Evaluating Airfoil Mesh Quality with Transformer

Author:

Liu Zhixiang12ORCID,Liu Huan1ORCID,Chen Yuanji1,Zhang Wenbo1,Song Wei1ORCID,Zhou Liping3,Wei Quanmiao4,Xu Jingxiang5ORCID

Affiliation:

1. College of Information Technology, Shanghai Ocean University, Shanghai 201306, China

2. East China Sea Forecast Center of State Oceanic Administration, Shanghai 200136, China

3. School of Computer Engineering and Science, Shanghai University, Shanghai 200444, China

4. East China Sea Bureau, Ministry of Natural Resources, Shanghai 200137, China

5. College of Engineering Science and Technology, Shanghai Ocean University, Shanghai 201306, China

Abstract

Mesh quality is a major factor affecting the structure of computational fluid dynamics (CFD) calculations. Traditional mesh quality evaluation is based on the geometric factors of the mesh cells and does not effectively take into account the defects caused by the integrity of the mesh. Ensuring the generated meshes are of sufficient quality for numerical simulation requires considerable intervention by CFD professionals. In this paper, a Transformer-based network for automatic mesh quality evaluation (Gridformer), which translates the mesh quality evaluation into an image classification problem, is proposed. By comparing different mesh features, we selected the three features that highly influence mesh quality, providing reliability and interpretability for feature extraction work. To validate the effectiveness of Gridformer, we conduct experiments on the NACA-Market dataset. The experimental results demonstrate that Gridformer can automatically identify mesh integrity quality defects and has advantages in computational efficiency and prediction accuracy compared to widely used neural networks. Furthermore, a complete workflow for automatic generation of high-quality meshes based on Gridformer was established to facilitate automated mesh generation. This workflow can produce a high-quality mesh with a low-quality mesh input through automatic evaluation and optimization cycles. The preliminary implementation of automated mesh generation proves the versatility of Gridformer.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

the Program for the Capacity Development of Shanghai Local Colleges

Publisher

MDPI AG

Subject

Aerospace Engineering

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