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May 8, 2026The Journal of Strain Analysis for Engineering Design0 citations

Direct identification of Poisson’s ratio in conventional and auxetic materials using FEM-based modal inversion

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MAMustafa AbdullahKPKoushik V. PrasadAKA. Karthikeyan

Key Points

  • To develop a method for direct measurement of Poisson’s ratio using finite-element-based modal inversion from vibration data.
  • Used impulse excitation of vibration measurements on point-supported square plates.
  • Performed finite-element eigenfrequency analyses considering the effects of shear deformation and rotary inertia.
  • Created a calibration map linking frequency ratios to Poisson’s ratios for a broad elastic range.
  • Validation experiments showed Poisson’s ratios from this method closely matched ultrasonic measurements.
  • The framework accurately accounts for negative Poisson’s ratios in auxetic materials.
  • Higher sensitivity of frequency ratios to Poisson’s ratio was indicated by modal strain-energy distribution analysis.

Abstract

This study introduces a finite-element-based modal inversion approach for determining Poisson’s ratio directly from impulse excitation of vibration (IET) measurements. Rather than estimating Poisson’s ratio indirectly through Young’s and shear moduli, or relying on closed-form plate solutions that assume ideal boundary conditions, the method uses the ratio between torsional and flexural resonance frequencies measured on a point-supported square plate. Finite-element eigenfrequency analyses are carried out with explicit representation of wire supports and with transverse shear deformation, rotary inertia, and thickness effects taken into account. These simulations are used to build a calibration map that relates the measured frequency ratio to Poisson’s ratio across a broad elastic range, extending into negative values. A Gaussian Process surrogate is then employed to obtain a smooth, strictly monotonic forward relation, which allows stable numerical inversion and provides a basis for uncertainty estimation. Validation experiments on metals, ceramics, and glasses show that the Poisson’s ratios obtained using this framework are in close agreement with independent ultrasonic measurements. Notably, the method also captures negative Poisson’s ratio behavior in an auxetic metamaterial specimen, with all inferred values falling within the auxetic regime. A closer inspection of the modal strain-energy distributions indicates that the elevated shear-energy contribution of the torsional mode is responsible for the pronounced sensitivity of the frequency ratio to Poisson’s ratio. Overall, the results point to a practical, robust, and modulus-independent resonance-based route for evaluating Poisson’s ratio in both conventional solids and architected auxetic materials under realistic testing conditions.

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Cite This Study

Abdullah et al. (2026) studied this question.

synapsesocial.com/papers/69fd7fa1bfa21ec5bbf08368https://doi.org/10.1177/03093247261432298
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