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首页> 外文期刊>Journal of Fluids and Structures >Fast numerical simulation of vortex shedding in tube arrays using a discrete vortex method
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Fast numerical simulation of vortex shedding in tube arrays using a discrete vortex method

机译:使用离散涡旋方法的快速数值模拟管阵列中的涡旋脱落

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摘要

Vortex shedding may occur in tube arrays, resulting in strong excitation forces at discrete frequencies. In the past, the Strouhal numbers governing vortex shedding in these systems were determined primarily by experiment. This paper presents a computationally inexpensive method of numerical simulation for the unsteady flow through a rigid normal triangular tube array which determines both the frequency of vortex shedding and the instantaneous flow structure. The technique used is based on a discrete vortex method similar to the cloud-in-cell approach which has been applied to flow problems for small numbers of cylinders. However, in the current implementation, the flow velocity calculation is carried out on an unstructured grid using a finite element discretization. Thus, the complex geometry associated with a tube array can be easily accommodated. The method, referred to as the "Cloud-in-element" method, is validated for the standard case of flow over a single cylinder and then applied to flow through a normal triangular array with a pitch-to-diameter of 1.6. The Reynolds number is 2200. The Strouhal number obtained from the numerical simulation is 1.27, which is within 6% of the value available in the literature. Qualitatively, the vortex shedding pattern obtained is in agreement with published flow visualization.
机译:管阵列中可能发生涡旋脱落,从而在离散频率下产生强大的激发力。过去,控制这些系统中涡旋脱落的斯特劳哈尔数主要是通过实验确定的。本文提出了一种计算上廉价的数值模拟方法,用于通过刚性法向三角管阵列的非稳态流动,该流动确定了涡旋脱落的频率和瞬时流动结构。所使用的技术基于类似于单元中云方法的离散涡旋方法,该方法已应用于少量气缸的流动问题。但是,在当前的实现中,使用有限元离散化在非结构化网格上进行流速计算。因此,可以容易地容纳与管阵列相关的复杂几何形状。该方法被称为“元素中的云”方法,适用于在单个圆柱体上流动的标准情况,然后应用于流经直径节距为1.6的普通三角形阵列。雷诺数为2200。从数值模拟获得的斯特劳哈尔数为1.27,在文献中可用值的6%之内。定性地,获得的涡旋脱落模式与已公开的流动可视化一致。

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