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Aerodynamic Design of Aircraft Engine Nozzles with Consideration of Model-Form Uncertainties

机译:考虑模型形式不确定性的飞机发动机喷嘴的空气动力学设计

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The utility of simulation-based design is dependent on adequately characterizing the impact of model-form uncertainties on performance metrics. This is especially true in aerodynamic design, where uncertainty in turbulence models is often a limiting factor in the credibility of computational design solutions. In this work, we use data-driven techniques based on field inversion and machine learning to extract a representation of model-form uncertainties. This representation is embedded in a predictive solver and applied in robust aerodynamic design optimization of aircraft engine nozzles. The data is obtained from a few simulations of a higher fidelity model, and uncertainty representations are embedded within a lower fidelity model (eddy viscosity-based Reynolds Averaged Navier—Stokes). The worst-case model-form uncertainty is treated as an interval-based estimate and the robust design optimization approach seeks to minimize this interval. Results from the robust design process are compared to corresponding deterministic design solutions with and without mass constraints.
机译:基于仿真的设计的实用性取决于充分表征模型形式的不确定性对性能指标的影响。在空气动力学设计中尤其如此,在湍流模型中,不确定性通常是限制计算设计解决方案可信度的因素。在这项工作中,我们使用基于场反转和机器学习的数据驱动技术来提取模型形式不确定性的表示形式。此表示形式嵌入到预测求解器中,并应用于飞机发动机喷嘴的鲁棒空气动力学设计优化。数据是从较高保真度模型的一些模拟中获得的,不确定性表示形式嵌入在较低保真度模型(基于涡流粘度的雷诺平均Navier-Stokes)中。最坏情况下的模型形式不确定性被视为基于间隔的估计,而健壮的设计优化方法则力求最小化此间隔。将鲁棒性设计过程的结果与带有或不带有质量约束的相应确​​定性设计解决方案进行比较。

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