IP Library Granted Patent US 10,690,115
Granted Patent B2
US 10,690,115 · App. 15/239,543 · Granted Jun 23, 2020

Sliding component and wear detection system using the same

Inventor: Tatsuhiko Murakami (Kitasaku-gun, JP)
Assignee: MINEBEA MITSUMI INC.
F03D7/0204F03D13/20F03D17/00F03D80/70F16C17/04F16C17/246F16C33/26F16C33/201F16C41/001F16C2202/32F16C2300/14F16C2360/31G01M13/04Y02E10/722Y02E10/726
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Quick Facts
Patent No.
US 10,690,115
App. No.
15/239,543
Granted
Jun 23, 2020
Kind
B2
Abstract

There is provided a sliding component including, a first sliding part which is non-conductive and which has a sliding surface; and a conductive member provided in the first sliding part or provided on a side opposite to the sliding surface of the first sliding part.

Claims (25)

1. A sliding component comprising:

a first sliding part which is non-conductive and which has a sliding surface;

a second sliding part on the side opposite to the sliding surface of the first sliding part; and

a conductive member positioned between the first sliding part and the second sliding part;

wherein a material of the second sliding part is different from a material of the first sliding part, the material of the second sliding part having a hardness higher than a hardness of the material of the first sliding part.

2. The sliding component according to claim 1 , wherein the first sliding part is made of self-lubricating resin.

3. The sliding component according to claim 2 , wherein the self-lubricating resin contains polytetrafluoroethylene.

4. The sliding component according to claim 1 , wherein the conductive member extends in a plane and the sliding surface of the first sliding part is substantially parallel to the plane in which the conductive member extends.

5. The sliding component according to claim 1 , further comprising a base being provided on a side opposite to the sliding surface of the first sliding part and supporting the first sliding part and the conductive member.

6. The sliding component according to claim 1 , wherein the conductive member includes a first conductive part and a second conductive part which are positioned on a same plane and are not electrically connected to each other.

7. The sliding component according to claim 6 , wherein each of the first conductive part and the second conductive part includes a plurality of arc-like line parts having mutually different radii and a connecting line part connecting the plurality of arc-like line parts with each other.

8. The sliding component according to claim 1 , wherein the conductive member is a single continuous conductive wire.

9. The sliding component according to claim 8 , wherein the conductive wire extends so as to make arcs having mutually different radii.

10. The sliding component according to claim 1 , wherein the conductive member is a flat plate or a film.

11. A wear detection system configured to detect wear of a sliding component caused by friction between the sliding component and a conductive object, the system comprising: the sliding component as defined in claim 6 ; and a detector electrically connected to the first conductive part and the second conductive part of the sliding component and configured to detect an electrical connection between the first conductive part and the second conductive part.

12. A wear detection system configured to detect wear of a sliding component caused by friction between the sliding component and a non-conductive object, the system comprising: the sliding component as defined in claim 8 ; and a detector electrically connected to the conductive wire of the sliding component and configured to detect a cutoff of the conductive wire.

13. A wear detection system configured to detect wear of a sliding component caused by friction between the sliding component and a conductive object, the system comprising: the sliding component as defined in claim 10 ; and a detector electrically connected to the conductive member of the sliding component and the conductive object and configured to detect an electrical communication between the conductive member and the conductive object.

14. The wear detection system according to claim 11 , further comprising: a transmitter connected to the detector; and a receiver configured to receive a signal transmitted from the transmitter.

15. The wear detection system according to claim 12 , further comprising: a transmitter connected to the detector; and a receiver configured to receive a signal transmitted from the transmitter.

16. The wear detection system according to claim 13 , further comprising: a transmitter connected to the detector; and a receiver configured to receive a signal transmitted from the transmitter.

17. A yaw system configured to adjust a direction of a nacelle of a wind power generator, the yaw system comprising: a rotating body mounted to the nacelle; and the sliding component as defined in claim 1 which is configured to slidably support the rotating body; and a brake configured to restrain the rotating body.

18. A yaw system configured to adjust a direction of a nacelle of a wind power generator, the yaw system comprising: a rotating body mounted to the nacelle; and the wear detection system as defined in claim 11 .

19. A yaw system configured to adjust a direction of a nacelle of a wind power generator, the yaw system comprising: a rotating body mounted to the nacelle; and the wear detection system as defined in claim 12 .

20. A yaw system configured to adjust a direction of a nacelle of a wind power generator, the yaw system comprising: a rotating body mounted to the nacelle; and the wear detection system as defined in claim 13 .

21. The wind power generator comprising the yaw system as defined in claim 17 .

Assignments (2)
CHANGE OF NAME Recorded Sep 25, 2017
From: MINEBEA CO., LTD.
To: MINEBEA MITSUMI INC.
Reel/Frame 043936/0727 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 17, 2016
From: MURAKAMI, TATSUHIKO
To: MINEBEA CO., LTD.
Reel/Frame 039469/0705 →
Priority Claims (1)
JP 2015-163623 · Aug 21, 2015 · national
Continuity (1)
Related Publication 20170051721A1 · Feb 23, 2017