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

机译:低空超音速飞机配置的不确定度量化和认证预测(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:这项工作的主要目的是开发和演示一种用于对低空超音速运输机进行准确,有效的不确定性量化和认证预测的过程。研究了多种低吊杆配置的高保真计算流体动力学模型,包括洛克希德·马丁公司的SEEB-ALR旋转体,美国宇航局69°三角翼和洛克希德·马丁公司的1021-01飞机。使用非侵入式多项式混沌替代模型方法来降低从计算流体动力学模型和近场到地面传播模型传播混合的,固有的(偶然的)和模型形式的(不确定的)不确定性的计算成本。还引入了一种方法来量化设计在不确定性下通过认证的合理性。这项研究的结果包括在无粘性和完全湍流假设下对三种感兴趣构型的每一种的分析。还对配置之间的不确定性输出和灵敏度分析进行了比较。这项研究的结果说明了所开发框架的灵活性和鲁棒性,可作为一种不确定性量化和低空超音速飞机的合格证预测的工具。

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