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May 16, 2026Acoustics0 citationsOpen Access

Surrogate-Based Uncertainty Quantification for Coupled Structural–Acoustic Problems

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YKYounes KoulouHRHakima ReddadNHNorelislam El Hami

Key Points

  • The aim is to develop a surrogate-based uncertainty quantification framework for structural-acoustic systems with variable materials and geometries.
  • Integrated finite element method with metamodeling techniques: quadratic response surface and kriging.
  • Conducted Monte Carlo simulations to analyze the probabilistic behavior of acoustic responses.
  • Validated surrogate models using cross-validation and prediction error metrics.
  • Kriging metamodel showed a relative maximum error of 4.125 × 10−7, providing superior predictive accuracy.
  • Monte Carlo simulations using the Kriging surrogate reduced computational cost by over six orders of magnitude compared to direct FEM-based simulations.
  • Validation was performed on a rectangular cavity with flexible aluminum plates, confirming the efficiency and accuracy of the framework.

Abstract

This paper presents a surrogate-based uncertainty quantification (UQ) framework for coupled structural–acoustic systems subject to material and geometric variability. The proposed methodology integrates the Finite Element Method (FEM) with two metamodeling techniques—the Quadratic Response Surface (QRS) and Kriging—and Monte Carlo Simulations (MCS), to efficiently characterize the probabilistic behavior of the acoustic response. Two accuracy metrics (cross-validation error and prediction error) are used to validate the surrogate models. Numerical experiments demonstrate that the Kriging metamodel trained with 30 Latin Hypercube Sampling (LHS) points achieves superior predictive accuracy, with a Relative Maximum Error of 4.125 × 10−7. Monte Carlo Simulations conducted via the Kriging surrogate reduce the computational cost by more than six orders of magnitude compared to direct FEM-based MCS, while maintaining high accuracy. The proposed framework is validated on a rectangular cavity coupled with two flexible aluminum plates, and provides an efficient and accurate tool for vibro-acoustic UQ in complex engineering systems.

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Cite This Study

Koulou et al. (2026) studied this question.

synapsesocial.com/papers/6a080b27a487c87a6a40d464https://doi.org/10.3390/acoustics8020031
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