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Optimizing fluid-structure interaction systems with immersogeometric analysis and surrogate modeling: Application to a hydraulic arresting gear

机译:通过沉浸几何分析和替代模型优化流固耦合系统:在液压制动装置中的应用

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This work describes a fluid-structure interaction (FSI) design optimization framework and applies it to improving the structural performance of a water brake used to stop aircraft landing on short runways. Inside the water brake, a dissipative torque is exerted on a rotor through interactions between rotor blades and a surrounding fluid. We seek to optimize blade shape over a parameterized design space, to prevent potentially-damaging stress concentrations without compromising performance. To avoid excessive numbers of costly simulations while exploring the design space, we use a surrogate management framework that combines derivative-free pattern search optimization with automated construction of a low-fidelity surrogate model, requiring only a handful of high-fidelity FSI simulations. We avoid the difficult problem of generating fluid and structure meshes at new points in the design space by using immersogeometric FSI analysis. The structure is analyzed isogeometrically: its design geometry also serves as a computational mesh. This geometry is then immersed in an unfitted fluid mesh that does not depend on the structure's design parameters. We use this framework to make significant improvements to a baseline design found in the literature. Specifically, there is a 35% reduction of von Mises stress variance and a 25% reduction of maximum of stress, while the resisting torque and mass of the optimized blades remain uncompromised. (C) 2016 Elsevier B.V. All rights reserved.
机译:这项工作描述了一种流固耦合设计优化框架,并将其应用于改善水闸的结构性能,该水闸用于阻止飞机在短跑道上着陆。在水闸内部,耗散扭矩通过转子叶片与周围流体之间的相互作用施加在转子上。我们力求在参数化设计空间上优化叶片形状,以防止潜在的破坏性应力集中而不会影响性能。为了避免在探索设计空间时出现过多的昂贵仿真,我们使用了替代管理框架,该框架将无导数模式搜索优化与低保真替代模型的自动构建相结合,仅需要少量的高保真FSI仿真。通过使用浸入几何FSI分析,我们避免了在设计空间中的新点生成流体和结构网格的难题。对该结构进行等几何分析:其设计几何形状还可以用作计算网格。然后将这种几何形状浸入不依赖于结构设计参数的不适合的流体网格中。我们使用此框架对文献中的基准设计进行了重大改进。具体而言,冯·米塞斯应力变化降低了35%,最大应力降低了25%,而优化叶片的抗扭力矩和质量却丝毫不受影响。 (C)2016 Elsevier B.V.保留所有权利。

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