论文标题

评估计算流体动力学的准确性,灵敏度和鲁棒性的不确定性定量框架

An Uncertainty-Quantification Framework for Assessing Accuracy, Sensitivity, and Robustness in Computational Fluid Dynamics

论文作者

Rezaeiravesh, Saleh, Vinuesa, Ricardo, Schlatter, Philipp

论文摘要

基于不同的不确定性定量(UQ)技术开发框架,以评估计算物理问题中的验证和验证(V&V)指标,尤其是计算流体动力学(CFD)。指标包括模拟器输出相对于不确定的输入和计算参数的准确性,灵敏度和鲁棒性。这些参数分为两组:基于第一组的变化,设计了计算机实验,由于第二组的参数,其数据可能不确定。为了基于不确定的数据构建替代模型,使用具有观察依赖性(异方差)噪声结构的高斯过程回归(GPR)。为了估计模拟器输出中的传播不确定性,也分别采用了第一组和第二个参数的组合,标准和概率的多项式混乱扩展(PCE)。基于SOBOL分解的全局灵敏度分析是根据计算机实验进行的,以根据其对模拟器输出的影响对参数进行排名。为了说明其功能,使用开源CFD求解器NEK5000将框架应用于湍流通道流量的比例解析模拟。由于NEK5000的高阶性质,对结果的准确性和可靠性彻底评估至关重要,因为该代码针对高保真模拟。详细的分析和由此产生的结论可以增强我们对不同因素对物理模拟的影响的洞察力,尤其是对壁构成的湍流的模拟。

A framework is developed based on different uncertainty quantification (UQ) techniques in order to assess validation and verification (V&V) metrics in computational physics problems, in general, and computational fluid dynamics (CFD), in particular. The metrics include accuracy, sensitivity and robustness of the simulator's outputs with respect to uncertain inputs and computational parameters. These parameters are divided into two groups: based on the variation of the first group, a computer experiment is designed, the data of which may become uncertain due to the parameters of the second group. To construct a surrogate model based on uncertain data, Gaussian process regression (GPR) with observation-dependent (heteroscedastic) noise structure is used. To estimate the propagated uncertainties in the simulator's outputs from first and also the combination of first and second groups of parameters, standard and probabilistic polynomial chaos expansions (PCE) are employed, respectively. Global sensitivity analysis based on Sobol decomposition is performed in connection with the computer experiment to rank the parameters based on their influence on the simulator's output. To illustrate its capabilities, the framework is applied to the scale-resolving simulations of turbulent channel flow using the open-source CFD solver Nek5000. Due to the high-order nature of Nek5000 a thorough assessment of the results' accuracy and reliability is crucial, as the code is aimed at high-fidelity simulations. The detailed analyses and the resulting conclusions can enhance our insight into the influence of different factors on physics simulations, in particular the simulations of wall-bounded turbulence.

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