TRACKED UNDERCARRIAGE ROLLER ASSEMBLY
20230382475 ยท 2023-11-30
Inventors
Cpc classification
International classification
Abstract
A tracked undercarriage roller assembly comprises a roller body having an inner cavity delimited by a radially inner surface and a shaft inserted into the inner cavity of the roller body; a rolling bearing comprising a single radially outer bearing ring, a first radially inner bearing ring and a second radially inner bearing ring, a first assembly of rolling bodies and a second assembly of rolling bodies, wherein the first assembly of rolling bodies is radially interposed between the radially outer bearing ring and the first radially inner bearing ring, the second assembly of rolling bodies is radially interposed between the radially outer bearing ring and the second radially inner bearing ring, wherein the radially outer bearing ring is in contact with the radially inner surface of the roller body and wherein the first radially inner bearing ring and the second radially inner bearing ring are in contact with the shaft.
Claims
1. A tracked undercarriage roller assembly, comprising: a roller body having an inner cavity delimited by a radially inner surface and a shaft inserted into the inner cavity of the roller body; and a rolling bearing comprising a single radially outer bearing ringer, a first radially inner bearing ring and a second radially inner bearing ring a first assembly of rolling bodies and a second assembly of rolling bodies, wherein the first assembly of rolling bodies is radially interposed between the radially outer bearing ring and the first radially inner bearing ring, the second assembly of rolling bodies is radially interposed between the radially outer bearing ring and the second radially inner bearing ring, wherein the radially outer bearing ring is in contact with the radially inner surface and wherein the first radially inner bearing ring and the second radially inner bearing ring are in contact with the shaft.
2. The tracked undercarriage roller assembly according to claim 1, wherein said roller body comprises a first axial end and a second axial end opposite to the first axial end; said rolling bearing being active between a first zone of the inner cavity of the roller body placed axially closer to the first axial end of the roller body with respect to the second axial end and a second zone of the inner cavity of the roller body placed axially closer to the second axial end of the roller body with respect to the first axial end.
3. The tracked undercarriage roller assembly according to claim 2, wherein said radially inner surface of the roller body is cylindrical between said first zone and said second zone; said inner cavity having a radial extension, between said second zone and the second axial end of the roller body, equal to or higher than the extension of the inner cavity between said first zone and said second zone.
4. The tracked undercarriage roller assembly according to claim 2, wherein said shaft comprises a central portion which extends between the first and the second zone of the inner cavity of the roller body; said central portion of the shaft having a radially outer surface that is cylindrical with a constant diameter.
5. The tracked undercarriage roller assembly according to claim 1, wherein said roller body comprises a central body, a first flange of axial end and a second flange axial end placed at respective axial ends of the central body; said central body defining said inner cavity of the roller body.
6. The tracked undercarriage roller assembly according to claim 5, wherein the first flange is integral with the central body.
7. The tracked undercarriage roller assembly according to claim 1, wherein the radially outer bearing ring is inserted by interference fit on the radially inner surface of the roller body.
8. The tracked undercarriage roller assembly according to claim 1, wherein both radially inner bearing rings are inserted by interference fit on the shaft.
9. The tracked undercarriage roller assembly according to claim 1, wherein said shaft comprises a first annular recess along a radially outer surface thereof; a first stop ring being inserted in said first annular recess and being active on the second radially inner bearing ring.
10. The tracked undercarriage roller assembly according to claim 9, wherein said shaft comprises a second annular recess along its radially outer surface; a second stop ring being inserted in said second annular recess and being active on the first radially inner bearing ring.
11. The tracked undercarriage roller assembly according to claim 10, wherein said radially inner bearing rings are slidably inserted on the shaft.
12. The tracked undercarriage roller assembly according to claim 1, wherein said roller body comprises a first annular recess along the radially inner surface; a first stop ring being inserted in said first annular recess and being active on the radially outer bearing ring.
13. The tracked undercarriage roller assembly according to claim 1, wherein said roller body comprises a shoulder provided on the radially inner surface; said radially outer bearing ring being in abutment against said shoulder.
14. The tracked undercarriage roller assembly according to claim 12, wherein said roller body comprises a second annular recess along the radially inner surface; a second stop ring being inserted in said second annular recess and being active on the radially outer bearing ring opposite to the first stop ring inserted in the first recess.
15. The tracked undercarriage roller assembly according to claim 14, wherein the radially outer bearing ring is slidably inserted in the inner cavity of the roller body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0068] Further features and advantages of the invention will be more evident from the following description of a preferred embodiment thereof, made with reference to the appended drawings. In such drawings:
[0069]
[0070]
[0071]
[0072]
[0073]
DETAILED DESCRIPTION
[0074]
[0075] The lower roller assemblies 17 are arranged in the lower portion of the track assembly 11 and are configured to transfer loads between the track and an undercarriage frame (not shown). The upper roller assemblies 17 are configured to guide the chain between the driving wheel 16 and the return wheel 14 and typically are present in a lower number than the number of the lower roller assemblies. The number of the lower roller assemblies 17 varies depending on the type of machine and the weight thereof.
[0076] With reference to
[0077]
[0078] The roller assembly 17 comprises a roller body 18 comprising an inner cavity 19 which extends from a first axial end 18a to a second axial end 18b of the roller body 18.
[0079] The roller body 18 is delimited by a radially inner surface 20 which delimits the inner cavity 19 in a radially outer direction and by a radially outer surface 21 whose shape is determined by the type of chain 12 with which the roller assembly 17 must interact.
[0080] The roller body 18 is preferably made of a low-alloy steel that is boron-alloyed and submitted to at least one heat treatment. A low-alloy steel is a steel in which other elements other than iron and carbon are present and in which none of such other elements is present in an amount higher than 5%.
[0081] The roller assembly 17 further comprises a shaft 22 inserted into the inner cavity 19 of the roller body 18. The shaft 22 extends between a first axial end 22a and a second axial end 22b and has a radially outer surface 23 facing the radially inner surface 20 of the roller body 18.
[0082] The shaft 22 is preferably made of boron-alloyed low-alloy steel which has undergone at least one heat treatment or of micro-alloyed steel which does not require any heat treatment
[0083] The shaft 22 has a greater extension in an axial direction than the extension in an axial direction of the roller body 18. In other words, the distance in the axial direction between the first axial end 22a and the second axial end 22b of the shaft 22 is greater than the distance measured along the same direction between the first axial end 18a and the second axial end 18b of the roller body 18.
[0084] The shaft 22 extends axially beyond the first 18a and the second axial end 18b of the roller body 18. In particular, the shaft extension in axial direction beyond the first axial end 18a of the roller body 18 is substantially equal to the extension in axial direction of the shaft 22 beyond the second axial end 18b of the roller body 18.
[0085] The shaft portion 22 which extends in an axially outer direction from the first axial end 18a of the roller body 18 is made integral with the undercarriage frame or with an undercarriage component integral with the undercarriage frame.
[0086] For this purpose a support 24 is provided (schematically indicated in
[0087] To make the shaft 22 integral with the support 24, the shaft 22 can comprise a radial cavity (not shown) which crosses the shaft 22 in a radial direction. On the support 24 two radially opposite through holes are formed which can be aligned therebetween and aligned with the radial cavity of the shaft 22. A plug (not shown) can be inserted into the radial cavity so that it passes through the radial cavity and intercepts the two through holes of the support 24. Thereby, any axial movement and any rotation about the rotation axis X of the shaft 22 with respect to the support 24 is prevented.
[0088] Similarly, the shaft portion 22 which extends in an axial outer direction from the second axial end 18b of the roller body 18 is made integral with the undercarriage frame or with an undercarriage component integral with the undercarriage frame through an analogous support 24.
[0089] The roller body 18 is mounted rotatable with respect to the shaft 22 about the rotation axis X.
[0090] The roller body 18 comprises a central body 26 directly facing the inner cavity 19 on which the radially inner surface 20 of the roller body 18 is obtained. The central body 26 has axial ends 27.
[0091] The central body 26 can be made in a single piece or, more preferably, obtained by welding or by joining two half-parts by interference (not shown).
[0092]
[0093] At one axial end 27 of the central body 26, the roller body 18 comprises a first axial end flange 28 and at the other axial end 27 of the central body 26, the roller body 18 comprises a second axial end flange 29.
[0094] Both the first 28 and the second axial end flanges 29 are integral with the central body 26, i.e., they rotate about the axis X together with the central body 26.
[0095] The first 28 and second axial end flanges 29 extend radially up to the shaft 22. In particular, the first flange 28 comprises a radially inner surface 30 directly facing the shaft 22. Similarly, the second flange 29 comprises a radially inner surface 31 directly facing the shaft 22.
[0096] The inner cavity 19 is closed in the axial direction at the first flange 28 by hydraulic seal members 32 interposed between the radially inner surface 30 of the first flange 28 and the shaft 22. Such hydraulic seal members 32 can be O-rings inserted in an annular sealing groove 33 obtained on the shaft 22, as shown in the embodiments of
[0097] The inner cavity 19 is closed in the axial direction at the second flange 29 by hydraulic seal members 34 interposed between the radially inner surface 31 of the second flange 29 and the shaft 22. Such hydraulic seal members 34 can be O-rings inserted in an annular sealing groove 35 obtained on the shaft 22, as shown in the embodiments of
[0098] In all the embodiments of the invention, the roller assembly 17 comprises a rolling bearing 36 inserted into the inner cavity 19 and active between the shaft 22 and the radially inner surface 20 of the roller body 18.
[0099] Preferably only one rolling bearing 36 is provided.
[0100] The rolling bearing 36 extends between a first zone 37 of the inner cavity 19 located axially near the first axial end 18a of the roller body 18 and a second zone 38 of the inner cavity 19 located axially near the second axial end 18b of the roller body 18. The first zone 37 is also closer to the first axial end 18a than it is to the second axial end 18b and the second zone 38 is closer to the second axial end 18b than it is to the first axial end 18a. The first zone 37 of the inner cavity 19 is radially placed at the portion of the inner cavity 19 subtended between the central body 26 of the roller body 18 and the shaft 22 and not affected by the rolling bearing 36. The first zone 37 is axially placed between the first flange 28 and the rolling bearing 36. The second zone 38 of the inner cavity 19 is radially placed at the portion of the inner cavity 19 subtended between the central body 26 of the roller body 18 and the shaft 22 and not affected by the rolling bearing 36. The second zone 38 is axially placed between the second flange 29 and the rolling bearing 36.
[0101] As illustrated in
[0102] The rolling bearing 36 is unique, i.e., there is preferably only one rolling bearing 36 in the active roller assembly 17 between the shaft 22 and the radially inner surface 20 of the roller body 18.
[0103] The rolling bearing 36 comprises a single radially outer bearing ring 39 (or cup), a first assembly of rolling bodies 40 and a second assembly of rolling bodies 41, a first radially inner bearing ring 42 (or first cone) and a second radially inner bearing ring 43 (or second cone).
[0104] The first assembly of rolling bodies 40 is radially interposed between, and directly active on, the radially outer bearing ring 39 and the first radially inner bearing ring 42.
[0105] The second assembly of rolling bodies 41 is radially interposed between, and directly active on, the radially outer bearing ring 39 and the second radially inner bearing ring 43.
[0106] The first assembly of rolling bodies 40 comprises a plurality of spheres, or more preferably barrel-shaped or truncated cone-shaped rollers arranged circumferentially. The rolling bodies 40 comprise a first axial end 40a with a larger diameter than a second axial end 40b. Similarly, the second assembly of rolling bodies 41 comprises a plurality of spheres, or more preferably barrel-shaped or truncated cone-shaped rollers arranged circumferentially. The rolling bodies 41 comprise a first axial end 41a with a larger diameter than a second axial end 41b.
[0107] The second axial ends 40b of the rolling bodies of the first assembly of rolling bodies 40 are axially facing the second axial ends 41b of the rolling bodies of the second assembly of rolling bodies 41.
[0108] The rolling axes A1 of the first assembly of rolling bodies 40 are inclined with respect to the rotation axis X, just as the rolling axes A2 of the second assembly of rolling bodies 41 are inclined with respect to the rotation axis X.
[0109] In preferred embodiments of the invention, the rolling axes A1, A2 of the two assemblies of rolling bodies 40, 41 are inclined so that the first axial ends 40a of the rolling bodies of the first assembly of rolling bodies 40 are positioned radially further away from the rotation axis X with respect to the second axial ends 40b of the rolling bodies of the first assembly of rolling bodies 40, and that the first axial ends 41a of the rolling bodies of the second assembly of rolling bodies 41 are positioned radially further away from the rotation axis X with respect to the second axial ends 41b of the rolling bodies of the second assembly of rolling bodies 41.
[0110] In alternative embodiments not shown, the rolling axes A1, A2 of the two assemblies of rolling bodies 40, 41 are inclined so that the first axial ends 40a of the rolling bodies of the first assembly of rolling bodies 40 are radially closer to the rotation axis X with respect to the second axial ends 40b of the rolling bodies of the first assembly of rolling bodies 40 and that the first axial ends 41a of the rolling bodies of the second assembly of rolling bodies 41 are radially closer to the rotation axis X with respect to the second axial ends 41b of the rolling bodies of the second assembly of rolling bodies 41.
[0111] The extension in the axial direction of the radially outer bearing ring 39 is at least equal to the sum of the radial extensions of the first radially inner bearing ring 42 and the second radially inner bearing ring 43, preferably it is greater than the sum of the radial extensions of the first radially inner bearing ring 42 and the second radially inner bearing ring 43.
[0112] Between the first radially inner bearing ring 42 and the second radially inner bearing ring 43, a closing ring 44 is axially arranged to close a lubrication cavity 45, preferably filled with oil or lubricating grease, of the rolling bearing 36.
[0113] In all the embodiments, the radially inner surface 20 of the roller body is cylindrical at the radially outer bearing ring 39 of the rolling bearing 36. The radially outer bearing ring 39 is also cylindrical at a radially outer surface 39a thereof to be counter-shaped to the portion of the radially outer surface 20 of the roller body 18 receiving the radially outer bearing ring 39.
[0114] The rolling bearing 36 can be pre-assembled, as in the preferred embodiment of the invention. The pre-assembled rolling bearing envisages that the first 42 and the second radially inner bearing ring 43 are operatively associated with the radially outer bearing ring 39 with the first assembly of rolling bodies 40 and the second assembly of rolling bodies 41 radially inserted between the first 42 and the radially outer bearing ring 39 and the second radially inner bearing ring 43 and the radially outer bearing ring 39, respectively. In the pre-assembled rolling bearing, the closing ring 44 is also in the operating position.
[0115] The diameter of the inner cavity 19 is constant at the radially inner surface portion 20 of the roller body 18 which receives the radially outer bearing ring 39 of the rolling bearing 36. Between the second zone 38 of the inner cavity 19 and the second axial end 18b of the roller body, the inner cavity 19 has a substantially cylindrical shape with a diameter equal to or greater than the diameter at the radially outer bearing ring 39 of the rolling bearing 36. Between the second zone 38 of the inner cavity 19 and the second axial end 18b of the roller body, the inner cavity 19 therefore has a diameter equal to or greater than the maximum dimension in the radial direction of the rolling bearing 36.
[0116] The central portion 22c of the shaft 22 has a radially outer surface 22d which is cylindrical with a constant diameter. The first radially inner bearing ring 42 and the second radially inner bearing ring 43 have respective radially inner surfaces 42a, 43a of an annular shape with a minimum diameter substantially corresponding to the diameter of the central portion 22c of the shaft 22.
[0117] Between the second axial end 22b and the central portion 22c, the shaft 22 has an extension in the radial direction of a size equal to or less than the diameter of the central portion 22c. Similarly, between the first axial end 22a and the central portion 22c, the shaft 22 has an extension in the radial direction of a size equal to or less than the diameter of the central portion 22c.
[0118] In the embodiment shown in
[0119] In this embodiment, the roller body 18 comprises a shoulder 46 provided projecting in a radially inward direction from the radially inner surface 20. The shoulder acts as a stop for the insertion of the radially outer bearing ring 39 in the roller body 18. In this embodiment, the first radially inner bearing ring 42 and the second radially inner bearing ring 43 are press fitted on the shaft 22. In order to obtain such couplings, the rolling bearing 36 is first assembled (or the rolling bearing 36 is pre-assembled), which is press fitted on the shaft 22 exerting an axial thrust on the second radially inner bearing ring 43 which is transmitted through the closing ring 44 to the first radially inner bearing ring 42. When the rolling bearing reaches the desired position on the shaft 22, the assembly of the shaft 22 and rolling bearing 36 is introduced into the inner cavity 19 from the side of the second axial end 18b of the roller body 18. In this step, the second flange 29 is decoupled from the central body 26 of the roller body 18. The rolling bearing 36 is pressed into the radially inner surface 20 of the roller body 18 by means of an axial thrust on the radial outer ring 39 until it reaches the shoulder 46 and is abutted against it. At this point, the second flange 29 can be constrained to the central body 26 of the roller body 18. At this point, the first flange 28 is also constrained to the central body 26 of the roller body 18.
[0120] In the embodiment of
[0121] Also in the embodiment shown in
[0122] The difference with the embodiment of
[0123] In this embodiment, the shaft 22 comprises a first annular recess 47 obtained on the radially outer surface. Such a first recess 47 is placed at the beginning of the second zone 38 of the inner cavity 19. In other words, the first recess 47 is placed axially at the outermost axial position occupied by the second radially inner bearing ring 43. Inside the first recess 47, a stop ring 48 is inserted which serves as an axial abutment for the second radially inner bearing ring 43. The stop ring 48 can be inserted and, if necessary, removed from the first recess 47 and can for example be a seeger.
[0124] The shaft 22 further comprises a second annular recess 49 obtained on the radially outer surface. Such a second recess 49 is placed at the beginning of the first zone 37 of the inner cavity 19. In other words, the second recess 49 is axially placed at the outermost axial position occupied by the first radially inner bearing ring 42. Inside the second recess 49, a stop ring 50 is inserted which serves as an axial abutment for the second radially inner bearing ring 43. The stop ring can be inserted and, if necessary, removed from the second recess 49 and can for example be a seeger.
[0125] In order to seat the rolling bearing 36, if the rolling bearing 36 is pre-assembled and the radially inner bearing rings 42, 43 are press fitted on the shaft 22, the rolling bearing 36 is press fitted on the shaft 22 exerting an axial thrust on the second radially inner bearing ring 43 which is transmitted through the closing ring 44 to the first radially inner bearing ring 42. On the shaft 22, the stop ring 50 was previously inserted into the second recess 49. When the rolling bearing reaches the stop ring on the shaft 22, the stop ring 48 is inserted into the first recess 48, further locking (in addition to the locking provided by the press fitting) the rolling bearing 36 axially on the shaft 22. The assembly of the shaft 22 and rolling bearing 36 is introduced into the inner cavity 19 from the side of the second axial end 18b of the roller body 18. In this step, the second flange 29 is decoupled from the central body 26 of the roller body 18. The rolling bearing 36 is pressed into the radially inner surface 20 of the roller body 18 by means of an axial thrust on the radial outer ring 39 until it reaches the shoulder 46 and is abutted against it. At this point, the second flange 29 can be constrained to the central body 26 of the roller body 18. At this point, the first flange 28 is also constrained to the central body 26 of the roller body 18.
[0126] In the case where the rolling bearing 36 is pre-assembled and the radially inner bearing rings 42, 43 are not mounted on the shaft 22, the radially outer bearing ring 39 is mounted on the radially inner surface 20 of the roller body 18. The bearing ring 39 is press fitted axially onto the radially inner surface 20 of the roller body 18 until the radially outer bearing ring 39 reaches the shoulder 46 and is abutted against it. Next, the stop ring 48 is inserted into the first recess 47 of the shaft 22. The shaft 22 is then introduced into the inner recess 19 from the side of the second axial end 18b of the roller body 18, until the stop ring 48 comes into axial contact with the second radially inner bearing ring 43. In this step, the shaft 22 slides axially with respect to the rolling bearing 36 without interference. At this point the stop ring 50 is inserted into the second recess 49, axially locking the shaft 22 and rolling bearing 22. At this point, the first flange 28 and the second flange 29 are constrained to the central body 26 of the roller body 18.
[0127] If the rolling bearing 36 is not pre-assembled, the radially outer bearing ring 39 is first press fitted against the radially inner surface 20 of the roller body 18 until the radially outer bearing ring 39 is axially abutted against the shoulder 46. The shaft 22 is then inserted into the roller body 18. At this point, the first radially inner bearing ring 42 with the first assembly of rolling bodies 40 is inserted on the shaft 22, and the assembly of the first radially inner bearing ring 42 and the first assembly of rolling bodies 40 is axially slid until it reaches and couples with the radially outer bearing ring 39. The closing ring 44 is inserted on the shaft 22, which goes in axial abutment against the first radially inner bearing ring 42. Next, the second radially inner bearing ring 43 and the second assembly of rolling bodies 41 are inserted on the shaft 22, and the assembly of the second radially inner bearing ring 43 and the second assembly of rolling bodies 41 is axially slid until it reaches and abuts against the closing ring 44, so that the assembly of the second radially inner bearing ring 43 and the second assembly of rolling bodies 41 reaches and abuts the radially outer bearing ring 39. At this point, the stop ring 48 is inserted into the first recess 47 so that it comes into contact with the second radially inner bearing ring 43. The stop ring is inserted into the second recess 49 after the second radially inner bearing ring 43 has been inserted into the shaft 22 or before the second radially inner bearing ring 43 is inserted into the shaft. At this point, the first flange 28 and the second flange 29 are constrained to the central body 26 of the roller body 18.
[0128] In the embodiment shown in
[0129] The roller body 18 further comprises a second annular recess 53 obtained on the radially outer surface 20. Such a second recess 53 is placed at the beginning of the second zone 38 of the inner cavity 19. In other words, the second recess 53 is axially placed at the outermost axial position occupied by the radially outer bearing ring 39 on the opposite side of the first recess 51. Inside the second recess 53, a stop ring 54 is inserted which acts as an axial abutment for the radially outer bearing ring 39. The stop ring 54 can be inserted and, if necessary, removed from the second recess 53 and can for example be a seeger.
[0130] The shaft 22 comprises a first annular recess 47, a second annular recess 49 and respective stop rings 48, 50 as described in relation to the embodiment of
[0131] The difference between this embodiment and the embodiment shown in
[0132] If the rolling bearing 36 is pre-assembled, the radially outer bearing ring 39 is press fitted in the roller body 18 and the radially inner bearing rings 42, 43 are press fitted on the shaft 22, the rolling bearing 36 is press fitted on the shaft 22 exerting an axial thrust on the second radially inner bearing ring 43 which is transmitted through the closing ring 44 to the first radially inner bearing ring 42. On the shaft 22, the stop ring 50 was previously inserted into the second recess 49. When the rolling bearing reaches the stop ring on the shaft 22, the stop ring 48 is inserted into the first recess 48, further locking (in addition to the locking provided by the press fitting) the rolling bearing 36 axially on the shaft 22. The assembly of the shaft 22 and rolling bearing 36 is introduced into the inner cavity 19 from the side of the second axial end 18b of the roller body 18. In this step, the second flange 29 is decoupled from the central body 26 of the roller body 18. The press fitting of the rolling bearing 36 on the radially inner surface 20 of the roller body 18 occurs by exerting an axial thrust on the radially outer bearing ring 39 until the latter reaches the stop ring 52 (previously inserted into the first recess 51 of the roller body 18) and is abutted against it. The stop ring 54 is then inserted into the second recess 53 of the roller body 18, axially locking (in addition to the locking given by the press fitting) the rolling bearing 36 with respect to the roller body 18. At this point, the second flange 29 can be constrained to the central body 26 of the roller body 18. At this point, the first flange 28 is also constrained to the central body 26 of the roller body 18.
[0133] If the rolling bearing 36 is pre-assembled, the radially outer bearing ring 39 is press fitted in the roller body 18 and the radially inner bearing rings 42, 43 are slidingly inserted on the shaft 22, the radially outer bearing ring 39 is press fitted on the radially inner surface 20 of the roller body 18. The press fitting of the radially outer bearing ring 39 on the radially inner surface 20 of the roller body 18 occurs by exerting an axial thrust on the radially outer bearing ring 39 until the latter reaches the stop ring 52 (previously inserted into the first recess 51 of the roller body 18) and is abutted against it. The stop ring 54 is then inserted into the second recess 53 of the roller body 18, axially locking (in addition to the locking given by the press fitting) the rolling bearing 36 with respect to the roller body 18. Next, the stop ring 48 is inserted into the first recess 47 of the shaft 22. The shaft 22 is then introduced into the inner recess 19 from the side of the second axial end 18b of the roller body 18, until the stop ring 48 comes into axial contact with the second radially inner bearing ring 43. In this step, the shaft 22 slides axially with respect to the rolling bearing 36 without interference. At this point the stop ring 50 is inserted into the second recess 49, axially locking the shaft 22 and rolling bearing 22. At this point, the first flange 28 and the second flange 29 are constrained to the central body 26 of the roller body 18.
[0134] If the rolling bearing 36 is pre-assembled, the radially outer bearing ring 39 is slidingly inserted into the roller body 18 and the radially inner bearing rings 42, 43 are slidingly inserted on the shaft 22, the radially outer bearing ring 39 is slidingly inserted into the roller body 18 until the radially outer bearing ring 39 reaches the stop ring 52 (previously inserted in the first recess 51 of the roller body 18) and abuts thereon. The stop ring 54 is then inserted into the second recess 53 of the roller body 18, locking the rolling bearing 36 axially with respect to the roller body 18. Next, the stop ring 48 is inserted into the first recess 47 of the shaft 22. The shaft 22 is then introduced into the inner recess 19 from the side of the second axial end 18b of the roller body 18, until the stop ring 48 comes into axial contact with the second radially inner bearing ring 43. In this step, the shaft 22 slides axially with respect to the rolling bearing 36 without interference. At this point the stop ring 50 is inserted into the second recess 49, axially locking the shaft 22 and rolling bearing 22. At this point, the first flange 28 and the second flange 29 are constrained to the central body 26 of the roller body 18.
[0135] Alternatively, the stop ring 48 is inserted into the first recess 47 of the shaft 22. The rolling bearing 36 is then slidingly inserted on the shaft 22 until the rolling bearing 36 abuts against the stop ring 48. At this point the stop ring 50 is inserted into the second recess 49, axially locking the shaft 22 and rolling bearing 22. The assembly of the shaft 22 and rolling bearing 36 is slidably inserted in the roller body 18 until the radially outer bearing ring 39 reaches the stop ring 52 (previously inserted into the first recess 51 of the roller body 18) and abuts thereon. The stop ring 54 is then inserted into the second recess 53 of the roller body 18, locking the rolling bearing 36 axially with respect to the roller body 18. At this point, the first flange 28 and the second flange 29 are constrained to the central body 26 of the roller body 18.
[0136] The embodiment of
[0137] The person skilled in the art will recognize that it is possible to combine the various characteristics of the embodiments described above to obtain further embodiments, all falling within the scope of the present invention as defined by the subsequent claims.