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Transmission of ultrasonic guided wave for damage detection in welded steel plate structures

  • Liu, Xinpei (School of Civil Engineering, Faculty of Engineering, The University of Sydney) ;
  • Uy, Brian (School of Civil Engineering, Faculty of Engineering, The University of Sydney) ;
  • Mukherjee, Abhijit (School of Civil and Mechanical Engineering, Curtin University)
  • Received : 2019.04.30
  • Accepted : 2019.10.18
  • Published : 2019.11.10

Abstract

The ultrasonic guided wave-based technique has become one of the most promising methods in non-destructive evaluation and structural health monitoring, because of its advantages of large area inspection, evaluating inaccessible areas on the structure and high sensitivity to small damage. To further advance the development of damage detection technologies using ultrasonic guided waves for the inspection of welded components in structures, the transmission characteristics of the ultrasonic guided waves propagating through welded joints with various types of defects or damage in steel plates are studied and presented in this paper. A three-dimensional (3D) finite element (FE) model considering the different material properties of the mild steel, high strength steel and austenitic stainless steel plates and their corresponding welded joints as well as the interaction condition of the steel plate and welded joint, is developed. The FE model is validated against analytical solutions and experimental results reported in the literature and is demonstrated to be capable of providing a reliable prediction on the features of ultrasonic guided wave propagating through steel plates with welded joints and interacting with defects. Mode conversion and scattering analysis of guided waves transmitted through the different types of weld defects in steel plates are performed by using the validated FE model. Parametric studies are undertaken to elucidate the effects of several basic parameters for various types of weld defects on the transmission performance of guided waves. The findings of this research can provide a better understanding of the transmission behaviour of ultrasonic guided waves propagating through welded joints with defects. The method could be used for improving the performance of guided wave damage detection methods.

Keywords

Acknowledgement

Supported by : Australia Research Council

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