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Thermal Reduced Order Model Adaptation to Aero-Thermo-Structural Interactions

机译:热降低阶模型适应航空热结构相互作用

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The application of reduced order modeling (ROM) techniques to hypersonic structures has gained significant momentum in recent years owing to its ability to deliver accurate structural-thermal response predictions with reduced computational costs relative to full order methods. Accurate response prediction is dependent on the selection of an appropriate basis which is relatively straightforward for single discipline problems. For structural problems, the basis is comprised of the natural mode shapes of the structure and duals, which are modes constructed to capture the nonlinear membrane stretching effect. Similarly, eigenvectors of the generalized conductance-capacitance eigenvalue problem have been shown to provide an adequate basis for thermal ROMs. Selecting a basis for multidisciplinary problems may be significantly more difficult because of the unexpected behavior that may result from the interactions between the disciplines. It is proposed here that reduced order models first be developed as above on single discipline arguments, then be adapted, specifically their bases, to account for the interaction as the computations proceed. An adaptive model is most likely needed for the thermal problem, since the corresponding eigenvalues are more densely clustered than for the structural problem, resulting in significant contributions from more modes as the thermal loading conditions change. To investigate these concepts, a representative hypersonic panel is considered here and a thermal reduced order model of it is first developed and validated under single discipline conditions. The applicability of this basis to represent the temperature distribution resulting from a fully coupled aero-thermo-structural interaction is then assessed and a methodology to adapt the thermal basis is proposed and discussed.
机译:近年来,由于其能够通过相对于完整订单方法提供准确的结构 - 热响应预测,近年来,近年来,近年来的高效结构的应用增加了显着的动力。准确的响应预测取决于选择适当的基础,这对于单学科问题相对简单。对于结构问题,该基础包括结构和双重的自然模式形状,其是构造以捕获非线性膜拉伸效果的模式。类似地,已经显示了广义电容特征值问题的特征向量,以提供热ROM的适当依据。选择多学科问题的基础可能会显着更加困难,因为可能是由学科之间的相互作用导致的意外行为。这里建议首先在单个学科参数上首先开发减少的订单模型,然后特别适用于它们的基础,以解释作为计算的交互。热问题最可能需要自适应模型,因为相应的特征值比结构问题更密集地聚集,导致更多模式随着热负荷条件的变化而产生的显着贡献。为了研究这些概念,这里考虑了代表性高音板,首先在单学科条件下开发和验证它的热减少阶模型。此基础的适用性来表示由完全耦合的航空热结构相互作用产生的温度分布,提出并讨论了适应热量的方法。

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