in each case on one side are thus each formed integrally with the bearing rings.
Claims
1. An angular contact roller bearing comprising: an inner bearing ring with an inner raceway, which is arranged on an outer shell surface of said inner bearing ring so as to be inclined with respect to a bearing axis of rotation (AL), and comprising a rim which delimits said raceway at its smallest diameter: an outer bearing ring with an outer raceway, which is arranged on the inner shell surface of said outer bearing ring so as to be inclined with respect to the bearing axis of rotation (AL); a rim which delimits said raceway at its greatest diameter; and a multiplicity of roller-type rolling bodies which are arranged between the bearing rings and which roll on the raceways of said bearing rings and which are held with uniform spacings to one another in a circumferential direction by means of a bearing cage; wherein the outer shell surface of the inner bearing ring and the inner shell surface of the outer bearing ring are, in each case outside the raceways, of cylindrical form so as to run coaxially with respect to the bearing axis of rotation (AL) at least in sections, and the raceways of the two bearing rings are each formed in conical fashion into the shell surfaces, and in that the rims which are thus formed and which delimit the raceways in each case on one side are thus each formed integrally with the bearing rings.
2. The angular contact roller bearing as claimed in claim 1, wherein the roller-type rolling bodies are formed as tapered rollers which have a taper angle (?) in the range from 1? to 4?, and which roll with an envelope circle angle (?) of between 3? and 7?, on their raceways.
3. The angular contact roller bearing as claimed in claim 2, wherein a gap (S) between the outer shell surface of the inner bearing ring and the inner shell surface of the outer bearing ring is dimensioned such that two times the dimension of said gap is greater than the greatest diameter (DW) of the roller-type rolling bodies.
4. The angular contact roller bearing as claimed in claim 2, wherein both the rim which delimits the raceway in the inner bearing ring and the rim which delimits the raceway in the outer bearing ring have an equal minimum height (hBI, hBA) of 18% to 22%, of the greatest diameter (DW) of the roller-type rolling bodies.
5. The angular contact roller bearing as claimed in claim 1, wherein the bearing cage is formed by a comb-type cage which is insertable into the angular contact roller bearing after installation of the roller-type rolling bodies and which is composed of a cage ring and of a multiplicity of axial cage webs.
6. The angular contact roller bearing as claimed in claim 4, wherein the bearing cage has, on its cage webs, multiple uniformly circumferentially distributed detent webs which run so as to be inclined with respect to the bearing axis of rotation (AL) and by which the bearing cage is axially fixable in position on the inner surface of the rim on the outer bearing ring.
7. The angular contact roller bearing as claimed in claim 4, wherein the bearing cage has, on its cage webs, multiple uniformly circumferentially distributed detent lugs which have a smaller inner diameter than the cage ring and by which the bearing cage is axially fixable in position on the inner surface of the rim on the inner bearing ring.
8. The angular contact roller bearing as claimed in claim 1, wherein said angular contact roller bearing is sealed off against contamination from the outside, and against the escape of lubricant that has possibly been introduced into a bearing interior space, by two elastomer sealing disks which are inserted, axially on both sides of the roller-type rolling bodies, into encircling fastening grooves in the inner shell surface of the outer bearing ring and which have metal reinforcement.
9. A method for assembling an angular contact roller bearing as claimed in claim 1, wherein the angular contact roller bearing is assembled in accordance with an eccentric assembly method.
10. The method as claimed in claim 9, wherein, in a first step, the inner bearing ring is placed, with its face side formed with the rim, onto a horizontal assembly plane with a convex sickle-shaped auxiliary ramp in such a way that said inner bearing ring bears with its rim against an inner diameter side of the auxiliary ramp.
11. The method as claimed in claim 10, wherein, in a second step, the outer bearing ring is arranged, with its face side formed with the rim upward, eccentrically with respect to the inner bearing ring such that, at one side, the auxiliary ramp is arranged between the bearing rings and, at the other side, offset 180? with respect to the center of the auxiliary ramp, the bearing rings bear against one another.
12. The method as claimed in claim 11, wherein in a third step, a sickle-shaped free space formed between the outer bearing ring and the inner bearing ring is filled with the roller-type rolling bodies in the form of tapered rollers such that relatively small face sides of said roller-type rolling bodies lie on an oblique side of the auxiliary ramp.
13. The method as claimed in claim 9, wherein, in a first step, the outer bearing ring is placed, with its face side formed with the rim, onto a horizontal assembly plane with a convex sickle-shaped auxiliary ramp in such a way that said outer bearing ring bears with its rim against the an outer diameter side of the auxiliary ramp.
14. The method as claimed in claim 13, wherein, in a second step, the inner bearing ring is arranged, with its face side formed with the rim upward, eccentrically with respect to the outer bearing ring such that, at one side, the auxiliary ramp is arranged between the bearing rings and, at the other side, offset 180? with respect to the center of the auxiliary ramp, the bearing rings bear against one another.
15. The method as claimed in claim 14, wherein, in a third step, a sickle-shaped free space formed between the inner bearing ring and the outer bearing ring is filled with the roller-type rolling bodies in the form of tapered rollers such that relatively large face sides of said roller-type rolling bodies lie on an oblique side of the auxiliary ramp.
16. The method as claimed in claim 12, wherein, in a fourth step, the outer bearing ring is clamped, at a level of a contact point with the inner bearing ring and at the level of a point on the outer shell surface of said outer bearing ring which is offset 180? with respect to the contact point, such that the outer bearing ring is slightly ovalized within its elasticity limit.
17. The method as claimed in claim 16, wherein, in a fifth step, the inner bearing ring is displaced into a coaxial position with respect to the outer bearing ring, and the roller-type rolling bodies are uniformly circumferentially distributed in their raceways in the bearing rings, with the ovalization of the outer bearing ring being eliminated.
18. The method as claimed in claim 17, wherein, in a sixth step, the bearing cage in the form of a comb-type cage is inserted with its cage webs between the roller-type rolling bodies from the side with the relatively small face sides of said roller-type rolling bodies, and said bearing cage is engaged with its detent lugs with detent action against the inner surface of the rim on the inner bearing ring.
19-22. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] An embodiment of the angular contact roller bearing designed according to the disclosure and two alternative variants of the method for the assembly thereof and two associated devices for carrying out said method variants will be discussed in more detail below with reference to the appended drawings, in which:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
DETAILED DESCRIPTION
[0037]
[0038] It can furthermore be seen in
[0039] It can likewise be seen in
[0040] It can also be seen in
[0041] Finally, it can also be seen in
[0042]
[0043] Subsequently, in a second step, the outer bearing ring 6 is arranged, with its face side formed with the rim 9 upward, eccentrically with respect to the inner bearing ring 2 such that, as can be clearly seen in
[0044] In a third step illustrated in
[0045] The second variant, illustrated in
[0046] Similarly to the first variant, it is then the case in a second step that the inner bearing ring 2 is arranged, with its face side formed with the rim 5 upward, eccentrically with respect to the outer bearing ring 6 such that, as can be seen in
[0047] Then, in a third step illustrated in
[0048] Independently of the two variants of the eccentric assembly method, it is then the case in a fourth step which is not illustrated in any more detail in the drawings that the outer bearing ring 3 is clamped, at the level of the contact point with the inner bearing ring 2 and at the level of a point on the outer shell surface of said outer bearing ring which is offset 180? with respect to the contact point, such that the outer bearing ring 3 is slightly ovalized within its elasticity limit. Subsequently, as can be seen from
[0049] In the case of the first variant of the eccentric assembly method according to the disclosure being implemented, it is then the case in a sixth step, which for the sake of simplicity is however not illustrated in the drawings, that the bearing cage 11 in the form of a comb-type cage is inserted with its cage webs 13 between the roller-type rolling bodies 10 from the side with the relatively small face sides of said roller-type rolling bodies, and said bearing cage is engaged with its detent lugs with detent action against the inner surface of the rim 5 on the inner bearing ring 2. In the case of the second variant of the eccentric assembly method according to the disclosure being implemented, it is by contrast the case in a sixth step that the bearing cage 11 in the form of a comb-type cage is, as shown in
[0050] Finally,
[0051] By contrast, the auxiliary ramp 23 used for the second method variant is distinguished by the fact that it bears with its outer diameter side 25 against the outer bearing ring 6 and, as can be seen in
LIST OF REFERENCE DESIGNATIONS
[0052] 1 Radial rolling bearing
[0053] 2 Inner bearing ring
[0054] 3 Outer shell surface of 2
[0055] 4 Inner raceway in 2
[0056] 5 Rim on 4
[0057] 6 Outer bearing ring
[0058] 7 Inner shell surface of 6
[0059] 8 Outer raceway in 6
[0060] 9 Rim on 8
[0061] 10 Roller-type rolling body
[0062] 11 Bearing cage
[0063] 12 Cage ring of 11
[0064] 13 Cage webs on 12
[0065] 14 Detent webs on 13
[0066] 15 15 Inner surface of 9
[0067] 16
[0068] Fastening groove in 7
[0069] 17 Fastening groove in 7
[0070] 18 Elastomer sealing disk
[0071] 19 Elastomer sealing disk
[0072] 20 Bearing interior space
[0073] 21 Assembly plane
[0074] 22 Auxiliary ramp
[0075] 23 Auxiliary ramp
[0076] 24 Inner diameter side of 22
[0077] 25 Outer diameter side of 23
[0078] 26 Oblique side on 22
[0079] 27 Oblique side on 23
[0080] AL Bearing axis of rotation
[0081] ? Taper angle
[0082] ? Envelope circle angle
[0083] S Gap between 3 and 7
[0084] DW Greatest diameter of 10
[0085] h.sub.BI Rim height on 2
[0086] h.sub.BA Rim height on 6
[0087] h.sub.R Ramp height