Defect detection and imaging using electromagnetic acoustic transducer with butterfly coil

Author:

Wang Chaoqun1ORCID,Ma Jian1ORCID,Bai Xue1,Chen Jianwei1

Affiliation:

1. Laser Institute, Qilu University of Technology (Shandong Academy of Sciences) , 250104 Jinan, China

Abstract

Electromagnetic ultrasonic detection technology utilizes the electromagnetic coupling method to generate and receive ultrasonic waves without a couplant, which is suitable for rapid detection. However, the detection can be affected by the spatial distribution of the acoustic field and the polarization direction of the shear wave, which can result in suboptimal detection performance. The acoustic field directivity of the shear wave generated by the butterfly coil electromagnetic acoustic transducer was measured using the transmission method. The data indicate that the acoustic pressure amplitude of the shear wave is maximized along the axis of the acoustic field, thereby meeting the requirements of synthetic aperture focusing technique imaging. We used the reflection method to detect the through-hole defects and investigated the effect of shear wave polarization direction. By comparing the experimental data and imaging results, it can be concluded that higher echo amplitudes are obtained when the polarization direction of the shear wave is perpendicular to the axis of the through-hole defects. Based on the explosive reflection model, the frequency domain phase shift migration (PSM) method converts the time-domain signal to the frequency domain for processing and uses a phase-shift factor for layer-by-layer imaging. We used the PSM method to process the experimental data, which not only produced high-resolution images but also had a high computational speed.

Funder

Natural Science Foundation of Shandong Province

The National Natural Science Foundation of China

The Education Department of Shandong Province

Qilu University of Technology

Science and Technology Small and Medium Enterprises Innovation Capacity Improvement Project of Shandong Province, China

Publisher

AIP Publishing

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