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首页> 外文期刊>International journal of computational fluid dynamics >Interpolation-based reduced-order modelling for steady transonic flows via manifold learning
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Interpolation-based reduced-order modelling for steady transonic flows via manifold learning

机译:基于插值的降阶建模通过流形学习实现稳定的跨音速流

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摘要

This paper presents a parametric reduced-order model (ROM) based on manifold learning (ML) for use in steady transonic aerodynamic applications. The main objective of this work is to derive an efficient ROM that exploits the low-dimensional nonlinear solution manifold to ensure an improved treatment of the nonlinearities involved in varying the inflow conditions to obtain an accurate prediction of shocks. The reduced-order representation of the data is derived using the Isomap ML method, which is applied to a set of sampled computational fluid dynamics (CFD) data. In order to develop a ROM that has the ability to predict approximate CFD solutions at untried parameter combinations, Isomap is coupled with an interpolation method to capture the variations in parameters like the angle of attack or the Mach number. Furthermore, an approximate local inverse mapping from the reduced-order representation to the full CFD solution space is introduced. The proposed ROM, called Isomap+I, is applied to the two-dimensional NACA 64A010 airfoil and to the 3D LANN wing. The results are compared to those obtained by proper orthogonal decomposition plus interpolation (POD+I) and to the full-order CFD model.
机译:本文提出了基于流形学习(ML)的参数化降阶模型(ROM),用于稳定的跨音速空气动力学应用。这项工作的主要目的是获得一个有效的ROM,该ROM利用低维非线性解决方案流形,以确保改进对涉及改变流入条件的非线性的处理,以获得准确的震动预测。数据的降序表示使用Isomap ML方法导出,该方法应用于一组采样的计算流体动力学(CFD)数据。为了开发一种能够在未尝试的参数组合下预测近似CFD解决方案的ROM,Isomap与插值方法结合使用以捕获诸如攻角或马赫数之类的参数变化。此外,介绍了从降阶表示到完整CFD解决方案空间的近似局部逆映射。建议的ROM(称为Isomap + I)应用于二维NACA 64A010机翼和3D LANN机翼。将结果与通过适当的正交分解加内插(POD + I)获得的结果以及与全阶CFD模型进行比较。

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