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Quantification of model-form and predictive uncertainty for multi-physics simulation

机译:多物理场模拟的模型形式和预测不确定性的量化

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Traditional uncertainty quantification in multi-physics design problems involves the propagation of parametric uncertainties in input variables such as structural or aerodynamic properties through a single, or series of models constructed to represent the given physical scenario. These models are inherently imprecise, and thus introduce additional sources of error to the design problem. In addition, there often exists multiple models to represent the given situation, and complete confidence in selecting the most accurate model among the model set considered is beyond the capability of the user. Thus, quantification of the errors introduced by this modeling process is a necessary step in the complete quantification of the uncertainties in multi-physics design problems. In this work, a modeling uncertainty quantification framework was developed to quantify to quantify both the model-form and predictive uncertainty in a design problem through the use of existing methods as well as newly developed modifications to existing methods in the literature. The applicability of this framework to a problem involving full-scale simulation was then demonstrated using the AGARD 445.6 Weakened Wing and three different aeroelastic simulation packages to quantify the flutter conditions of the wing.
机译:多物理场设计问题中的传统不确定性量化涉及通过构造表示给定物理场景的单个或一系列模型,在输入变量(例如结构或空气动力学特性)中传播参数不确定性。这些模型本质上是不精确的,因此为设计问题引入了更多的误差源。另外,通常存在代表给定情况的多个模型,并且在所考虑的模型集中选择最准确的模型的完全信心超出了用户的能力范围。因此,由这种建模过程引入的误差的量化是对多物理场设计问题中的不确定性进行完全量化的必要步骤。在这项工作中,开发了建模不确定性量化框架,以通过使用现有方法以及文献中对现有方法的最新开发修改,对设计问题中的模型形式和预测不确定性进行量化。然后,使用AGARD 445.6弱化机翼和三个不同的气动弹性仿真程序包对机翼的颤振条件进行量化,证明了该框架对涉及全面仿真的问题的适用性。

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