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Uncertainty Quantification and Certification Prediction of Low-Boom Supersonic Aircraft Configurations (Invited)

机译:低动臂超音速飞机配置的不确定性量化和认证预测(邀请)

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The primary objective of this work was to develop and demonstrate a process for accurate and efficient uncertainty quantification and certification prediction of low-boom, supersonic, transport aircraft. High-fidelity computational fluid dynamics models of multiple low-boom configurations were investigated including the Lockheed Martin SEEB-ALR body of revolution, the NASA 69° Delta Wing, and the Lockheed Martin 1021-01 configuration. A nonintrusive polynomial chaos surrogate modeling approach was used for reduced computational cost of propagating mixed, inherent (aleatory) and model-form (epistemic) uncertainty from both the computation fluid dynamics model and the near-field to ground level propagation model. A methodology has also been introduced to quantify the plausibility of a design to pass a certification under uncertainty. Results of this study include the analysis of each of the three configurations of interest under inviscid and fully turbulent flow assumptions. A comparison of the uncertainty outputs and sensitivity analyses between the configurations is also given. The results of this study illustrate the flexibility and robustness of the developed framework as a tool for uncertainty quantification and certification prediction of low-boom, supersonic aircraft.
机译:这项工作的主要目标是开发和展示一种准确,高效的不确定性量化和低潮流,超音速,运输机的认证预测的过程。研究了多种低繁荣配置的高保真计算流体动力学模型,包括洛克希德Martin Seeb-ALR体革命,NASA 69°Delta Wing,以及洛克希德Martin 1021-01配置。从计算流体动力学模型和近场到地面传播模型,非典型多项式混沌替代建模方法用于传播混合,固有(杀菌)和模型(认生)和模型形式(认生)和模型形式(认生)不确定性的计算成本。还引入了一种方法来量化设计的合理性,以在不确定性下通过认证。该研究的结果包括分析INCISCID和完全湍流假设下的三种兴趣配置中的每一个。还给出了配置之间的不确定性输出和灵敏度分析的比较。该研究的结果说明了开发框架的灵活性和鲁棒性作为低潮流,超音速飞机的不确定量化和认证预测的工具。

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