Quantitative detection of combined cracks based on artificial neural network and eddy current testing signals

Author:

Wang Li1,Chen Zhenmao2

Affiliation:

1. , Xi’an University of Posts and Telecommunications, , China

2. , , Xi’an Jiaotong University, , China

Abstract

Quantitative nondestructive testing with enough precision are the basis for studying crack propagation behaviour and the residual life of structural component. Eddy current testing (ECT) is a fast nondestructive testing technique with many testing objects. As the common effect of each crack in combined cracks on ECT signals, quantitative detection of combined cracks is a challenge. In this paper, quantitative detection of combined cracks using features of ECT signals and an artificial neural network (ANN) method is proposed. Firstly, a model of combined cracks containing a long crack and a short vertical crack is used to approximately calculate two-dimensional ECT signals of crack. Secondly, correlation between the parameters of combined cracks and the features of the two-dimensional ECT signals are investigated by numerical simulation. Finally, the crack parameters are evaluated from the simulation signals of combined cracks and the measured signals of stress corrosion cracking using the proposed strategy. Numerical results verify the effectiveness of the proposed strategy.

Publisher

IOS Press

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,Electronic, Optical and Magnetic Materials

Reference12 articles.

1. Numerical investigation of the ability of eddy current testing to size surface breaking cracks;Yusa;Nondestructive Testing and Evaluation,2017

2. Quantitative evaluation of stress corrosion cracking based on crack conductivity model and intelligent algorithm from eddy current testing signals;Wang;Nondestrictuive Testing and Evaluation,2020

3. Impedance of a coil above a planar conductor with an arbitrary continuous conductivity depth profile;Theodoulidis;International Journal of Applied Electromagnetics & Mechanics,2019

4. Quantitative evaluation of electrical conductivity inside stress corrosion crack with electromagnetic NDE methods;Cai;Philosophical Transactions of The Royal Society, A Mathematical Physical and Engineering sciences,2020

5. Enhancement of crack reconstruction through inversion of eddy current testing signals with a new crack model and a deterministic optimization method;Zhao;Measurement Science and Technology,2022

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