IP Library Granted Patent US 10,066,931
Granted Patent B2
US 10,066,931 · App. 15/597,358 · Granted Sep 4, 2018

Optical inner-surface measurement device

Inventors: Hiroshi Yamazaki (Kuroishi, JP); Eri Fukushima (Kuroishi, JP); Kazumi Yanagiura (Kuroishi, JP); Takafumi Asada (Kuroishi, JP)
Assignee: Adamant Namiki Precision Jewel Co., Ltd.
G01B11/2441G01B11/12
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,066,931
App. No.
15/597,358
Granted
Sep 4, 2018
Kind
B2
Abstract

An optical inner-surface measurement device includes: an optical fiber included inside a tube, the optical fiber being configured to be inserted into a hole of an inspection object; at least two optical-path converting elements disposed in a forward-end of the optical fiber; and a motor for rotationally driving at least one of the at least two optical-path converting elements. The at least two optical-path converting elements emit a light beam, guided thereto through the optical fiber, to an inner peripheral surface of the hole of the inspection object three-dimensionally in a circumferential direction and an axial direction of the hole.

Claims (47)

1. An optical inner-surface measurement device comprising:

an optical fiber included inside a tube, the optical fiber being configured to be inserted into a hole of an inspection object;

at least two optical-path converting elements disposed in a forward-end of the optical fiber, the at least two optical-path converting elements emitting a light beam, guided thereto through the optical fiber, to an inner peripheral surface of the hole of the inspection object three-dimensionally in a circumferential direction and an axial direction of the hole;

a motor for rotationally driving at least one of the at least two optical-path converting elements;

an optical interference analyzer for receiving reflected light via the optical fiber and generating original waveform data regarding the inner peripheral surface, the reflected light being obtained by the light beam emitted three-dimensionally being reflected by the inner peripheral surface; and

a computer for correcting the original waveform data,

wherein the computer calculates an angle of inclination of the inspection object, and corrects the original waveform data based on a result of the calculation of the angle of the inclination.

2. The optical inner-surface measurement device according to claim 1 , wherein

the computer calculates a roundness of the inner peripheral surface by correcting the original waveform data.

3. The optical inner-surface measurement device according to claim 1 , further comprising

a displacement detector for measuring an amount of rotational run out of at least one of the at least two optical-path converting elements that is rotating, wherein

the computer corrects the original waveform data based on the amount of rotational run out.

4. An optical inner-surface measurement device comprising:

an optical fiber included inside a tube, the optical fiber being configured to be inserted into a hole of an inspection object;

at least two optical-path converting elements disposed in a forward-end of the optical fiber, the at least two optical-path converting elements emitting a light beam, guided thereto through the optical fiber, to an inner peripheral surface of the hole of the inspection object three-dimensionally in a circumferential direction and an axial direction of the hole;

a motor for rotationally driving at least one of the at least two optical-path converting elements;

an optical interference analyzer for receiving reflected light via the optical fiber and generating original waveform data regarding the inner peripheral surface, the reflected light being obtained by the light beam emitted three-dimensionally being reflected by the inner peripheral surface;

a displacement detector for measuring an amount of rotational run out of at least one of the at least two optical-path converting elements that is rotating, the displacement detector including at least one sensor facing an outer peripheral surface of at least one of the at least two optical-path converting elements that is rotating; and

a computer for correcting the original waveform data based on the amount of rotational run out.

5. The optical inner-surface measurement device according to claim 3 , wherein

the computer generates data indicative of a shape of the inner peripheral surface of the inspection object by correcting the original waveform data based on the amount of rotational run out.

6. An optical inner-surface measurement device comprising:

an optical fiber included inside a tube, the optical fiber being configured to be inserted into a hole of an inspection object;

at least two optical-path converting elements disposed in a forward-end of the optical fiber, the at least two optical-path converting elements emitting a light beam, guided thereto through the optical fiber, to an inner peripheral surface of the hole of the inspection object three-dimensionally in a circumferential direction and an axial direction of the hole;

a motor for rotationally driving at least one of the at least two optical-path converting elements;

an optical interference analyzer for receiving reflected light via the optical fiber and generating original waveform data regarding the inner peripheral surface, the reflected light being obtained by the light beam emitted three-dimensionally being reflected by the inner peripheral surface;

a displacement detector for measuring an amount of rotational run out of at least one of the at least two optical-path converting elements that is rotating, the displacement detector being configured to detect, as the amount of rotational run out, a difference between reference data of a shape of an inner peripheral surface or an outer peripheral surface of the tube or a light-transmitting member provided integrally with the tube and original waveform data regarding the inner peripheral surface or the outer peripheral surface, the original waveform data being obtained while the motor is rotating; and

a computer for correcting the original waveform data based on the amount of rotational run out.

7. The optical inner-surface measurement device according to claim 1 , wherein

the optical fiber includes a rotation-side optical fiber,

the motor includes a first motor being disposed in a forward-end of the rotation-side optical fiber and including a rotational shaft that is hollow,

the at least two optical-path converting elements include a first optical-path converting element, the first optical-path converting element being provided in a forward-end of the rotational shaft such that the first optical-path converting element is rotatable integrally with the rotational shaft, and

at least part of the forward-end of the rotation-side optical fiber is inserted into a hollow hole of the rotational shaft such that the at least part of the forward-end of the rotation-side optical fiber is rotatable relative to the rotational shaft.

8. An optical inner-surface measurement device comprising:

an optical fiber included inside a tube, the optical fiber being configured to be inserted into a hole of an inspection object;

at least two optical-path converting elements disposed in a forward-end of the optical fiber, the at least two optical-path converting elements emitting a light beam, guided thereto through the optical fiber, to an inner peripheral surface of the hole of the inspection object three-dimensionally in a circumferential direction and an axial direction of the hole; and

a motor for rotationally driving at least one of the at least two optical-path converting elements,

wherein

the optical fiber includes a rotation-side optical fiber,

the motor includes a first motor being disposed in a forward-end of the rotation-side optical fiber and including a rotational shaft that is hollow,

the at least two optical-path converting elements include a first optical-path converting element, the first optical-path converting element being provided in a forward-end of the rotational shaft such that the first optical-path converting element is rotatable integrally with the rotational shaft,

at least part of the forward-end of the rotation-side optical fiber is inserted into a hollow hole of the rotational shaft such that the at least part of the forward-end of the rotation-side optical fiber is rotatable relative to the rotational shaft,

the motor further includes a second motor disposed behind the first motor,

the optical fiber includes a stationary-side optical fiber disposed behind the second motor and optically connected to the rotation-side optical fiber via a fixture,

the second motor includes a rotational shaft that is hollow,

at least part of a rear portion of the rotation-side optical fiber is fixed to a hollow hole of the rotational shaft of the second motor, and

the at least two optical-path converting elements include a second optical-path converting element attached to the forward-end of the rotation-side optical fiber.

Assignments (2)
MERGER AND CHANGE OF NAME Recorded May 14, 2018
From: ADAMANT CO., LTD.; NAMIKI SEIMITSU HOUSEKI KABUSHIKI KAISHA; ADAMANT NAMIKI PRECISION JEWEL CO., LTD.
To: ADAMANT NAMIKI PRECISION JEWEL CO., LTD.
Reel/Frame 045792/0904 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 17, 2017
From: YAMAZAKI, HIROSHI; FUKUSHIMA, ERI; YANAGIURA, KAZUMI; ASADA, TAKAFUMI
To: NAMIKI SEIMITSU HOUSEKI KABUSHIKI KAISHA
Reel/Frame 042409/0763 →
Priority Claims (1)
JP 2014-238107 · Nov 25, 2014 · national
Continuity (2)
Continuation PCTJP2015082088 · Nov 16, 2015
Related Publication 20170248411A1 · Aug 31, 2017