Curve resampling based high-quality high-order unstructured quadrilateral mesh generation
Yongjia Weng, Lufeng Liu, Zhonggui Chen, Xuan Zhou, Juan Cao

TL;DR
This paper introduces a novel high-order quadrilateral mesh generation method that uses geometric error-bounded curve reconstruction to improve mesh quality, preserve features, and enhance efficiency for complex geometries.
Contribution
It presents an indirect, optimization-based curve reconstruction approach that reduces computational complexity and maintains high-quality, feature-preserving high-order meshes.
Findings
Efficiently generates high-quality high-order quadrilateral meshes.
Preserves boundary and interface geometric features.
Improves numerical stability in complex geometries.
Abstract
High-order quadrilateral meshes offer superior accuracy and computational efficiency in numerical simulations. However, existing methods struggle to simultaneously preserve boundary/interface features, ensure high quality, and achieve efficient generation, particularly for complex geometries where degenerate and inverted elements frequently occur. To address this issue, this paper proposes a high-quality high-order unstructured quadrilateral mesh generation method based on geometric error-bounded curve reconstruction, which employs an indirect approach to enforce interface consistency. By optimization-based curve reconstruction strategies, our method improves mesh quality while maintaining the validity of high-order elements. Compared to direct high-order mesh optimization techniques, our approach reduces the optimization problem to curve reconstruction problem, significantly lowering…
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Taxonomy
TopicsComputational Geometry and Mesh Generation · 3D Shape Modeling and Analysis · Computational Fluid Dynamics and Aerodynamics
