Electromagnetic Acoustic Detection of Pipe Defects Hidden above T-Type Support Structures with Circumferential Shear Horizontal Guided Wave
Abstract
:1. Introduction
2. Excitation Principle of PPM EMAT
3. Finite Element Simulation
3.1. Model Building
3.2. Simulation of the Support Structure
4. Experimental System
5. Results and Discussion
5.1. Influence of Pipeline Support Structure on SH Guided Wave
5.2. The Influence of Support Welding Quality on SH Wave
5.3. Study of Defects of Different Length Sizes
5.4. Study of Defects at Different Depths
6. Conclusions
- (1)
- By analyzing the cloud image of the pipeline, the results show that when the pipeline defect is above the T-type support structure, the amplitude of the reflected echo at the support increases by 18.3% compared with that when the pipeline has no defect, so the reflected echo of the support contains defect signals. Therefore, this method can effectively detect the defect.
- (2)
- The simulation results show that the different widths of the support structure have different effects on the guided wave signal. The results indicate that the smaller the width of the support plate, the greater the degree of signal superposition, and the more difficult it is to identify defect signals. The experimental and simulation results show that the reflection amplitude of pipes with good welding quality is large, and defect detection is more difficult than that of pipes with poor welding quality. In addition, the pipeline defect signal is proportional to the length and depth in the defect. With the decrease in defect size and depth, the detection sensitivity also decreases.
- (3)
- This method can effectively detect a 5 mm × 1 mm (length × depth) non-through crack hidden above the support structure. These results provide the basis for the research on the detection of large defects in the pipeline with the existence of the T-type support structure. However, when the defect size is smaller or the depth is smaller, the influence of the weld structure impedes the detection of the defect. Future study needs to focus on optimizing for small defect detection.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Weld Structure | Complete Weld | Incomplete Weld |
---|---|---|
Simulated signal amplitude | 0.195 | 0.136 |
Experimental signal amplitude | 0.514 | 0.384 |
Crack Defect Size (mm) | 4 | 6 | 8 |
---|---|---|---|
Simulated defect amplitude | 0.617 | 0.812 | 1.000 |
Experimental defect amplitude | 0.641 | 0.790 | 1.000 |
Defect Depth (mm) | 1 | 2 | 3 |
---|---|---|---|
Simulated defect amplitude | 0.586 | 0.790 | 1.000 |
Experimental defect amplitude | 0.641 | 0.834 | 1.000 |
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Zhang, X.; Zhou, J.; Hu, Y.; Liu, Y.; Shen, X. Electromagnetic Acoustic Detection of Pipe Defects Hidden above T-Type Support Structures with Circumferential Shear Horizontal Guided Wave. Micromachines 2024, 15, 550. https://doi.org/10.3390/mi15040550
Zhang X, Zhou J, Hu Y, Liu Y, Shen X. Electromagnetic Acoustic Detection of Pipe Defects Hidden above T-Type Support Structures with Circumferential Shear Horizontal Guided Wave. Micromachines. 2024; 15(4):550. https://doi.org/10.3390/mi15040550
Chicago/Turabian StyleZhang, Xingjun, Jinjie Zhou, Yang Hu, Yao Liu, and Xingquan Shen. 2024. "Electromagnetic Acoustic Detection of Pipe Defects Hidden above T-Type Support Structures with Circumferential Shear Horizontal Guided Wave" Micromachines 15, no. 4: 550. https://doi.org/10.3390/mi15040550
APA StyleZhang, X., Zhou, J., Hu, Y., Liu, Y., & Shen, X. (2024). Electromagnetic Acoustic Detection of Pipe Defects Hidden above T-Type Support Structures with Circumferential Shear Horizontal Guided Wave. Micromachines, 15(4), 550. https://doi.org/10.3390/mi15040550