Roller assembly of a cargo loading system
10850843 ยท 2020-12-01
Assignee
Inventors
Cpc classification
F16C17/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64D2009/006
PERFORMING OPERATIONS; TRANSPORTING
F16C2326/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2208/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64D9/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B64D9/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A cargo handling system that enables rollers to swivel without the need for the inclusion of metal thrust bearings. A method of assembling and retrofitting existing conventional type swivel caster style wheels is also provided.
Claims
1. A roller assembly including: a base; a roller support bracket configured to rotate relative to the base about a vertical axis, wherein the base and roller support bracket cooperatively define an annular bearing pocket positioned between the base and the roller support bracket; a thrust bearing positioned at least partially within the bearing pocket, wherein the thrust bearing includes a nonmetallic construction; and an o-ring positioned between the base and the roller support bracket, wherein the o-ring is seated within an annular groove in the roller support bracket.
2. The roller assembly of claim 1, wherein the thrust bearing is constructed of a polymeric material.
3. The roller assembly of claim 1, wherein the thrust bearing is constructed of acetal.
4. The roller assembly of claim 1, wherein the thrust bearing is constructed of Delrin.
5. The roller assembly of claim 1, wherein the bearing pocket includes an inner guide surface and an outer guide surface.
6. The roller assembly of claim 1, wherein the bearing pocket includes an inner cylindrical guide surface and an outer cylindrical guide surface.
7. The roller assembly of claim 1, wherein the thrust bearing has a thickness T and the bearing pocket has a depth D, and wherein the thickness T of the thrust bearing is greater than the depth D of the bearing pocket.
8. The roller assembly of claim 7, wherein the o-ring has a diameter larger than the thrust bearing and is concentrically arranged with the thrust bearing.
9. The roller assembly of claim 8, wherein the o-ring projects from a surface of the roller support bracket a distance less than the difference between the thickness T of the thrust bearing and the depth D of the bearing pocket.
10. A method of retrofitting a conventional roller assembly including the steps of: separating a base from a roller support bracket; replacing a metal thrust bearing located between the base and the roller support bracket with an annular acetal disk, wherein the annular acetal disk is configured to be partially seated within a bearing pocket defined by an annular groove in the base; and reconnecting the base to the roller support bracket.
11. The method of claim 10, wherein the step of separating the base from the roller support bracket includes unbolting the roller support bracket from the base.
12. The method of claim 10, wherein the annular groove has a depth that is less than a thickness of the annular acetal disk.
13. An aircraft cargo handling system including: a unicaster swivel assembly that includes: a swivel frame configured to be secured to the floor of a cargo area in an aircraft; a cargo roller support bracket configured to rotate relative to the swivel frame about a vertical axis; a nonmetallic thrust bearing positioned between the swivel frame and the cargo roller support bracket; and an o-ring positioned between the swivel frame and the cargo roller support bracket, wherein the o-ring is seated within an annular groove in the cargo roller support bracket.
14. The aircraft cargo handling system of claim 13, wherein the swivel frame is configured to be secured to a track that is configured to be secured to the floor structure of an aircraft.
15. The aircraft cargo handling system of claim 13, wherein the swivel frame is configured to be secured to a caster panel that is configured to be secured to the floor of an aircraft.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION
(7) Referring to
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(10) In the depicted embodiment, the roller support bracket 16 is configured to support a roller 22 in a manner to allow the roller 22 to rotate about a horizontal axis. In the depicted embodiment, a bolt assembly 23 defines the horizontal rotational axis about which the roller 22 rotates.
(11) In the depicted embodiment, the roller assembly 4 includes a nonmetallic thrust bearing 26 located between the base 14 and the roller support bracket 16. In the depicted embodiment, the thrust bearing 26 is positioned partially within a bearing pocket 28. In the depicted embodiment, the bearing pocket 28 is an annular recess in the base 14. In the depicted embodiment, a bearing pocket 28 includes an inner cylindrical guide surface 30 and an outer cylindrical guide surface 32. In the depicted embodiment, the thrust bearing 26 has a thickness T and the bearing pocket 28 has a depth D. According to one example embodiment, the thickness T of the thrust bearing 26 is greater than the depth D of the bearing pocket 28.
(12) In the depicted embodiment, the roller assembly 4 includes an o-ring 34 positioned between the base 14 and the roller support bracket 16. In the depicted embodiment, the o-ring 34 has a diameter larger than the thrust bearing 26 and is concentrically arranged with the thrust bearing 26. In the depicted embodiment, the o-ring 34 is seated within an annular groove 36 in the roller support bracket 16. In the depicted embodiment, the o-ring 34 preferably projects from the surface of the roller support bracket 16 a distance less than the difference between the thickness T of the thrust bearing 26 and the depth D of the bearing pocket 28.
(13) In the depicted embodiment, the thrust bearing 26 is nonmetallic. In the depicted embodiment, the thrust bearing 26 is constructed of plastic and includes acetal. In this particular embodiment, the entire thrust bearing 26 is constructed of Delrin.
(14) In one embodiment, the roller assembly 4 is particularly configured as part of an aircraft cargo handling system, and the roller assembly 4 takes the form of a unicaster swivel assembly. The base 14 is a swivel frame configured to be directly or indirectly (via tracks or a caster panel) secured to the floor of a cargo area in an aircraft, the roller support bracket 16 is a cargo roller support bracket 16 configured to rotate relative to the swivel frame about a vertical axis, and the thrust bearing 26 is a nonmetallic thrust bearing 26 positioned between the swivel frame and the cargo roller support bracket 16.
(15) A method of retrofitting a roller assembly 4 is also provided. The method includes the steps of separating a base 14 from a roller support bracket 16, replacing a conventional metal thrust bearing located between the base 14 and the roller support bracket 16 with an annular acetal disk defining the thrust bearing 26 having features that are examples of inventive aspects in accordance with the present disclosure, and reconnecting the base 14 to the roller support bracket 16. In the above described method, the step of separating the base 14 from the roller support bracket 16 includes unbolting the roller support bracket 16 from the base 14. As discussed above, the acetal disk defining the inventive thrust bearing 26 can be configured to be partially seated within a bearing pocket 28 defined by an annular groove in the base 14. The annular groove can have a depth that is less than the thickness of the annular acetal disk defining the bearing 26.
(16) The present disclosure may be embodied in other specific forms without departing from the spirit or essential attributes thereof; and it is, therefore, desired that the present embodiment be considered in all respects as illustrative and not restrictive, reference being made to the appended claims rather than to the foregoing description to indicate the scope of the invention.