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Uncertainty Propagation in Integrated Airframe-Propulsion System Analysis for Hypersonic Vehicles

机译:高超声速飞行器综合机体推进系统分析中的不确定性传播

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摘要

Air-breathing hypersonic vehicles are based on an airframe-integrated scramjet engine. The elongated forebody that serves as the inlet of the engine is subject to harsh aerothermodynamic loading, which causes it to deform. Unpredicted deformations may produce unstart, combustor chocking, or structural failure due to increased loads. An uncertainty quantification framework is used to propagate the effects of aerothermoelastic deformations on the performance of the scramjet engine. A loosely coupled airframe-integrated scramjet engine is considered. The aerothermoelastic deformations calculated for an assumed trajectory and angle of attack are transferred to a scramjet engine analysis. Uncertainty associated with deformation prediction is propagated through the engine performance analysis. The effects of aerodynamic heating and aerothermoelastic deformations at the cowl of the inlet are the most significant The cowl deformation is the main contributor to the sensitivity of the propulsion system performance to aerothermoelastic effects.
机译:呼吸式超音速飞行器基于一体式超燃冲压发动机。用作发动机进气口的细长前车身承受着剧烈的空气动力负荷,使其变形。不可预料的变形可能会因负载增加而引起起步,燃烧器堵塞或结构故障。不确定性量化框架用于传播气动弹性变形对超燃冲压发动机性能的影响。考虑了松耦合的一体式超燃冲压发动机。根据假定的轨迹和攻角计算出的空气弹性变形被传递到超燃冲压发动机分析中。与变形预测相关的不确定性通过发动机性能分析传播。空气动力学加热和进气道前围板的气动弹性变形的影响最大。前围板变形是推进系统性能对气动热弹性效应的敏感性的主要贡献者。

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