Abstract

Eddy current testing (ECT) has been employed as a traditional non-destructive testing and evaluation (NDT&E) tool for many years. It has developed from single frequency to multiple frequencies, and eventually to pulsed and swept-frequency excitation. Recent progression of wireless power transfer (WPT) and flexible printed devices open opportunities to address challenges of defect detection and reconstruction under complex geometric situations. In this paper, a transmitter–receiver (Tx–Rx) flexible printed coil (FPC) array that uses the WPT approach featuring dual resonance responses for the first time has been proposed. The dual resonance responses can provide multiple parameters of samples, such as defect characteristics, lift-offs and material properties, while the flexible coil array allows area mapping of complex structures. To validate the proposed approach, experimental investigations of a single excitation coil with multiple receiving coils using the WPT principle were conducted on a curved pipe surface with a natural dent defect. The FPC array has one single excitation coil and 16 receiving (Rx) coils, which are used to measure the dent by using 21 C-scan points on the dedicated dent sample. The experimental data were then used for training and evaluation of dual resonance responses in terms of multiple feature extraction, selection and fusion for quantitative NDE. Four features, which include resonant magnitudes and principal components of the two resonant areas, were investigated for mapping and reconstructing the defective dent through correlation analysis for feature selection and feature fusion by deep learning. It shows that deep learning-based multiple feature fusion has outstanding performance for 3D defect reconstruction of WPT-based FPC-ECT.This article is part of the theme issue ‘Advanced electromagnetic non-destructive evaluation and smart monitoring’.

Highlights

  • The eddy current testing (ECT) has been developed for various non-destructive testing and evaluation (NDT&E) applications, such as defect detection, thickness, coating and conductivity measurements for material identification; heat damage detection; case depth determination and heat treatment monitoring

  • To quantitatively evaluate the fused features’ capability for mapping the defect areas, the R2 value, which is the square of the correlation between the defect parameters and the fused features, and the mean square error (MSE) are used for different feature sets

  • wireless power transfer (WPT) and flexible coil array were integrated for the ECT of a pipeline sample with a dented area due to metal loss and corrosion

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Summary

Introduction

The eddy current testing (ECT) has been developed for various non-destructive testing and evaluation (NDT&E) applications, such as defect detection, thickness, coating and conductivity measurements for material identification; heat damage detection; case depth determination and heat treatment monitoring. Miniaturizing the FPC array provides micro-spatial resolution and lightweight capabilities for NDT&E applications for detecting and quantifying micro-defects in irregular metal structures [6,7,18] For these reasons, flexible miniaturized coil arrays are used in our proposed ECT system. The FPC array has been designed for curved surface structure inspection because of its potential advantages, such as good spatial resolution, high adaptability to different geometries and high efficiency with much higher sensitivity than the traditional flexible printed circuit [18]. The WPT technology has maximum energy transfer and a constant efficiency over a certain range [25,26], while the FPC array is adaptable to complex geometry for area mapping This proposed WPT-based ECT differs from other ECT architecture due to its multiple resonance frequencies, each of which contains distinct information of possible defect signature. The self-impedance of each port includes the effect of the nearby metallic sample as seen in figure 1:

Is Rs sample
PC difference
Findings
Conclusion and future work
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