论文标题

使用尖锐的接口浸入边界法对弹性分离板的流动诱导振动的计算建模和分析

Computational Modeling and Analysis of Flow-induced Vibration of an Elastic Splitter Plate Using a Sharp-interface Immersed Boundary Method

论文作者

Kundu, Anup, Soti, Atul K., Garg, Hemanshul, Bhardwaj, Rajneesh, Thompson, Mark C.

论文摘要

我们介绍了内部流体结构相互作用(FSI)求解器的开发和基准测试。一种隐式分区的方法可用于将基于尖锐的接口浸入边界(IB)基于方法的流量求解器和基于有限元方法的结构求解器。在目前的工作中,使用动态不足的方案加速耦合。与使用常数避免范围不足参数的耦合相比,修订后的耦合速度约为两到三倍。求解器通过两个FSI基准进行了验证,其中将薄的厚度,弹性分离器板附着在圆形或方形刚性圆柱体的Lee侧,受到层流流。在这些二维基准测试中,流动在板中诱导波浪状变形,并获得了周期性的自我维持的振荡。我们利用FSI求解器在均匀的层流自由流动流中分析板的流动诱导振动(FIV),以较大的质量比,并根据圆柱体的直径为100。在给定的$ re $时,二维数值模拟表明,板的FIV仅取决于质量比和弯曲刚度。发现板振动的最大位移发生在锁定区域中,其中耦合流体结构系统的涡流脱落频率接近分离板的固有频率。我们简要讨论了不同质量比和弯曲刚度的唤醒结构和相图。

We present the development and benchmarking of an in-house fluid-structure interaction (FSI) solver. An implicit partitioned approach is utilized to couple a sharp-interface immersed boundary (IB) method based flow solver and a finite-element method based structural solver. In the present work, the coupling is accelerated using a dynamic under-relaxation scheme. The revised coupling is around two to three times faster and numerically stable, as compared to the one that uses a constant under-relaxation parameter. The solver is validated against two FSI benchmarks in which a thin, finite thickness, elastic splitter plate is attached to the lee side of a circular or square rigid cylinder, subjected to laminar flow. In these two-dimensional benchmarks, the flow induces a wave-like deformation in the plate, and it attains a periodic self-sustained oscillation. We employ the FSI solver to analyze the flow-induced vibration (FIV) of the plate in a uniform laminar free-stream flow for a wide range of mass ratio and bending stiffness at Reynolds number ($Re$) of 100, based on the diameter of the cylinder. At the given $Re$, two-dimensional numerical simulations show that the FIV of the plate effectively depends only on the mass ratio and bending stiffness. The largest displacement of the plate vibration is found to occur in the lock-in region, where the vortex shedding frequency of the coupled fluid-structure system is close to the natural frequency of the splitter plate. We briefly discuss wake structures and phase plots for different cases of mass ratio and bending stiffness.

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