Claims
- 1. A roller assembly for guiding the motion of a first circumferentially extending structure in a gas turbine engine with respect to a second structure, one of said structures having an opening for guiding the roller assembly and the other structure being adapted to fixedly engage the roller assembly, the roller assembly being disposed about an axis of symmetry Ap, and having a rotatable element disposed about the axis Ap which adapts the roller assembly to engage a track and to receive an external force Fe from the track under operative conditions, causing a reactive force Fr on the rotatable element to resist the force Fe, which comprises:
- a pin disposed about the axis Ap having a first end and a second end, the pin being urged toward the structure to which the roller assembly is fixed under operative conditions, the pin including,
- a head at the first end which engages the rotatable element, the head having a diameter Dh which extends circumferentially about the axis Ap,
- a shank extending axially from the head which is disposed about the axis Ap and which has a maximum diameter Ds which is smaller than the diameter of the head,
- a clamping surface having a portion which extends radially at a location having a diameter greater than the diameter Ds of the shank;
- a collar having a first end disposed adjacent the head of the pin and a second end which adapts the collar to engage a support, the collar further including
- a radial surface extending in faying contact with the clamping surface,
- an internal axial surface, the internal axial surface further including,
- a first region adjacent the head having a portion which engages the shank with a compressive force,
- a second region having a length Lr, the second region being spaced radially outwardly from the shank and radially outwardly of a portion of the first region, the second region extending from the first region to the clamping surface to leave a gap G between the collar and the shank which extends from the first region to the support;
- wherein the collar exerts a reactive force Fr on the pin at the first region and wherein spacing the collar from the shank causes the reactive force Fr, which is developed under operative conditions in the collar against the shank, to be spaced from the support by at least a distance Lr that is greater than the distance La between the external force Fe and the reactive force Fr such that the maximum bending stresses in the shank have a decreased level in comparison of constructions in which the reactive force Fr against the pin acts at the support.
- 2. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 1 wherein the head includes a fillet radius R which extends between the clamping surface of the pin and the shank of the pin to decrease the stress riser in the pin at the interface between the shank and the head and wherein the fillet radius in the shank is spaced by at least the length Lr of the second region of the collar from the second end of the collar at the support; and, wherein the surface of the collar at the second end adjacent the support is not decreased by a fillet radius to avoid decreasing the surface area of the collar and to concomitantly avoid increasing the pressure and wear of a clamping force on the surface of the support.
- 3. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 1 wherein the clamping surface is adjacent the interface between the head and the shank, wherein the clamping surface faces in an axial direction toward the second end of the pin; wherein the radial surface of the collar is a first radial surface and the collar has a second radial surface spaced axially from the first radial surface by a distance Lc, the second radial surface extending circumferentially about the collar to form a clamping surface for the collar which adapts the collar to engage the support; and, wherein the stress riser resulting from the location of the clamping surface at the interface between the head and the shank is spaced axially from the support by the collar to move the stress riser of the interface away from the large bending stresses which exist in the shank adjacent the support.
- 4. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 3 wherein the head includes a fillet radius R which extends between the clamping surface of the pin and the shank of the pin at the collar to decrease the stress riser in the pin and wherein the fillet radius in the shank is spaced by at least the length Lr of the collar from the second end of the collar at the second end of the collar at the support and wherein the surface of the collar at the second end adjacent the support is not decreased by a fillet radius to avoid decreasing the surface area of the collar and to concomitantly avoid increasing the pressure and wear of the clamping force on the surface of the support.
- 5. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 3 wherein the roller assembly has a race which engages the rotatable element, wherein the pin has a thrust member formed as one piece with the head such that said thrust member is not bonded or mechanically attached to said head, the thrust member extending radially outwardly from the head and having an axially facing surface which bounds one side of the race.
- 6. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 5 wherein the first radial surface of the collar extends beyond the first clamping surface of the head to bound a second side of the race.
- 7. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 1 wherein the roller assembly has a race which receives the rotatable element, wherein the head of the pin bounds the bottom of the race, wherein the pin has a thrust member formed as one piece with the head such that said thrust member is not bonded or mechanically attached to said head, the thrust member extending radially outwardly from the head and having an axially facing surface which bounds one side of the race; and, wherein the first radial surface of the collar extends beyond the first clamping surface of the head to bound a second side of the race.
- 8. A roller assembly 58 for guiding the motion of a circumferentially extending ring in a gas turbine engine, the roller assembly being disposed about an axis of symmetry Ap, having a race 114 bounded by sides and by a bottom, having a rotatable element 82 disposed about the race which adapts the roller assembly to engage a track on a housing 42 and to receive an external force Fe from at least one wall bounding the track under operative conditions causing a reactive force Fr on the roller assembly to resist the force Fe, which comprises:
- a pin disposed about the axis Ap having a first end and a second end, the pin including;
- a head having a diameter Dh which extends circumferentially about the axis Ap to form the bottom of the race for the rotatable element;
- a thrust member formed as one piece with the head extending radially outwardly from the head having an axially facing surface which bounds one side of the race; and,
- a cylindrical shank extending axially from the head which is disposed about the axis Ap and which has a diameter Ds which is smaller than the diameter of the head;
- a first clamping surface extending radially between the shank and the bottom of the race, the clamping surface facing in an axial direction toward the second end of the pin;
- a collar having a first end disposed adjacent the head of the pin and a second end which adapts the collar to engage a support, the collar further including;
- a first radial surface at the first end which extends radially outwardly and which engages the first clamping surface of the head of the pin, the first radial surface 136 extending beyond the first clamping surface to bound the second side of the race;
- a second radial surface spaced axially from the first radial surface by a distance Lr extending circumferentially about the collar to form a clamping surface for the collar which adapts the collar to engage the support;
- an internal axial surface which extends from the first radial surface to the second radial surface, the internal axial surface further including,
- a first region adjacent the head having a portion which engages the shank with a compressive force,
- a second region spaced radially outwardly from the shank and radially outwardly of the first region the second region extending from the first region to the clamping surface 86 to leave a gap G between the collar and the shank which extends to the support;
- wherein spacing the collar from the shank causes the reactive force Fr developed under operative conditions in the collar against the shank to be spaced from the support by a distance Lr which is greater than the distance La between the external force Fe and the reactive force Fr such that the maximum bending stresses in the shank have a decreased level in comparison of constructions in which the reactive force Fr acts at the support;
- wherein the stress riser resulting from the formation of the clamping surface at the interface between the head and the shank is spaced axially from the support by the collar to move the stress riser from the large bending stresses which exist in the shank adjacent the support; and,
- wherein a fillet radius R extends between the first clamping surface of the pin and the shank of the pin at the collar to decrease the stress riser in the pin and wherein the fillet radius in the shank is spaced by the collar from the support and wherein the surface of the collar adjacent the support is not decreased by a fillet radius to avoid decreasing the surface area of the collar and avoid increasing the pressure and wear of the clamping force on the surface of the support.
- 9. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 1 wherein the rotatable element is formed of a material which is harder and less elastic than AMS 4218 aluminum alloy.
- 10. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 9 wherein said material of the rotatable element is steel.
- 11. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 1 wherein the rotatable element has a surface formed of an elastomeric material.
- 12. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 11 wherein the rotatable element has a rim having a circumferentially extending bottom and a pair of radially extending sides and further includes an elastomeric material disposed on said rim to form the surface of the roller element.
- 13. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 7 wherein rotatable element is formed of a material which is harder and less elastic than AMS 4218 aluminum alloy.
- 14. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 13 wherein said material of the rotatable element is steel.
- 15. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 7 wherein the rotatable element has a surface formed of an elastomeric material.
- 16. The roller assembly for guiding the motion of a circumferentially extending structure as claimed in claim 15 wherein the rotatable element has a rim having a circumferentially extending bottom and a pair of radially extending sides and further includes an elastomeric material disposed on said rim to form the surface of the roller element.
- 17. A rotatable element for guiding the motion of a first circumferentially extending structure in a gas turbine engine with respect to a second structure, one of said structures having an opening for guiding the roller assembly and the other structure being adapted to fixedly engage the roller assembly, the roller assembly being disposed about an axis of symmetry Ap, and having the rotatable element disposed about the axis Ap which adapts the roller assembly to engage the track and to receive an external force Fe from the track under operative conditions causing a reactive force Fr on the rotatable element to resist the force Fe, which comprises:
- a rim having a circumferentially extending bottom and a pair of radially extending sides and an elastomeric material disposed on said rim to form the surface of the roller element.
- 18. The rotatable element for a roller assembly for guiding the motion of a first circumferentially extending structure in a gas turbine engine as claimed in claim 17 wherein the rim has an axially extending lip which extends from one of said sides.
Parent Case Info
This application claims benefit from U.S. Provisional Applications Ser. No. 60/076,184 filed on Feb. 27, 1998, Ser. No. 60/076,106 filed on Feb. 27, 1998, and 60/076,107 filed on Feb. 27, 1998.
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Number |
Name |
Date |
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4827713 |
Peterson et al. |
May 1989 |
|
5380151 |
Kostka et al. |
Jan 1995 |
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