IP Library › Granted Patent US 11,340,195
Granted Patent B2
US 11,340,195 · App. 16/572,598 · Granted May 24, 2022

Methods and systems for pipe wall thickness detection

Inventors: Shuangwen Liu (Jiaxing, CN); Lei Liu (San Ramon, CA)
G01N29/043G01B17/02G01K13/00G01N17/04G01N29/07G01N29/12G01N29/223G01N29/228G01N29/2437G01N29/2462G01N29/28G01N2291/011G01N2291/023G01N2291/02854G01N2291/102G01N2291/2698
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Quick Facts
Patent No.
US 11,340,195
App. No.
16/572,598
Granted
May 24, 2022
Kind
B2
Abstract

The present invention discloses ultrasonic nondestructive methods for pipe wall thickness measurement at high or low temperatures. An ultrasonic detection device comprises a first and a second ultrasonic waveguide. The waveguide length is selected according to the surface temperature of a pipe under inspection. A first piezoelectric plate causes generation of a plurality of ultrasonic excitation signals which is transmitted to the pipe through the first ultrasonic waveguide. The plurality of ultrasonic excitation signals has different group speeds when traveling along the first ultrasonic waveguide. The reflected ultrasonic wave signals are collected and transmitted to a second piezoelectric plate by the second ultrasonic waveguide. The pipe wall thickness is calculated using an ultrasonic wave signal which has the highest group speed. The first and second waveguides are arranged parallel and side by side. An isolation plate is disposed such that the first and second waveguides go through the plate perpendicularly.

Claims (22)

1. An ultrasonic detection device, comprising:

an ultrasonic transducer;

a first ultrasonic waveguide, the ultrasonic transducer causing generation of a plurality of ultrasonic wave signals which travel along the first ultrasonic waveguide at different speeds, the plurality of ultrasonic wave signals representing a plurality of guided wave modes, the first ultrasonic waveguide transmitting the plurality of ultrasonic wave signals to a wall of an object, wherein the plurality of ultrasonic wave signals travel through the wall of the object and are reflected by an inner surface of the wall;

an ultrasonic sensor; and

a second ultrasonic waveguide, the second ultrasonic waveguide receiving the plurality of ultrasonic wave signals reflected from the inner surface of the wall and transmitting the plurality of ultrasonic wave signals to the ultrasonic sensor, wherein the first and second ultrasonic waveguides are disposed side by side and separated by a predetermined distance, and wherein the first and second ultrasonic waveguides are configured such that the plurality of ultrasonic wave signals include a fastest ultrasonic wave signal and a second fastest ultrasonic wave signal, the fastest ultrasonic wave signal is faster than the second fastest ultrasonic wave signal by a predetermined value to allow stable detection of the fastest ultrasonic wave signal for determining thickness of the wall.

2. The device of claim 1 , wherein the first and second ultrasonic waveguides have a length that is selected according to a surface temperature of the object.

3. The device of claim 1 , wherein the first and second ultrasonic waveguides include a right circular cylinder, a semicircular cylinder, an oval cylinder, a square column, or a rectangular strip.

4. The device of claim 1 further comprises an isolation plate having predefined dimensions, wherein the first and second ultrasonic waveguides go through the isolation plate, and the isolation plate isolates high or low temperature at the wall from the ultrasonic transducer and the ultrasonic sensor to allow the ultrasonic transducer and the ultrasonic sensor to operate in normal operating temperature.

5. The device of claim 1 , wherein the ultrasonic transducer or ultrasonic sensor includes a piezoelectric plate.

6. The device of claim 1 further comprises a measuring unit for processing electric signals received from the ultrasonic sensor to determine the wall's thickness.

7. The device of claim 6 , wherein the measuring unit receives commands from a control center for setting parameters and starting detection operation and sends detection results to the control center.

8. The device of claim 1 further comprises at least one temperature sensor for measuring temperature at the wall.

9. The device of claim 1 further comprises means for attaching one end of the first ultrasonic waveguide to an outer surface of the wall and attaching one end of the second ultrasonic waveguide to the outer surface of the wall such that the first and second waveguides are perpendicularly contacting the outer surface of the wall.

10. The device of claim 9 , wherein metal sheets are inserted between the outer surface of the wall and the one ends of the first and second ultrasonic waveguides respectively to improve coupling efficiency of ultrasonic waves between the wall and the waveguides, and the metal sheets include a gold sheet, a silver sheet, a copper sheet, or an aluminum sheet.

11. A method for detecting thickness of a wall, comprising:

transmitting a plurality of ultrasonic wave signals excited by an ultrasonic transducer at different speeds along a first ultrasonic waveguide to the wall, the plurality of ultrasonic wave signals representing a plurality of guided wave modes; and

receiving the plurality of ultrasonic wave signals reflected from an inner surface of the wall and transmitting the reflected plurality of ultrasonic wave signals to an ultrasonic sensor along a second ultrasonic waveguide, the first and second ultrasonic waveguides disposed side by side and separated by a predetermined distance, wherein the first and second ultrasonic waveguides are configured such that the plurality of ultrasonic wave signals include a fastest ultrasonic wave signal and a second fastest ultrasonic wave signal, the fastest ultrasonic wave signal is faster than the second fastest ultrasonic wave signal by a predetermined value to allow stable detection of the fastest ultrasonic wave signal for determining the thickness of the wall.

12. The method of claim 11 , wherein the first and second ultrasonic waveguides have a length that is selected according to a surface temperature of the wall.

13. The method of claim 11 , wherein the first and second ultrasonic waveguides include a right circular cylinder, a semicircular cylinder, an oval cylinder, a square column, or a rectangular strip.

14. The method of claim 11 , wherein the ultrasonic transducer or ultrasonic sensor includes a piezoelectric plate.

15. The method of claim 11 further comprising using a measuring unit for processing electric signals received from the ultrasonic sensor to determine the wall's thickness.

16. The method of claim 15 , wherein the measuring unit receives commands from a control center for setting parameters and starting detection operation and sends detection results to the control center.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2024
From: ZHEJIANG FUTURE TECHNOLOGY INSTITUTE (JIAXING)
To: YANGTZE DELTA REGION INSTITUTE OF TSINGHUA UNIVERSITY, ZHEJIANG
Reel/Frame 068362/0337 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 29, 2024
From: LIU, SHUANGWEN; LIU, LEI
To: ZHEJIANG FUTURE TECHNOLOGY INSTITUTE (JIAXING)
Reel/Frame 067551/0957 →
Continuity (1)
Related Publication 20200300812A1 · Sep 24, 2020
Cited By (1)
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