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Dealing with numerical noise in CFD-based design optimization

机译:在基于CFD的设计优化中处理数值噪声

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摘要

Numerical noise is an inevitable by-product of Computational Fluid Dynamics (CFD) simulations which can lead to challenges in finding optimum designs. This article draws attention to the issue, illustrating the difficulties it can cause for road vehicle aerodynamics simulations. Firstly a benchmark problem is used to assess a range of turbulence models and grid types. Large noise amplitudes up to 22% are evident for solutions computed on unstructured tetrahedral grids whereas computations on hexahedral and polyhedral grid structures exhibit substantially less noise. The Spalart Allmaras turbulence model is shown to be far less susceptible to noise levels than two other commonly-used models for this application. Secondly, multi-objective aerodynamic shape optimization is applied to a fairing for a practical road vehicle which is parameterised in terms of three design variables. Moving Least Squares (MLS) metamodels are constructed from 50 high-fidelity CFD solutions for two objective functions. Subsequent optimization is successful for the first objective, however numerical noise levels in excess of 7% give rise to difficulties for the second one. A revision to the problem leads to success and the construction of a small Pareto Front. Further analysis underlines the inherent capability of MLS metamodels in dealing with noisy CFD responses.
机译:数值噪声是计算流体动力学(CFD)模拟不可避免的副产品,可能会导致寻找最佳设计的挑战。本文引起了人们对这一问题的关注,说明了它可能对道路车辆空气动力学模拟造成的困难。首先,基准问题用于评估一系列湍流模型和网格类型。对于在非结构化四面体网格上计算的解,可以看到高达22%的大噪声幅度,而在六面体和多面体网格结构上的计算则显示出明显更少的噪声。与该应用程序的其他两个常用模型相比,Spalart Allmaras湍流模型显示出对噪声水平的敏感度要低得多。其次,将多目标空气动力学形状优化应用于针对实用道路车辆的整流罩,该整流罩根据三个设计变量进行参数化。移动最小二乘(MLS)元模型由50个高保真CFD解决方案构造而成,用于两个目标函数。随后的优化对于第一个目标是成功的,但是对于第二个目标,超过7%的数值噪声水平会带来困难。对问题的修正导致成功并建立了一个小的帕累托阵线。进一步的分析强调了MLS元模型处理嘈杂的CFD响应的固有能力。

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