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RETRACTED: Thiyagarajan, J.S. Non-Destructive Testing Mechanism for Pre-Stressed Steel Wire Using Acoustic Emission Monitoring. <i>Materials</i> 2020, <i>13,</i> 5029.

Materials (Basel, Switzerland)·2025
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RETRACTED: Non-Destructive Testing Mechanism for Pre-Stressed Steel Wire Using Acoustic Emission Monitoring.

Jothi Saravanan Thiyagarajan1

  • 1School of Infrastructure, Indian Institute of Technology Bhubaneswar, Argul-Jatni Rd, Kansapada, Odisha 752050, India.

Materials (Basel, Switzerland)
|November 11, 2020
PubMed
Summary

This study investigates guided ultrasonic wave propagation in pre-stressed steel wires for acoustic emission monitoring. Initial tensile stress linearly affects wave energy velocity and attenuation, identifying specific modes suitable for structural health monitoring.

Keywords:
acoustic emissiondamped waveguidepre-stress loadsemi-analytical finite element methodsteel wireultrasonic guided wave propagation

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Area of Science:

  • Materials Science
  • Structural Health Monitoring
  • Non-Destructive Testing

Background:

  • Acoustic emission (AE) monitoring is crucial for structural health assessment.
  • Understanding wave propagation in pre-stressed viscoelastic materials is vital for accurate AE signal interpretation.
  • Existing methods often overlook the impact of initial stress on wave dynamics.

Purpose of the Study:

  • To analyze guided ultrasonic wave propagation in axisymmetric pre-stressed viscoelastic waveguides.
  • To investigate the influence of material damping and initial tension on acoustic emission signal characteristics.
  • To propose a non-destructive testing mechanism for pre-stressed steel wire using AE monitoring.

Main Methods:

  • Utilized the semi-analytical finite element (SAFE) method for numerical investigation.
  • Modeled a single high-strength steel wire under various initial stress conditions.
  • Analyzed both undamped and damped waveguide scenarios in cylindrical coordinates.

Main Results:

  • Initial tensile stress was found to linearly influence energy velocity and attenuation factors of most modal waves above the cut-off frequency.
  • Certain high-frequency longitudinal wave modes exhibit low attenuation and minimal surface vibration, indicating suitability for AE monitoring.
  • Pre-stress effects on dispersion characteristics were clarified in damped waveguides.

Conclusions:

  • The study provides a comprehensive understanding of guided ultrasonic wave behavior in pre-stressed steel wires.
  • Identified specific wave modes with potential for effective AE-based structural health monitoring.
  • Proposed a novel non-destructive testing approach for assessing the integrity of pre-stressed steel structures.