PLASTIC BEARING FOR STEERING COLUMN
20240246599 ยท 2024-07-25
Assignee
Inventors
Cpc classification
F16C33/412
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/581
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C19/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A plastic bearing for a steering column includes a housing, an inner race, and a middle race. A retainer and balls are arranged between the middle race and the inner race. An accommodating cavity is formed in the housing; the middle race is arranged in the accommodating cavity. Guide protrusions are arranged on an inner wall of the accommodating cavity. Two positioning protrusions are arranged on an outer wall of the middle race, and an insertion groove is formed between the two positioning protrusions. The guide protrusion is matched with the insertion groove. Buckles are arranged on the inner wall of the accommodating cavity. Clamping blocks are arranged on the outer wall of the middle race, and the clamping blocks are clamped in the buckles. The overall structure of the plastic bearing for a steering column is more compact and simple and can be easily and conveniently assembled.
Claims
1. A plastic bearing for a steering column comprising: a housing, an inner race, and a middle race, wherein the middle race is sleeved outside the inner race; wherein a retainer and balls are arranged between the middle race and the inner race, and the balls are rotatably mounted on the retainer; wherein the housing, the inner race, and the middle race are made of plastic; wherein an accommodating cavity is in the housing; the middle race is arranged in the accommodating cavity; and a plurality of guide protrusions are arranged on an inner wall of the accommodating cavity; wherein two positioning protrusions are arranged on an outer wall of the middle race, and the two positioning protrusions correspond to two sides of each of the plurality of guide protrusions: wherein an insertion groove is between the two positioning protrusions; each of the plurality of guide protrusions is matched with the insertion groove in an insertion manner; wherein a plurality of buckles are arranged on the inner wall of the accommodating cavity; clamping blocks are arranged on the outer wall of the middle race, and the clamping blocks correspond to the plurality of buckles; and wherein the clamping blocks are clamped in the plurality of buckles to fix the housing and the middle race together.
2. The plastic bearing for the steering column according to claim 1, wherein a side of each of the plurality of buckles faces the clamping blocks, and a convex block is arranged on the side.
3. The plastic bearing for the steering column according to claim 2, wherein the convex block is in contact with each of the clamping blocks, and a contact surface of the convex block and each of the clamping blocks is inclined, each of the clamping blocks is in contact with an outer edge of the accommodating cavity, and a contact surface of the clamping block and the outer edge is inclined.
4. The plastic bearing for the steering column according to claim 1, further comprising positioning ribs, wherein the positioning ribs are arranged on the inner wall of the accommodating cavity, and the positioning ribs correspond to two sides of each of the two positioning protrusions.
5. The plastic bearing for the steering column according to claim 4, wherein the positioning ribs and the two positioning protrusions are in a wedge shape.
6. The plastic bearing for the steering column according to claim 5, wherein an outer wall of the positioning ribs is attached to an outer wall of the two positioning protrusions.
7. The plastic bearing for the steering column according to claim 6, further comprising a positioning flange and a dust-proof groove, wherein the positioning flange is arranged on a bottom surface of the accommodating cavity, wherein the dust-proof groove is arranged on an end face of the inner race, and the dust-proof groove corresponds to the positioning flange, and wherein the positioning flange is clamped in the dust-proof groove.
8. The plastic bearing for the steering column according to claim 7, wherein the positioning flange is in a clearance fit with the dust-proof groove.
9. The plastic bearing for the steering column according to claim 1, furthering comprising a plurality of assembly ribs and a guide rib, wherein the plurality of assembly ribs are circumferentially arranged on an outer wall of the housing, and wherein the guide rib is configured for assembly guidance and is arranged on the outer wall of the housing.
10. The plastic bearing for the steering column according to claim 1, wherein an inner radial surface of the inner race is special-shaped.
11. The plastic bearing for the steering column according to claim 2, further comprising positioning ribs, wherein the positioning ribs are arranged on the inner wall of the accommodating cavity, and the positioning ribs correspond to two sides of each of the two positioning protrusions.
12. The plastic bearing for the steering column according to claim 3, further comprising positioning ribs, wherein the positioning ribs are arranged on the inner wall of the accommodating cavity, and the positioning ribs correspond to two sides of each of the two positioning protrusions.
13. The plastic bearing for the steering column according to claim 11, wherein the positioning ribs and the two positioning protrusions are in a wedge shape.
14. The plastic bearing for the steering column according to claim 12, wherein the positioning ribs and the two positioning protrusions are in a wedge shape.
15. The plastic bearing for the steering column according to claim 13, wherein an outer wall of the positioning ribs is attached to an outer wall of the two positioning protrusions.
16. The plastic bearing for the steering column according to claim 14, wherein an outer wall of the positioning ribs is attached to an outer wall of the two positioning protrusions.
17. The plastic bearing for the steering column according to claim 15, further comprising a positioning flange and a dust-proof groove, wherein the positioning flange is arranged on a bottom surface of the accommodating cavity, wherein the dust-proof groove is arranged on an end face of the inner race, and the dust-proof groove corresponds to the positioning flange, and wherein the positioning flange is clamped in the dust-proof groove.
18. The plastic bearing for the steering column according to claim 16, further comprising a positioning flange and a dust-proof groove, wherein the positioning flange is arranged on a bottom surface of the accommodating cavity, wherein the dust-proof groove is arranged on an end face of the inner race, and the dust-proof groove corresponds to the positioning flange, and wherein the positioning flange is clamped in the dust-proof groove.
19. The plastic bearing for the steering column according to claim 17, wherein the positioning flange is in a clearance fit with the dust-proof groove.
20. The plastic bearing for the steering column according to claim 18, wherein the positioning flange is in a clearance fit with the dust-proof groove.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
[0022]
[0023]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0024] As shown in
[0025] Further, a convex block (15) is arranged on a side of the buckle (14) facing the clamping block (22). A surface of the convex block (15) that is brought into contact with the clamping block (22) is inclined. A surface of the clamping block (22) that is brought into contact with an outer edge of the accommodating cavity (11) is inclined. Such configuration has the following beneficial effects: The clamping block (22) is clamped onto the buckle (14) more smoothly, such that the assembly efficiency is improved.
[0026] Further, positioning ribs (13) corresponding to two sides of the positioning protrusions (21) are arranged on the inner wall of the accommodating cavity (11). The positioning rib (13) and the positioning protrusion (21) are both formed in a wedge shape, and an outer wall of the positioning rib (13) is attached to an outer wall of the positioning protrusion (21). Such configuration has the following beneficial effects: A better assembly guidance effect is achieved, and the structure is simple and extremely stable.
[0027] Further, a positioning flange (17) is arranged on the bottom surface of the accommodating cavity (11). A dust-proof groove (32) corresponding to the positioning flange (17) is formed in an end face of the inner race (3), and the positioning flange (17) is clamped into the dust-proof groove (32). Further, the positioning flange (17) is in a clearance fit with the dust-proof groove (32). Such configuration has the following beneficial effects: A labyrinth structure is formed by the combination of the dust-proof groove (32) and the positioning flange (17), such that foreign matters are prevented from falling into the bearing, and the stability in the use of the overall structure is achieved. Meanwhile, the structure is simple and can be easily assembled, and the weight of the overall structure is effectively reduced, such that the requirement for a lightweight structure is met. Additionally, based on the clearance fit between the positioning flange (17) and the dust-proof groove (32), the positioning flange (17) is clamped into the dust-proof groove (32) more easily, such that the assembly is smoother and more convenient.
[0028] Further, a plurality of assembly ribs (16) are circumferentially arranged on an outer wall of the housing (1), and a guide rib for assembly guidance is also arranged on the outer wall of the housing (1). Such configuration has the following beneficial effects: By using the assembly ribs (16), a pressing force applied to the housing is not likely to be excessively large. Meanwhile, the structure is simple and can be easily assembled, and the convenience of production and processing is achieved.
[0029] Further, an inner radial surface of the inner race (3) is special-shaped. Such configuration has the following beneficial effects: The pressing force from a shaft is not likely to be excessively large, such that the stability and use effect of the overall structure are guaranteed. Meanwhile, the structure is simple, and the convenience for the processing is achieved.
[0030] As shown in
[0031] Further, a convex block (15) is arranged on a side of the buckle (14) that is facing the clamping block (22). A surface of the convex block (15) that is brought into contact with the clamping block (22) is inclined, and a surface of the clamping block (22) that is brought into contact with an outer edge of the accommodating cavity (11) is inclined. Such configuration has the following beneficial effects: The clamping block (22) is clamped into the buckle (14) more smoothly, such that the assembly efficiency is improved.
[0032] Further, positioning ribs (13) corresponding to two sides of the positioning protrusions (21) are arranged on the inner wall of the accommodating cavity (11). The positioning rib (13) and the positioning protrusion (21) are both formed in a wedge shape, and an outer wall of the positioning rib (13) is attached to an outer wall of the positioning protrusion (21). Such configuration has the following beneficial effects: A better assembly guidance effect is achieved, and the structure is simple and extremely stable.
[0033] Further, a positioning flange (17) is arranged on the bottom surface of the accommodating cavity (11). A dust-proof groove (32) corresponding to the positioning flange (17) is formed in an end face of the inner race (3). The positioning flange (17) is clamped into the dust-proof groove (32). Further, the positioning flange (17) is in a clearance fit with the dust-proof groove (32). Such configuration has the following beneficial effects: A labyrinth structure is formed by the combination of the dust-proof groove (32) and the positioning flange (17), such that foreign matters are prevented from falling into the bearing, and the stability in the use of the overall structure is achieved. Meanwhile, the structure is simple and can be easily assembled, and the weight of the overall structure is effectively reduced, such that the requirement for a lightweight structure is met. Additionally, based on the clearance fit between the positioning flange (17) and the dust-proof groove (32), the positioning flange (17) is clamped into the dust-proof groove (32) more easily, such that the assembly is smoother and more convenient.
[0034] Further, a plurality of assembly ribs (16) is circumferentially arranged on an outer wall of the housing (1), and a guide rib for assembly guidance is also arranged on the outer wall of the housing (1). Such configuration has the following beneficial effects: By using the assembly ribs (16), a pressing force applied to the housing is not likely to be excessively large. Meanwhile, the structure is simple and can be easily assembled, and the convenience of production and processing is achieved.
[0035] Further, an inner radial surface of the inner race (3) is special-shaped. Such configuration has the following beneficial effects: The pressing force from a shaft is not likely to be excessively large, such that the stability and use effect of the overall structure are guaranteed. Meanwhile, the structure is simple, and the convenience for the processing is achieved.
[0036] As shown in
[0037] Further, a convex block (15) is arranged on a side of the buckle (14) that is facing the clamping block (22). A surface of the convex block (15) that is brought into contact with the clamping block (22) is inclined. A surface of the clamping block (22) that is brought into contact with an outer edge of the accommodating cavity (11) is inclined. Such configuration has the following beneficial effects: The clamping block (22) is clamped into the buckle (14) more smoothly, such that the assembly efficiency is improved.
[0038] Further, positioning ribs (13) corresponding to two sides of the positioning protrusions (21) are arranged on the inner wall of the accommodating cavity (11); the positioning rib (13) and the positioning protrusion (21) are both formed in a wedge shape, and an outer wall of the positioning rib (13) is attached to an outer wall of the positioning protrusion (21). Such configuration has the following beneficial effects: A better assembly guidance effect is achieved, and the structure is simple and extremely stable.
[0039] Further, a positioning flange (17) is arranged on the bottom surface of the accommodating cavity (11); a dust-proof groove (32) corresponding to the positioning flange (17) is formed in an end face of the inner race (3), and the positioning flange (17) is clamped in the dust-proof groove (32). Further, the positioning flange (17) is in a clearance fit with the dust-proof groove (32). Such configuration has the following beneficial effects: A labyrinth structure is formed by the combination of the dust-proof groove (32) and the positioning flange (17), such that foreign matters are prevented from falling into the bearing, and the stability in the use of the overall structure is achieved. Meanwhile, the structure is simple and can be easily assembled, and the weight of the overall structure is effectively reduced, such that the requirement for a lightweight structure is met. Besides, based on the clearance fit between the positioning flange (17) and the dust-proof groove (32), the positioning flange (17) is clamped into the dust-proof groove (32) more easily, such that the assembly is smoother and more convenient.
[0040] Further, a plurality of assembly ribs (16) are circumferentially arranged on an outer wall of the housing (1), and a guide rib for assembly guidance is also arranged on the outer wall of the housing (1). Such configuration has the following beneficial effects: By using the assembly ribs (16), a pressing force applied to the housing is not likely to be excessively large. Meanwhile, the structure is simple and can be easily assembled, and the convenience of production and processing is achieved.
[0041] Further, an inner radial surface of the inner race (3) is special-shaped. Such configuration has the following beneficial effects: The pressing force from a shaft is not likely to be excessively large, such that the stability and use effect of the overall structure are realized. Meanwhile, the structure is simple, and the convenience of processing is achieved.
[0042] The above embodiment is just one of the preferred specific embodiments of the present disclosure, and ordinary variations and substitutions made by those skilled in the art within the scope of the technical solution of the present disclosure shall fall within the protection scope of the present disclosure.