NURBS-based mixed triangular-quadrilateral meshes and Kirchhoff approximation method for acoustic scattering analysis of underwater targets

This paper introduces a novel computational framework for the efficient simulation of high-frequency acoustic scattering from underwater targets. The framework utilizes NURBS-based geometry representation and mixed triangular-quadrilateral mesh generation, enabling automated and parameterized discretization of complex surfaces. By integrating the Kirchhoff approximation with the planar element method (PEM), the model facilitates rapid prediction of target strength over a wide frequency range. Validation studies on simple geometries, such as a rigid sphere and a prolate spheroid, demonstrate excellent agreement with analytical solutions. Furthermore, the method is applied to realistic submarine models (the BeTSSi model 3 and a scaled BeTSSi model), highlighting its ability to handle geometrically intricate targets. The accuracy of the BeTSSi model 3 is validated against other numerical methods, while the scaled BeTSSi model is verified through experimental testing. These results indicate that the proposed framework achieves high computational efficiency and accuracy, making it well-suited for target characterization and classification in underwater acoustic applications.

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Publication Details

Journal
Engineering Analysis with Boundary Elements
Published
2026-09-15
DOI
https://doi.org/10.1016/j.enganabound.2026.106992
Primary Topic
Underwater Acoustics Research
Type
article
Field-Weighted Citation Impact
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article

NURBS-based mixed triangular-quadrilateral meshes and Kirchhoff approximation method for acoustic scattering analysis of underwater targets

Yaqiang Xue, Kaiqi Zhao, Bin Wang, Jun Fan et al.
Engineering Analysis with Boundary Elements
Underwater Acoustics Research
article

NURBS-based mixed triangular-quadrilateral meshes and Kirchhoff approximation method for acoustic scattering analysis of underwater targets

Yaqiang Xue, Kaiqi Zhao, Bin Wang, Jun Fan, Zilong Peng
article en

Abstract

This paper introduces a novel computational framework for the efficient simulation of high-frequency acoustic scattering from underwater targets. The framework utilizes NURBS-based geometry representation and mixed triangular-quadrilateral mesh generation, enabling automated and parameterized discretization of complex surfaces. By integrating the Kirchhoff approximation with the planar element method (PEM), the model facilitates rapid prediction of target strength over a wide frequency range. Validation studies on simple geometries, such as a rigid sphere and a prolate spheroid, demonstrate excellent agreement with analytical solutions. Furthermore, the method is applied to realistic submarine models (the BeTSSi model 3 and a scaled BeTSSi model), highlighting its ability to handle geometrically intricate targets. The accuracy of the BeTSSi model 3 is validated against other numerical methods, while the scaled BeTSSi model is verified through experimental testing. These results indicate that the proposed framework achieves high computational efficiency and accuracy, making it well-suited for target characterization and classification in underwater acoustic applications.

Engineering Analysis with Boundary ElementsVol. 193
Jiangsu University of Science and Technology (CN), Shanghai Ocean University (CN)
Life below water
Openalex Percentile: Top 14%
Underwater Acoustics Research
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NURBS-based mixed triangular-quadrilateral meshes and Kirchhoff approximation method for acoustic scattering analysis of underwater targets — Yaqiang Xue, Kaiqi Zhao, et al. · Engineering Analysis with Boundary Elements (2026) | TGRS Research Map | TGRS