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Nondestructive Testing And Evaluation· 2026Q2

A practical non-contact layer thickness measurement method for two-layer clad plates using EMAR

Yi Zhang, Zhuoting Liu, Sanhuai Cao, Ke Xu et al.

Short summary

A new electromagnetic acoustic resonance (EMAR) method accurately measures individual layer thicknesses in two-layer clad plates, validated on 316SS/Al and Cu/Al samples with mean resonance frequency deviations below 0.018 MHz.

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Key points

  • Developed an EMAR-based method for measuring individual layer thicknesses in two-layer clad plates.
  • Validated a two-layer acoustic resonance model experimentally using EMAT frequency-sweep measurements.
  • Created an inversion algorithm to determine layer thicknesses from resonance frequencies, material properties, and shear-wave velocities.
  • Achieved accurate layer-thickness inversion for 316SS/Al and Cu/Al clad plates with mean resonance frequency deviations below 0.018 MHz.
  • Provided a web-based computational tool to address non-uniqueness in thickness calculations.

AI-generated from the title and abstract; the full text is not read.

Abstract

Accurate determination of individual layer thicknesses in multilayer clad plates is essential for quality control and structural integrity assessment. This study proposes an electromagnetic acoustic resonance (EMAR)-based method for layer-thickness measurement of two-layer clad plates. A two-layer acoustic resonance model was validated experimentally using EMAT frequency-sweep measurements. Based on the model, an inversion algorithm was developed to determine individual layer thicknesses from measured resonance frequencies, given the material densities, total thickness, and shear-wave velocities. To address the non-uniqueness inherent in the transcendental resonance equation for layer thickness measurement, a method was developed to identify resonance frequencies yielding unique thickness solutions, together with a web-based computational tool (LayerThicknessCalculator-EMAT-https://wuligongshideg.github.io/clad-calculator-web/). Experiments were conducted on 316SS/Al, Cu/Al, and 304SS/Q235B clad plates, representing high, moderate, and nearly zero acoustic-impedance mismatches, respectively. The mean deviations between predicted and measured resonance frequencies were 0.014, 0.006, and 0.018 MHz, respectively. Accurate layer-thickness inversion was achieved for 316SS/Al and Cu/Al. For 304SS/Q235B, direct inversion was impractical because of the extremely high frequency resolution required; however, the mean resonance-frequency shift across multiple modes provided an effective indicator of layer-thickness variations.

The authors' abstract, as published at the source. Nondestructive Testing And Evaluation, 2026 · DOI ↗

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Field: Mechanics of Materials

Mechanics of MaterialsEngineering