Efficient Guided Wave Modelling for Tomographic Corrosion Mapping via One-Way Wavefield Extrapolation.

Sensors (Basel)

Laboratory of Medical Imaging, Department of Imaging Physics, Delft University of Technology, 2628 CJ Delft, The Netherlands.

Published: June 2024

AI Article Synopsis

  • - The study focuses on improving the accuracy of mapping corrosion depths along pipelines using guided-wave tomography, emphasizing the importance of a precise forward model and inversion techniques for defect sizing.
  • - A new recursive extrapolation scheme is introduced, utilizing precomputed operators for fast modeling across various wavenumbers, which addresses challenges in representing complex velocity models and diffraction phenomena.
  • - Validation of the acoustic extrapolation method is done through numerical studies and comparison with experimental data, demonstrating effectiveness with multiple wave modes and helical paths in detecting defects.

Article Abstract

Mapping corrosion depths along pipeline sections using guided-wave-based tomographic methods is a challenging task. Accurate defect sizing depends heavily on the precision of the forward model in guided wave tomography. This model is fitted to measured data using inversion techniques. This study evaluates the effectiveness of a recursive extrapolation scheme for tomography applications and full waveform inversion. It employs a table-driven approach, with precomputed extrapolation operators stored across a spectrum of wavenumbers. This enables fast modelling for extensive pipe sections, approaching the speed of ray tracing while accurately handling complex velocity models within the full frequency band. This ensures an accurate representation of diffraction phenomena. The study examines the assumptions underlying the extrapolation approach, namely, the negligible reflection and conversion of modes at defects. In our tomography approach, we intend to use multiple wave modes-A0, S0, and SH1-and helical paths. The acoustic extrapolation method is validated through numerical studies for different wave modes, solving the 3D elastodynamic wave equation. Comparison with an experimentally measured single-mode wavefield from an aluminium plate with an artificial defect reveals good agreement.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11207329PMC
http://dx.doi.org/10.3390/s24123750DOI Listing

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