The present invention relates to a rolling bearing apparatus, and more particularly, to a rolling bearing apparatus for use at a roll neck of a rolling mill.
Conventionally, bearing apparatuses are used for the purpose of supporting a roll neck part, which is a shaft portion of a mill roll. In such bearing apparatuses, the mill roll is gradually worn while steel sheets are rolled, and therefore, it is necessary to frequently replace the mill roll. Accordingly, the bearing and the roll neck part are attached to each other with a predetermined fitting clearance between them, in a so-called loose fit manner. Thus, there has been a problem that a slippage occurs between an inner ring of the bearing and the roll neck part during operation of the mill roll, resulting in wear of the roll neck part having a lower hardness. In order to prevent this slippage, as shown in
In a conventional creep preventing rolling bearing apparatus 71, as shown in
In another conventional creep preventing rolling bearing apparatus 81, as shown in
Patent Document 1: JP 02-148704 U
In the conventional sealed rolling bearing as described above, the seal 89 is provided in the axial end portion of the rolling bearing 86. Accordingly, the axial length Ls of a rolling element 84 of the sealed rolling bearing needs to be made shorter as compared with the axial length Lo of a rolling element 74 of the open type rolling bearing not provided with a seal. Therefore, there is a problem that a basic dynamic load rating is remarkably lowered.
Here, the “basic dynamic load rating” means a load not varying in direction and amount and which makes the rated fatigue life one million rotations, with a condition that the inner ring 72, 82 is rotated and the outer ring 75, 85 is fixed.
According to Patent Document 1, to increase a contact area of the first key 65, the inner ring 61 is extended so that an end face of the inner ring 61 protrudes in the axial direction than a seal unit 68, and the first key groove 62 is formed by cutting a portion of the one end face of the inner ring 61. Accordingly, stress concentration may occur at an edge part of the first key groove that is cut out. Moreover, for the purpose of ensuring the basic dynamic load rating, a portion for providing the first key groove 62 had to be provided in the inner ring 61, which hinders downsizing of the entire bearing.
The present invention has been made in view of the problems above described, and it is an object thereof to provide a creep preventing rolling bearing apparatus in which stress concentration at a key groove can be relieved while ensuring the basic dynamic load rating.
The invention is directed to a rolling bearing apparatus comprising:
a rolling bearing comprising an outer ring, an inner ring having a first key groove formed along an axial direction on an inner peripheral face of an axial end portion of the inner ring, and a plurality of rolling elements held between the inner ring and the outer ring in a rollable manner;
a rotation shaft having a second key groove on an outer peripheral face thereof on which the rolling bearing is incorporated; and
a key inserted into the first key groove and the second key groove,
characterized in that the first key groove is opened at the inner peripheral face of the inner ring in the axial end portion of the inner ring, and
the first key groove is formed so as to have a predetermined length in the axial direction from the axial end portion of the inner ring at a position having a certain depth from an outer peripheral face of the inner ring in a radial direction.
According to the present invention, it is possible to provide a creep preventing rolling bearing apparatus in which stress concentration at the key groove can be relieved while ensuring the basic dynamic load rating.
a) is a vertical sectional view illustrating a main portion of a sealed rolling bearing apparatus according to a first embodiment of the present invention, and
a) is a vertical sectional view illustrating a main portion of a sealed rolling bearing apparatus according to a second embodiment of the present invention, and
a) is a vertical sectional view illustrating a main portion of a sealed rolling bearing apparatus according to a third embodiment of the present invention, and
Hereinafter, with reference to the drawings, respective embodiments of the present invention will be described. A first embodiment is an example in which a key and a key groove have a wedge shape, a second embodiment is an example in which a key and a key groove have a prism shape, and a third embodiment is an example in which a key has a cylindrical shape and a key groove has a shape of a semicircular groove.
a) is a vertical sectional view illustrating a main portion of a sealed rolling bearing apparatus 11 according to the first embodiment of the present invention, and
As shown in
The first key groove 13 is provided in the axial end portion 12t of the inner ring 12 and is opened at an inner peripheral face 12i. The first key groove 13 is formed so as to have a predetermined length L in the axial direction from the axial end portion 12t of the inner ring 12 at a position having a certain depth D from the outer peripheral face 12o in a radial direction. The first key groove 13 has a substantially quadrangular cross section. The end of the first key groove 13 is obliquely cut. A seal 19 for tight sealing is provided on an outer side of the rolling bearing 16 for the purpose of preventing intrusion of foreign matters.
According to the sealed rolling bearing apparatus 11 of the first embodiment, the first key groove 13 opened at the inner peripheral face 12i is provided in the axial end portion 12t of the inner ring 12 of the rolling bearing 16, and the second key groove 13′ contiguous with the first key groove 13 is provided on the outer peripheral face 17o of the rotation shaft 17 along the axial direction. The key 18 having the shape of a wedge is inserted into and engaged with the key groove formed by aligning the positions of the first key groove 13 and the second key groove 13′. As a result, the first key groove 13 formed in the inner ring 12 and the second key groove 13′ formed in the rotation shaft 17 are fixed at the same time, and thus, a creep between the inner ring 12 and the rotation shaft 17 can be prevented.
Moreover, according to the sealed rolling bearing apparatus 11 of the first embodiment, the first key groove 13 having a shape of a substantially angular groove is formed so as to have the predetermined length L in the axial direction from the axial end portion 12t of the inner ring 12 at the position having the certain depth D from the outer peripheral face 12o of the inner ring 12 in the radial direction. As a result, a force exerted on an edge part of the first key groove 13 is dispersed, and therefore, it is possible to relieve stress at the key groove as compared with the conventional creep preventing rolling bearing apparatus 71.
a) is a vertical sectional view illustrating a main portion of a sealed rolling bearing apparatus 21 according to the second embodiment of the present invention, and
As shown in
Like in the first embodiment, as shown in
According to the sealed rolling bearing apparatus 21 of the second embodiment, the first key groove 23 opened at the inner peripheral face 22i is provided in the axial end portion 22t of the inner ring 22 of the rolling bearing 26, and the second key groove 13′ contiguous with the first key groove 13 is provided on the outer peripheral face 17o of the rotation shaft 17 along the axial direction. The key 28 having the quadrangular prism shape is inserted into and engaged with the key groove formed by aligning positions of the first key groove 23 and the second key groove 13′. As a result, the first key groove 23 formed in the inner ring 22 and the second key groove 13′ formed in the rotation shaft 17 are fixed at the same time, and thus, a creep between the inner ring 22 and the rotation shaft 17 can be prevented.
Moreover, according to the sealed rolling bearing apparatus 21 of the second embodiment, the first key groove 23 having a shape of a substantially angular groove is formed so as to have the predetermined length L in the axial direction from the axial end portion 22t of the inner ring 22 at the position having the certain depth D from the outer peripheral face 22o of the inner ring 22 in the radial direction. As a result, a force exerted on an edge part of the first key groove 23 is dispersed, and therefore, it is possible to enhance the basic dynamic load rating, as compared with the conventional creep preventing rolling bearing apparatus in which the key groove is formed by cutting a part of an end portion of the inner ring extended in an axial direction of the bearing.
a) is a vertical sectional view illustrating a main portion of a sealed rolling bearing apparatus 31 according to a third embodiment of the present invention, and
As shown in
As shown in
According to the sealed rolling bearing apparatus 31 of the third embodiment, the first key groove 33 opened at the inner peripheral face 32i is provided in the axial end portion 32t of the inner ring 32 of the rolling bearing 36, and the second key groove 33′ contiguous with the first key groove 33 is provided on the outer peripheral face 37o of the rotation shaft 37 along the axial direction. The key 38 having the cylindrical shape is inserted into and engaged with the key groove formed by aligning positions of the first key groove 33 and the second key groove 33′. As a result, the first key groove 33 formed in the inner ring 32 and the second key groove 33′ formed in the rotation shaft 37 are fixed at the same time, and thus, a creep between the inner ring 32 and the rotation shaft 37 can be prevented.
Moreover, according to the sealed rolling bearing apparatus 31 of the third embodiment, the first key groove 33 is formed so as to have the predetermined length L in the axial direction from the axial end portion 32t of the inner ring 32 at the position having the certain depth D from the outer peripheral face 32o of the inner ring 22 in the radial direction. As a result, a force exerted on an edge part of the first key groove 33 is dispersed to the cylindrical surface, and therefore, it is possible to relieve stress at the first key groove 33.
While embodiments and examples of the present invention have been described above, the present invention is not limited to the embodiments described above, and can be implemented with various modifications within a scope defined by the claims. The present application is based on Japanese Patent Application No. 2012-78686 filed on Mar. 3, 2012, the content of which is incorporated herein by reference.
Number | Date | Country | Kind |
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2012-078686 | Mar 2012 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2012/069048 | 7/26/2012 | WO | 00 | 9/29/2014 |
Publishing Document | Publishing Date | Country | Kind |
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WO2013/145355 | 10/3/2013 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
1761490 | Penner | Jun 1930 | A |
1812784 | Hawley, Jr. | Jun 1931 | A |
5322374 | Takata | Jun 1994 | A |
6485188 | Dougherty | Nov 2002 | B1 |
Number | Date | Country |
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2603685 | Aug 1977 | DE |
02-148704 | Dec 1990 | JP |
2009236287 | Oct 2009 | JP |
2010-048301 | Mar 2010 | JP |
2011-174571 | Sep 2011 | JP |
Entry |
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International Search Report for PCT/JP2012/069048 dated Oct. 23, 2012 [PCT/ISA/210]. |
Written Opinion for PCT/JP2012/069048 dated Oct. 23, 2012 [PCT/ISA/237]. |
Number | Date | Country | |
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20150043850 A1 | Feb 2015 | US |