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Numerical FSI investigation based on LES: Flow past a cylinder with a flexible splitter plate involving large deformations (FSI-PfS-2a)

机译:基于LES的FSI数值研究:流经带有大变形的柔性隔板的圆柱体(FSI-PfS-2a)

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The objective of this paper is to provide a detailed numerical investigation on the fluid-structure interaction (FSI) test case presented in Kalmbach and Breuer (J. of Fluids and Structures, 42, (2013), 369-387). It relies on detailed experimental investigations on the fluid flow and the structure deformation using modern optical measurement techniques such as particle-image velocimetry and laser triangulation sensors. The present numerical study is based on an efficient partitioned FSI coupling scheme especially developed for turbulent flow simulations around light-weight structures using large-eddy simulation. The current FSI configuration is composed of a fixed cylinder with a flexible thin rubber plate and a rear mass inducing a turbulent flow (Re = 30,470). Mainly based on a movement-induced excitation the flexible structure oscillates in the second swiveling mode involving large deformations. Thus, particular attention has been paid to the computational model and the numerical set-up. Special seven-parameters shell elements are applied to precisely model the flexible structure. Structural tests are carried out to approximate the optimal structural parameters. A fine and smooth fluid mesh has been generated in order to correctly predict the wide range of different flow structures presents near and behind the flexible rubber plate. A phase-averaging is applied to the numerical results obtained, so that they can be compared with the phase-averaged experimental data. Both are found to be in close agreement exhibiting a structure deformation in the second swiveling mode with similar frequencies and amplitudes. Finally, a sensitivity study is carried out to show the influence of different physical parameters (e.g. Young's modulus) and modeling aspects (e.g. subgrid-scale model) on the FSI phenomenon.
机译:本文的目的是对Kalmbach和Breuer(J.of Fluids and Structures,42,(2013),369-387)中提出的流固耦合(FSI)测试案例进行详细的数值研究。它依赖于使用现代光学测量技术(例如颗粒图像测速仪和激光三角测量传感器)对流体流动和结构变形进行的详细实验研究。本数值研究基于有效的分区FSI耦合方案,该方案专为使用大涡模拟围绕轻型结构进行的湍流模拟而开发。当前的FSI配置由带有柔性薄橡胶板的固定圆柱体和引起湍流的后部质量组成(Re = 30,470)。主要基于运动引起的激励,柔性结构以涉及大变形的第二旋转模式振荡。因此,已经特别注意了计算模型和数值设置。应用特殊的七参数壳单元来精确建模柔性结构。进行结构测试以近似最佳结构参数。为了正确预测柔性橡胶板附近和后面存在的不同流动结构的范围,已经生成了精细而平滑的流体网格。将相位平均应用于获得的数值结果,以便可以将它们与相位平均的实验数据进行比较。发现两者在第二旋转模式下具有相似的频率和幅度表现出紧密的结构变形。最后,进行了敏感性研究,以显示不同物理参数(例如,杨氏模量)和建模方面(例如,亚网格规模模型)对FSI现象的影响。

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