IP Library Granted Patent US 11,933,303
Granted Patent B2
US 11,933,303 · App. 18/013,515 · Granted Mar 19, 2024

Sliding component

Inventor: Hiroshi Suzuki (Tokyo, JP)
Assignee: EAGLE INDUSTRY CO., LTD.
F04C29/00F04C18/02F04C2240/50
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Quick Facts
Patent No.
US 11,933,303
App. No.
18/013,515
Granted
Mar 19, 2024
Kind
B2
Abstract

Provided is a sliding component capable of stably reducing the frictional resistance between sliding surfaces entailing eccentric rotation. A sliding component has a sliding surface sliding relatively to a facing sliding surface with eccentric rotation. The sliding surface is provided with a plurality of dynamic pressure generation grooves arranged in a circumferential direction and each having, in a plan view, a tapered portion configured to become narrower toward a downstream side in an eccentric rotation direction of the facing sliding surface relatively to the sliding surface.

Claims (17)

1. A sliding component comprising:

a sliding surface sliding relatively to a facing sliding surface with eccentric rotation, wherein the sliding surface is provided with a plurality of dynamic pressure generation grooves arranged in a circumferential direction and each having, in a plan view, a tapered portion configured to become narrower toward a downstream side in an eccentric rotation direction of the facing sliding surface relatively to the sliding surface; and

wherein an end portion of each of the dynamic pressure generation grooves on the downstream side in the eccentric rotation direction is an acute-angled corner portion.

2. The sliding component according to claim 1 , wherein each of the dynamic pressure generation grooves communicates with an external space on an inner diameter side or an outer diameter side of the sliding surface.

3. The sliding component according to claim 1 , wherein the sliding surface and the facing sliding surface slide relative to each other with eccentric rotation such that the facing sliding surface overlaps with part of the plurality of dynamic pressure generation grooves and the facing sliding surface does not overlap with remains of the dynamic pressure generation grooves at any moment.

4. The sliding component according to claim 1 , wherein the dynamic pressure generation grooves are arranged in the circumferential direction on one of an inner diameter side and an outer diameter side of the sliding surface, and

the sliding surface is further provided with a plurality of other dynamic pressure generation grooves arranged in the circumferential direction on remaining one of the inner diameter side and the outer diameter side of the sliding surface and each having, in a plan view, a tapered portion configured to become narrower toward the upstream side in the eccentric rotation direction of the facing sliding surface relatively to the sliding surface.

5. The sliding component according to claim 4 , wherein adjacent two of the tapered portions of the dynamic pressure generation grooves and the other dynamic pressure generation grooves in a radial direction are formed so as to face in opposite directions in the eccentric rotation direction.

6. The sliding component according to claim 4 , wherein the dynamic pressure generation grooves and the other dynamic pressure generation grooves are radially separated from each other with a separation width larger than a radial width of the facing sliding surface formed in an annular shape.

7. The sliding component according to claim 4 , wherein a plurality of non-communication grooves surrounded by a land partitioning the dynamic pressure generation grooves and the other dynamic pressure generation grooves are provided in the circumferential direction between the dynamic pressure generation grooves and the other dynamic pressure generation grooves.

8. The sliding component according to claim 7 , wherein a plurality of the non-communication grooves are radially arranged between adjacent two of the dynamic pressure generation grooves and the other dynamic pressure generation grooves in the radial direction, and

the non-communication grooves arranged in the radial direction are different in shape.

9. The sliding component according to claim 2 , wherein the sliding surface and the facing sliding surface slide relative to each other with eccentric rotation such that the facing sliding surface overlaps with part of the plurality of dynamic pressure generation grooves and the facing sliding surface does not overlap with remains of the dynamic pressure generation grooves at any moment.

10. The sliding component according to claim 2 , wherein the dynamic pressure generation grooves are arranged in the circumferential direction on one of an inner diameter side and an outer diameter side of the sliding surface, and

the sliding surface is further provided with a plurality of other dynamic pressure generation grooves arranged in the circumferential direction on remaining one of the inner diameter side and the outer diameter side of the sliding surface and each having, in a plan view, a tapered portion configured to become narrower toward the upstream side in the eccentric rotation direction of the facing sliding surface relatively to the sliding surface.

11. The sliding component according to claim 10 , wherein adjacent two of the tapered portions of the dynamic pressure generation grooves and the other dynamic pressure generation grooves in a radial direction are formed so as to face in opposite directions in the eccentric rotation direction.

12. The sliding component according to claim 10 , wherein the dynamic pressure generation grooves and the other dynamic pressure generation grooves are radially separated from each other with a separation width larger than a radial width of the facing sliding surface formed in an annular shape.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 14, 2023
From: SUZUKI, HIROSHI
To: EAGLE INDUSTRY CO., LTD.
Reel/Frame 062694/0241 →
Priority Claims (1)
JP 2020-116360 · Jul 6, 2020 · national
Continuity (1)
Related Publication 20230258184A1 · Aug 17, 2023
Cited By (5)
US 12,188,516 US 12,276,338 US 12,473,946 US 12,723,656 US 12,736,138