cs.AI updates on arXiv.org 09月11日
BlendedNet:混合翼身气动数据集及其应用
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本文介绍了BlendedNet,一个包含999个混合翼身(BWB)几何形状的气动数据集,并引入了一种端到端代理框架用于点状气动预测,旨在解决非传统配置的数据稀缺问题,促进气动设计的数据驱动代理建模研究。

arXiv:2509.07209v2 Announce Type: replace Abstract: BlendedNet is a publicly available aerodynamic dataset of 999 blended wing body (BWB) geometries. Each geometry is simulated across about nine flight conditions, yielding 8830 converged RANS cases with the Spalart-Allmaras model and 9 to 14 million cells per case. The dataset is generated by sampling geometric design parameters and flight conditions, and includes detailed pointwise surface quantities needed to study lift and drag. We also introduce an end-to-end surrogate framework for pointwise aerodynamic prediction. The pipeline first uses a permutation-invariant PointNet regressor to predict geometric parameters from sampled surface point clouds, then conditions a Feature-wise Linear Modulation (FiLM) network on the predicted parameters and flight conditions to predict pointwise coefficients Cp, Cfx, and Cfz. Experiments show low errors in surface predictions across diverse BWBs. BlendedNet addresses data scarcity for unconventional configurations and enables research on data-driven surrogate modeling for aerodynamic design.

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混合翼身 气动数据集 数据驱动建模
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