SPHERICAL JOINT ASSEMBLY WITH A SPHERICAL BEARING BETWEEN INTEGRAL COLLARS
20170335885 · 2017-11-23
Inventors
Cpc classification
F16C11/0685
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/0604
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2360/23
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/0695
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2326/43
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A bearing joint assembly includes a bearing sleeve, a first mount, a pair of second mounts and a fastener. The bearing sleeve extends axially along a centerline and includes a spherical bearing, a first collar and a second collar. The spherical bearing is axially between the first collar and the second collar. An annular channel is formed by and extends axially between the spherical bearing and the first collar. The first mount is mounted on and slidably engages the spherical bearing. The bearing sleeve is axially between the second mounts. The fastener projects through the bearing sleeve and secures the bearing sleeve to the second mounts.
Claims
1. A bearing joint assembly, comprising: a bearing sleeve extending axially along a centerline and including a spherical bearing, a first collar and a second collar, the spherical bearing axially between the first collar and the second collar, wherein an annular channel is formed by and extends axially between the spherical bearing and the first collar; a first mount mounted on and slidably engaging the spherical bearing; a pair of second mounts, the bearing sleeve axially between the second mounts; and a fastener projecting through the bearing sleeve and securing the bearing sleeve to the second mounts.
2. The bearing joint assembly of claim 1, wherein the annular channel is a first annular channel, and a second annular channel is formed by and extends axially between the spherical bearing and the second collar.
3. The bearing joint assembly of claim 1, wherein the bearing sleeve is a monolithic body.
4. The bearing joint assembly of claim 1, wherein the spherical bearing includes a radial outer spherical surface with a minimum radius value; and the first collar includes a radial outer collar surface with a maximum radius value that is greater than the minimum radius value of the radial outer spherical surface.
5. The bearing joint assembly of claim 4, wherein the radial outer spherical surface has a maximum radius value; and the maximum radius value of the radial outer collar surface is less than or equal to the maximum radius value of the radial outer spherical surface.
6. The bearing joint assembly of claim 1, wherein the first collar includes a radial outer collar surface, and at least a portion of the radial outer collar surface tapers radially inwards as the first collar extends axially towards the spherical bearing.
7. The bearing joint assembly of claim 6, wherein the at least a portion of the radial outer collar surface has a generally conical geometry.
8. The bearing joint assembly of claim 6, wherein the at least a portion of the radial outer collar surface is a first portion, and a second portion of the radial outer collar surface has a cylindrical geometry.
9. The bearing joint assembly of claim 1, further comprising: a strut comprising the first mount; and a turbine engine component comprising the second mounts.
10. A bearing joint assembly, comprising: a bearing sleeve extending axially along a centerline and including a spherical bearing, a first collar and a second collar, the spherical bearing axially between the first collar and the second collar, the spherical bearing including a radial outer spherical surface with a minimum radius value, and the first collar including a radial outer collar surface with a maximum radius value that is greater than the minimum radius value of the radial outer spherical surface; a first mount mounted on and slidably engaging the radial outer spherical surface; a pair of second mounts, the bearing sleeve axially between the second mounts; and a fastener projecting through the bearing sleeve and securing the bearing sleeve to the second mounts.
11. The bearing joint assembly of claim 10, wherein an annular channel is formed by and extends axially between the spherical bearing and the first collar.
12. The bearing joint assembly of claim 10, wherein the radial outer spherical surface has a maximum radius value; and the maximum radius value of the radial outer collar surface is less than or equal to the maximum radius value of the radial outer spherical surface.
13. The bearing joint assembly of claim 10, wherein the radial outer collar surface is a first radial outer collar surface, and wherein the second collar includes a second radial outer collar surface with a maximum radius value that is greater than the minimum radius value of the radial outer spherical surface.
14. The bearing joint assembly of claim 10, wherein the bearing sleeve is a monolithic body.
15. A bearing joint assembly, comprising: a bearing sleeve extending axially along a centerline and including a spherical bearing, a first collar and a second collar, the spherical bearing axially between the first collar and the second collar, wherein an annular channel is formed by and extends axially between the spherical bearing and the first collar, and wherein at least the spherical bearing and the first collar are included in a monolithic body; and a linkage including a first mount slidably engaged with the spherical bearing, wherein the spherical bearing is captured within an aperture extending axially through the first mount.
16. The bearing joint assembly of claim 15, wherein the annular channel is a first annular channel, and a second annular channel is formed by and extends axially between the spherical bearing and the second collar.
17. The bearing joint assembly of claim 16, wherein the bearing sleeve is the monolithic body.
18. The bearing joint assembly of claim 15, wherein the spherical bearing includes a radial outer spherical surface with a minimum radius value; and the first collar includes a radial outer collar surface with a maximum radius value that is greater than the minimum radius value of the radial outer spherical surface.
19. The bearing joint assembly of claim 18, wherein the radial outer spherical surface has a maximum radius value; and the maximum radius value of the radial outer collar surface is less than or equal to the maximum radius value of the radial outer spherical surface.
20. The bearing joint assembly of claim 15, wherein the first collar includes a radial outer collar surface, and at least a portion of the radial outer collar surface tapers radially inwards as the first collar extends axially towards the spherical bearing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION OF THE INVENTION
[0023]
[0024] The bearing joint assembly 10 of
[0025] The first component 12 may include the first mount 24. For example, the first mount 24 may be configured as a distal flange/tab/tongue of the first component 12; e.g., the actuation linkage. Alternatively, the first mount 24 may be formed discrete from and subsequently attached (e.g., mechanically fastened and/or bonded) to the first component 12.
[0026] The second component 14 may include the second mounts 26A and 26B. For example, the second mounts 26A and 26B may be configured as tabs/flanges projecting out from the second component 14; e.g., the turbine engine component. Alternatively, one or more of the second mounts 26A and 26B may each be formed discrete from and subsequently attached to the second component 14.
[0027] Referring to
[0028] The bearing sleeve 16 includes a spherical bearing 42 and one or more collars 44 and 46. The bearing sleeve 16 of
[0029] Referring again to
[0030] A radius 54 of the spherical surface 48 changes as the spherical surface 48 axially extends between the first end 50 and the second end 52 to provide the spherical surface 48 with a circular side sectional geometry; see
[0031] The first collar 44 is disposed at (e.g., on, adjacent or proximate) the first axial end 30. The first collar 44 of
[0032] A radius 62 of the collar surface 60 may change as the collar surface 60 axially extends from the first axial end 30 to the spherical bearing 42 to provide the collar surface 60 with a radially tapering side sectional geometry. The collar surface 60 of
[0033] The first collar 44 and the spherical bearing 42 collectively form a first annular channel 68. This first annular channel 68 is formed by and extends axially between the collar surface 60 and the spherical surface 48. The first annular channel 68 extends radially into the bearing sleeve 16 (towards the centerline 28) to an intersection (e.g., trough point) between the first collar 44 and the spherical bearing 42. The first annular channel 68 extends circumferentially around the centerline 28 through the bearing sleeve 16. This first annular channel 68 provides space for the first mount 24 to pivot about the spherical bearing 42 and, for example, freely articulate between the second mounts 26A and 26B as shown in
[0034] Referring to
[0035] A radius 74 of the collar surface 72 may change as the collar surface 72 axially extends from the second axial end 32 to the spherical bearing 42 to provide the collar surface 72 with a radially tapering side sectional geometry. The collar surface 72 of
[0036] The second collar 46 and the spherical bearing 42 collectively form a second annular channel 80. This second annular channel 80 is formed by and extends axially between the collar surface 72 and the spherical surface 48. The second annular channel 80 extends radially into the bearing sleeve 16 (towards the centerline 28) to an intersection (e.g., trough point) between the second collar 46 and the spherical bearing 42. The second annular channel 80 extends circumferentially around the centerline 28 through the bearing sleeve 16. This second annular channel 80 provides space for the first mount 24 to pivot about the spherical bearing 42 and, for example, freely articulate between the second mounts 26A and 26B as shown in
[0037] The first collar 44 and the second collar 46 of
[0038]
[0039] Referring to
[0040] During operation of the bearing joint assembly 10, the first mount 24 may pivot about the spherical bearing 42 as illustrated in
[0041] The bearing sleeve 16 of the present disclosure may have various configurations different than that specifically described above. For example, at least a portion of the collar surface 60, 72 is configured with a generally spherical geometry. In some embodiments, at least a portion of the collar surface 60, 72 may have a complex (e.g., splined and/or compound) geometry. In some embodiments, referring to
[0042] The first mount 24 is described above as being swaged on the spherical bearing 42. However, in other embodiments, other methodologies may also or alternatively be used to capture the spherical bearing 42 within the bearing aperture 82. For example, one or more bearing caps may be attached to sides of the first mount 24 after the spherical bearing 42 is positioned within the bearing aperture 82.
[0043] While various embodiments of the present invention have been disclosed, it will be apparent to those of ordinary skill in the art that many more embodiments and implementations are possible within the scope of the invention. For example, the present invention as described herein includes several aspects and embodiments that include particular features. Although these features may be described individually, it is within the scope of the present invention that some or all of these features may be combined with any one of the aspects and remain within the scope of the invention. Accordingly, the present invention is not to be restricted except in light of the attached claims and their equivalents.