LOW CLEARANCE HIGH CAPACITY ROLLER BEARING
20170307014 · 2017-10-26
Inventors
Cpc classification
F16C25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/363
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/585
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2300/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C33/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A low clearance, high load capacity roller bearing that includes a cylindrical outer race with a set of non-helical grooves formed on its inside surface that mesh with teeth formed on the outside surface of a plurality of rotating rollers longitudinally and axially aligned inside the outer race. Located inside the rollers are two cylindrical inner race pieces each with non-helical outer grooves configured to mesh with the teeth on the rollers. The rollers are longitudinally aligned and evenly spaced apart inside the outer race and outside the inner race assembly by two retainer plates. The two inner race pieces are separated by a uniform circular gap in which a circular shim is disposed. Different lengths of inner race pieces may be used to create different gap widths needed to reduce the clearance or to pre-load the bearing. Shims with different widths slightly larger or smaller than the gap are placed in the gap.
Claims
1. A roller bearing, comprising; a. a hollow, cylindrical outer race with a midline axis and inward facing, non-helical grooves; b. a plurality of rollers axially aligned inside said outer race, said rollers being axially aligned and evenly spaced apart from said midline from the midline axis of said outer race, each said roller includes a plurality of non-helical teeth configured to mesh with said grooves on said outer race; c. two inner race pieces axially aligned with said outer race and inward from said rollers, each said race piece includes a plurality of grooves configured to mesh with said teeth on said rollers, said race pieces being separated by a gap with a desired width to allow said inner race pieces to move longitudinally together or apart to adjust the clearance between said grooves on said inner race pieces and said teeth on said rollers when assembled, each said inner race pieces includes a shaft bore, and; d. a shim disposed inside said gap located between said inner race pieces, said shim having a width configured to force said inner race pieces longitudinally apart and against said rollers to reduce the clearance or pre-load said roller bearing or to move said inner race pieces axially to allow a pre-load force to be applied to said roller bearing after placement on a shaft.
2. The roller bearing as recited in claim 1, further including two retainer plates used to hold said inner race pieces inside said outer race.
3. The roller bearing as recited in claim 1, further including a a retaining ring that engages said outer race to hold each said retainer plate inside said outer race.
4. The roller bearing as recited in claim 1, further including a shim ring configured to hold said shim inside said gap.
5. The roller bearing as recited in claim 1, further including two nuts located on the opposite ends of said outer race, said nuts configured to attached to a threaded shaft that extends into said roller bearing and apply opposite inward forces to said outer nut.
6. A roller bearing configured to be mounted on a shaft, comprising; a. a hollow, cylindrical outer race with a midline axis and inward facing, non-helical grooves; b. a plurality of rollers axially aligned inside said outer race, said rollers being axially aligned and evenly spaced apart from said midline axis of said outer race, each said roller includes a plurality of non-helical teeth configured to mesh with said grooves on said outer race; c. two inner race pieces axially aligned with said outer race and inward from said rollers, each said race piece includes a plurality of grooves configured to mesh with said teeth on said rollers, said race pieces being separated by a gap with a desired width to allow said inner race pieces to move longitudinally together or apart to adjust the clearance between said grooves on said inner race pieces and said teeth on said rollers when assembled, each said inner race pieces includes a shaft bore; d. a shim disposed inside said gap located between said inner race pieces, said shim having a width configured to allow said inner race pieces to move
7. The roller bearing as recited in claim 6, further including two retainer plates used to hold said inner race pieces inside said outer race.
8. The roller bearing as recited in claim 6, further including a retaining ring that engages said outer race to hold each said retainer plate inside said outer race.
9. The roller bearing as recited in claim 6, further including a shim ring configured to hold said shim inside said gap.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
BEST MODE FOR CARRYING OUT THE INVENTION
[0024] Disclosed herein is a low clearance, high load capacity roller bearing 20 that includes a cylindrical outer race 30 with a set of non-helical grooves 32 formed on its inside surface that mesh and engage teeth 82 formed on the outside surface of a plurality of parallel rotating rollers 80 longitudinally and axially aligned inside the outer race 30. Located inside the rollers 80 and coaxially aligned with the outer race 30 is an inner race assembly 40 comprising at least one pair of cylindrical inner race pieces 45, 50 each with non-helical outer grooves 47, 52, respectively, formed on their outer surfaces configured to mesh with the teeth 82 on the rollers 80 after assembly. The rollers 80 are longitudinally aligned and evenly spaced apart inside the outer race 30 and outside the inner race assembly 40 by two retainer plates 100, 110. Retaining rings 130, 132 that fit inside the end openings of the outer race 30 are used to hold the rollers 80 and inner race assembly 40, and the retainer plates 100, 110 inside the outer race 30.
[0025] The two inner race pieces 45, 50 are separated by a uniform circular gap 65, in which a wide or narrow ring-shaped shim 70 is disposed. When a shim 70 is disposed inside the gap 65, the two 45, 50 pieces are sufficiently axially forced apart to reduce or eliminate the clearance between the grooves 47, 52 on the inner race pieces 45, 50 and the teeth 82 on the rollers 80.
[0026] During assembly, the two inner race pieces 45, 50 are coaxially aligned over a shaft 200. Two ring-shaped shims 70 with the desired width is then placed into the gap between the two inner race spices 45, 50 to force the two inner race pieces 45, 50, longitudinally and axially outward in opposite directions.
[0027] In one embodiment, shown in
[0028]
[0029] In the embodiment, the shim 65 may have a width less than the width of the gap 60 enabling the one-half flanks on the opposite side of the groove 47 or 52 to press against the opposite flank surfaces on the teeth 82. Nuts, clamping structures, or surfaces may be used press the inner race pieces 45, 50 inward to pre-load the bearing the desired amount.
[0030] In a second embodiment, shown in
[0031] In this embodiment, nuts 210 or clamping surfaces or structures are used to press the two inner sleeve pieces 45′, 50′ inward on the shaft (not shown). When assembled, the opposite facing flanks on the grooves 47′, 52′ on the two inner sleeve pieces 45′, 50′ respectively, press against both facing flanks on the teeth 82 on the roller 80. In the second embodiment, the load capacity is shared by all the grooves 47′, 52′ on one inner race piece 45′ or, 50′ respectively, and all of the adjacent mating teeth 82 on the rollers share the load capacity.
[0032] In both embodiments presented, the gaps 65, 65′ and shims 70, 70′ are at or near the midline central axis 31 of the outer race 30 and the midline central axis 120, 120′, respectively, between the pair of two inner race pieces 45, 50 and 45′, 50′. It should be understood, however, that the gap 65, 65′ and shims 70, 70′ may be offset from the central axis 120, 120′ to provide higher load capacity in one direction on one end of the roller bearing and lower load capacity in the opposite direction.
[0033]
[0034]
[0035] In compliance with the statute, the invention described has been described in language more or less specific on structural features. It should be understood, however, that the invention is not limited to the specific features shown, since the means and construction shown comprises the preferred embodiments for putting the invention into effect. The invention is therefore claimed in its forms or modifications within the legitimate and valid scope of the amended claims, appropriately interpreted under the doctrine of equivalents.
INDUSTRIAL APPLICABILITY
[0036] This invention may be used in industries that use threaded connectors to connect components together. More particularly, this invention will used in industries that use threaded connectors that undergo high torque forces.