ELASTOMERIC BEARING COMPONENT WITH WEDGE-SHAPED SHIMS
20190032741 ยท 2019-01-31
Inventors
Cpc classification
F16F3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/374
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64C27/58
PERFORMING OPERATIONS; TRANSPORTING
F16F1/373
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C27/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/083
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/403
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A component of a laminated bearing assembly is for movably coupling an inner member and an outer member, the inner member having a central axis and the outer member having a bore. The component includes a laminated body disposeable within the outer member bore and having an inner radial end connectable with the inner member and an outer radial end connectable with the outer member. The body is formed of a plurality of alternating, generally arcuate elastomeric and metallic laminae nested generally about the central axis, each one of the elastomeric and metallic laminae having opposing first and second arcuate ends and inner and outer circumferential surfaces extending circumferentially between the first and second arcuate ends. Each metallic lamina has a radial thickness varying circumferentially between a first value at the first, radially-widest arcuate end and a second, lesser value at the second, radially-narrowest arcuate end.
Claims
1. A component of a laminated bearing assembly for movably coupling an inner member with an outer member, the outer member having a bore, the bearing assembly component comprising: a laminated body disposeable within the outer member bore and having an inner radial end connectable with the inner member and an outer radial end connectable with the outer member, the body being formed of a plurality of alternating, generally arcuate elastomeric and metallic laminae nested generally about a central axis, each one of the elastomeric and metallic laminae having opposing first and second arcuate ends spaced apart circumferentially about the central axis and inner and outer circumferential surfaces extending circumferentially between the first and second arcuate ends, each metallic lamina having a radial thickness varying circumferentially between a first value at the first, radially-widest arcuate end and a second, lesser value at the second, radially-narrowest arcuate end.
2. The laminated bearing assembly component as recited in claim 1 wherein one of: each elastomeric lamina has a substantially constant radial thickness between the first and second arcuate ends; and each elastomeric lamina has a radial thickness varying circumferentially between a first value at the first, radially-widest arcuate end and a second, lesser value at the second, radially-narrowest arcuate end, the elastomeric and metallic laminae being arranged such that the radially-narrowest end of each one of at least a portion of the elastomeric laminae is disposed generally between the radially-widest ends of two adjacent metallic laminae.
3. The laminated bearing assembly component as recited in claim 1 wherein: each elastomeric lamina has a substantially constant radial thickness between the first and second arcuate ends; and the laminated body has a first circumferential side with a first radial length and an opposing second circumferential side with a second radial length, each metallic laminae first arcuate end being located at least generally proximal to the body first radial side and each metallic laminae second arcuate end being located at least generally proximal to the body second radial side such that the first radial length is substantially greater than the second radial length.
4. The laminated bearing assembly component as recited in claim 3 further comprising: an inner connector configured to connect the laminated body inner radial end with the inner member and having an outer circumferential surface, an innermost one of the elastomeric laminae being attached to the inner connector outer surface; and an outer connector configured to connect the laminated body outer radial end with the outer member and having an inner circumferential surface, an outermost one of the elastomeric laminae being attached to the outer connector inner surface.
5. The laminated bearing assembly component as recited in claim 4 wherein the inner connector outer surface has a generally constant radius about the central axis and the outer connector inner surface has radius about the central axis varying between a first value proximal to the laminated body first circumferential side and a second, greater value proximal to the laminated body second circumferential side such that a spacing distance between the inner connector and the outer connector has a first value at the laminated body first circumferential side and a second, greater value at the laminated body second circumferential end.
6. The laminated bearing assembly component as recited in claim 1 wherein: each elastomeric lamina has a radial thickness varying circumferentially between a first value at the first, radially-narrowest arcuate end and a second, greater value at the second, radially-widest arcuate end, the elastomeric and metallic laminae being arranged such that the radially-narrowest end of each one of at least a portion of the elastomeric laminae is disposed generally between the radially-widest ends of two adjacent metallic laminae at least a portion of the metallic laminae are arranged in pairs of adjacent inner and outer metallic laminae, the outer surface of the inner metallic lamina and the inner surface of the outer metallic lamina being generally radially converging in a first angular direction about the central axis such that the one of the elastomeric laminae disposed between the pair of metallic laminae is generally compressed against the converging outer and inner circumferential surfaces when a torque is applied on the laminated component in the first angular direction.
7. The laminated bearing assembly component as recited in claim 1 wherein each one of the elastomeric and metallic laminae is one of: partially spherical such that the inner surface of each one of the elastomeric and metallic laminae is generally concave and the outer surface of each one of the elastomeric and metallic laminae is generally convex; substantially circular cylindrical; and substantially conical.
8. The laminated bearing assembly component as recited in claim 1 further comprising: an inner connector configured to connect the laminated body inner radial end with the inner member, an innermost one of the elastomeric laminae being attached to the inner connector; and an outer connector configured to connect the laminated body outer radial end with the outer member, an outermost one of the elastomeric laminae being attached to the outer connector.
9. The laminated bearing assembly component as recited in claim 8 wherein: each one of the elastomeric and metallic laminae is partially spherical and has a center of curvature, the center of curvature of each one of the elastomeric and metallic laminae being at least generally coincident with the center of curvature of each other one of the elastomeric and metallic laminae; and the inner connector has a partially spherical outer surface with a center of curvature, the innermost elastomeric lamina being attached to the inner member outer surface such that the center of curvature of the connector outer surface is one of generally coincident with the centers of curvature of the elastomeric and metallic laminae and is spaced axially along the centerline from the centers of curvature of the elastomeric and metallic laminae.
10. The laminated bearing assembly component as recited in claim 1 wherein each one of the elastomeric and metallic laminae has a circumferential length extending between the first and second arcuate ends, the laminae being arranged such that the circumferential length of each one of the elastomeric and metallic laminae is greater than the circumferential length of each other lamina disposed radially inwardly of the one lamina.
11. The laminated bearing assembly component as recited in claim 1 wherein an angle is defined between the two arcuate ends of each one of the elastomeric and metallic laminae and the central axis, the angle of each one of the elastomeric and metallic laminae having a value about equal to the value of the angle of each other one of the elastomeric and metallic laminae.
12. The laminated bearing assembly component as recited in claim 11 wherein the value of each angle is between about fifteen degrees and about one hundred eighty degrees.
13. A laminated bearing assembly for movably coupling a central inner member with an outer member, the inner member having a central axis and the outer member having a bore, the bearing assembly comprising: at least two laminated bearing components each being disposeable at least partially within the outer member bore and having an inner radial end connectable with the inner member so as to be spaced apart about the central axis and an outer radial end connectable with the outer member, each bearing component including a laminated body formed of a plurality of alternating, generally arcuate elastomeric and metallic laminae nested generally about a central axis, each one of the elastomeric and metallic laminae having opposing first and second arcuate ends spaced apart circumferentially about the central axis and inner and outer circumferential surfaces extending circumferentially between the first and second arcuate ends, each metallic lamina being generally wedge-shaped and having a radial thickness varying circumferentially between a first value at the first, radially-widest arcuate end and a second, lesser value at the second, radially-narrowest arcuate end.
14. The laminated bearing assembly as recited in claim 13 wherein one of: each elastomeric lamina has a substantially constant radial thickness between the first and second arcuate ends; and each elastomeric lamina has a radial thickness varying circumferentially between a first value at the first, radially-narrowest arcuate end and a second, greater value at the second, radially-widest arcuate end, the elastomeric and metallic laminae being arranged such that the radially-narrowest end of each one of at least a portion of the elastomeric laminae is disposed generally between the radially-widest ends of two adjacent metallic laminae.
15. The laminated bearing assembly as recited in claim 13 wherein: each elastomeric lamina has a substantially constant radial thickness between the first and second arcuate ends; and the laminated body has a first circumferential side with a first radial length and an opposing second circumferential side with a second radial length, each metallic laminae first arcuate end being located at least generally proximal to the body first radial side and each metallic laminae second arcuate end being located at least generally proximal to the body second radial side such that the first radial length is substantially greater than the second radial length.
16. The laminated bearing assembly as recited in claim 15 further comprising: an inner connector configured to connect the laminated body inner radial end with the inner member and having an outer circumferential surface, an innermost one of the elastomeric laminae being attached to the inner connector outer surface; and an outer connector configured to connect the laminated body outer radial end with the outer member and having an inner circumferential surface, an outermost one of the elastomeric laminae being attached to the outer connector inner surface.
17. The laminated bearing assembly as recited in claim 13 wherein: each elastomeric lamina has a radial thickness varying circumferentially between a first value at the first, radially-narrowest arcuate end and a second, greater value at the second, radially-widest arcuate end, the elastomeric and metallic laminae being arranged such that the radially-narrowest end of each one of at least a portion of the elastomeric laminae is disposed generally between the radially-widest ends of two adjacent metallic laminae at least a portion of the metallic laminae are arranged in pairs of adjacent inner and outer metallic laminae, the outer surface of the inner metallic lamina and the inner surface of the outer metallic lamina being generally radially converging in a first angular direction about the central axis such that the one of the elastomeric laminae disposed between the pair of metallic laminae is generally compressed against the converging outer and inner circumferential surfaces when a torque is applied on the laminated component in the first angular direction.
18. The laminated bearing assembly as recited in claim 13 further comprising: an inner connector configured to connect the laminated body inner radial end with the inner member, an innermost one of the elastomeric laminae being attached to the inner connector; and an outer connector configured to connect the laminated body outer radial end with the outer member, an outermost one of the elastomeric laminae being attached to the outer connector.
19. The laminated bearing assembly as recited in claim 13 wherein an angle is defined between the two arcuate ends of each one of the elastomeric and metallic laminae and the central axis, the angle of each one of the elastomeric and metallic laminae having a value about equal to the value of the angle of each other one of the elastomeric and metallic laminae.
20. A mechanical assembly comprising: an inner member having a central axis; an outer member having a bore, at least one of the inner and outer members being angularly displaceable about the central axis; at least one laminated body disposed within the outer member bore and having an inner radial end connected with the inner member and an outer radial end connected with the outer member, the body being formed of a plurality of alternating, generally arcuate elastomeric and metallic laminae nested generally coaxially about a central axis, each one of the elastomeric and metallic laminae having opposing first and second arcuate ends spaced apart circumferentially about the central axis and inner and outer circumferential surfaces extending circumferentially between the first and second arcuate ends, each metallic lamina is generally wedge-shaped and has a radial thickness varying circumferentially between a first value at the first, radially-widest arcuate end and a second, lesser value at the second, radially-narrowest arcuate end.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0006] The foregoing summary, as well as the detailed description of the preferred embodiments of the present invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there is shown in the drawings, which are diagrammatic, embodiments that are presently preferred. It should be understood, however, that the present invention is not limited to the precise arrangements and instrumentalities shown. In the drawings:
[0007]
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DETAILED DESCRIPTION OF THE INVENTION
[0025] Certain terminology is used in the following description for convenience only and is not limiting. The words inner, inwardly and outer, outwardly refer to directions toward and away from, respectively, a designated centerline or a geometric center of an element being described, the particular meaning being readily apparent from the context of the description. Further, as used herein, the words connected and coupled are each intended to include direct connections between two members without any other members interposed therebetween and indirect connections between members in which one or more other members are interposed therebetween. The terminology includes the words specifically mentioned above, derivatives thereof, and words of similar import.
[0026] Referring now to the drawings in detail, wherein like numbers are used to indicate like elements throughout, there is shown in
[0027] The laminated body 12 is formed of a plurality of alternating, generally arcuate elastomeric and metallic laminae 18.sup.n, 20.sup.n, respectively, nested generally about a central axis A.sub.C. That is, the laminae 18.sup.n, 20.sup.n alternate from a first, radially innermost elastomeric lamina 18.sup.1, a first, radially-innermost metallic lamina 20.sup.1 spaced radially outwardly from and attached to the first elastomeric lamina 18.sup.1, a second elastomeric lamina 18.sup.2 spaced radially outwardly from and attached to the first metallic lamina 20.sup.1, etc., a second metallic lamina 20.sup.2 spaced radially outwardly from and attached to the second elastomeric lamina 18.sup.2, etc., as indicated in
[0028] Each one of the elastomeric and metallic laminae 18.sup.n, 20.sup.n has opposing first and second arcuate ends 18.sup.na, 18.sup.nb and 20.sup.na, 20.sup.nb, respectively, and a circumferential length L.sub.C extending between the first and second arcuate ends 18.sup.na, 18.sup.nb or 20.sup.na, 20.sup.nb. Each lamina 18.sup.n or 20.sup.n also has inner and outer circumferential surfaces 19A, 19B and 21A, 21B, respectively, extending circumferentially between the first and second arcuate ends 18.sup.na, 18.sup.nb and 20.sup.na, 20.sup.nb, and opposing axial ends 18.sup.nc, 18.sup.nd and 20.sup.nc, 20.sup.nd, respectively, spaced apart generally along the central axis A.sub.C. Further, each metallic lamina or shim 20.sup.n is generally wedge-shaped and has a radial thickness t.sub.RM that tapers or varies circumferentially, and preferably linearly directly, between a first value v.sub.M1 at the first, radially-widest arcuate end 20.sup.na and a second, lesser value v.sub.M2 at the second, radially-narrowest arcuate end 20.sup.nb, as indicated in
[0029] In a first, presently preferred construction shown in
[0030] Referring to
[0031] As a result of the wedge-shaped metallic shims 20.sup.n and the differences in the spacing distance d.sub.S1, d.sub.S2 at each body side 12c, 12d, respectively, caused thereby, the total deflection of the elastomeric laminae 18.sup.n is decreased in comparison to conventional laminated bearings and at least a substantial portion of each elastomeric lamina 18.sup.n remains in compression instead of tension, when loading is applied to the bearing component 10 in a specified manner. Specifically, when a torque T.sub.1 is applied to the inner member 1 in a first, counter-clockwise direction D.sub.1, the front end portion of each elastomeric lamina 18 extending inwardly from the lamina first end 18.sup.na is deflected toward the body side 12d having the least spacing distance d.sub.S2, compressing each elastomeric laminae 18.sup.n between adjacent metallic shims 20.sup.n to reduce tensile-loading and/or increase compression on each elastomeric lamina frontend portion, as indicated in
[0032] Referring to
[0033] With such a lamina structure, at least a portion of the metallic laminae 20 can be considered to be arranged in pairs 22 of adjacent inner and outer metallic laminae 20.sup.n, as indicated in
[0034] With either bearing component construction, the laminated body 12 formed of the wedge-shaped metallic laminae/shims 20.sup.n results in a substantial increase in the life expectancy of the bearing component 10, and thus also the bearing assembly 11, compared to previously known laminated bearings/bearing components. Such an increase is due to the fact that elastomers have greater strength in compression compared with tension. Therefore, by inducing compression (or at least reducing tensile loading) on portions of the elastomeric laminae 18.sup.n that would otherwise be in tension or have greater tensile loading results in the increased bearing life expectancy.
[0035] Referring now to
[0036] Further, the outer connector member 16 is configured to connect the laminated body outer radial end 12b with the outer member 2 and preferably includes a generally arcuate body 38. As depicted in
[0037] Referring to
[0038] With the preferred spherical laminae 18.sup.n, 20.sup.n of the laminated body 12, at least a portion of the inner connector outer surface 36 is partially spherical with a center of curvature (not indicated) located on the geometric center C.sub.G. The innermost elastomeric lamina 18.sup.1 is attached to the inner member outer surface 36 such that the centers of curvature C.sub.C of the elastomeric and metallic laminae 18.sup.n, 20.sup.n are either generally coincident with, or spaced generally along the central axis A.sub.C from, the center of curvature of the connector outer surface 36. That is, either the laminae 18.sup.n, 20.sup.n are generally symmetric about the inner connector 16 (
[0039] Referring to
[0040] Preferably, the value of each lamina angle is between about fifteen degrees (15) and about one hundred eighty degrees (180), and therefore also the body angle of the bearing component 10, but may have any desired value, such as for example, ten degrees (10) or even less. The particular value of the angles , generally depends on the intended number of bearing components 10 desired for a particular bearing assembly 11, and each component 10 may have substantially the same or substantially different body angles within a specific bearing assembly 11. For example, if desired to make a bearing assembly 10 with two bearing components 10, then each bearing component 10 may be formed and sized such that the body angle is up to (and at least slightly less than) one hundred eighty degrees (180), with appropriate sizing of the connectors 14, 16. Further for example, if desired to make the bearing assembly 11 including three bearing components 10, each bearing component body 12 may be formed and sized such that the angle is up to (and at least slightly less than) one hundred twenty degrees (120). However, the bearing assembly 11 may be formed of any desired number of bearing components 10 formed having any desired body angle , such as the two bearing components 10 with body angles of about 120 as shown in
[0041] It will be appreciated by those skilled in the art that changes could be made to the embodiments described above without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as generally defined in the appended claims.