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The mechanisms underlying flow-induced instabilities of cylinder arrays in cross-flow

机译:流动凸起圆柱阵列的流动诱导造型机制

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This paper aims to shed some light on the physical mechanisms involved in flow-induced instabilities of arrays of cylinders in cross-flow. In the framework of quasi-steady fluid-dynamic theory, two distinct mechanisms are discussed. Thefirst is similar but not identical to that associated with classical galloping; i.e., it is a negative fluid-dynamic damping mechanism and may obtain even if a single cylinder in the array is free to oscillate with only one degree of freedom.Unlike classical galloping, it is intimately related to the time delay experienced in the wake structure, and hence the fluid forces, adjusting to displacements of the cylinder. The second mechanism is similar to wake flutter; i.e., it is controlled by non-conservative fluid-dynamic stiffness effects and generally requires relative motion between adjacent cylinders in the array, although there is no reason why it should not occur for a single flexible cylinder with two degrees of freedom. The two mechanisms generally coexist, but each is predominant over different ranges of system parameters.
机译:本文旨在阐明在流动造型的圆柱阵列阵列中涉及的物理机制上的一些光。在准稳态流体动态理论的框架中,讨论了两个不同的机制。渠道是类似的,但与与经典疾驰相关的相似;即,它是负流体动力阻尼机构,也可以获得即使阵列中的单个圆柱体,只有一个自由度的自由度自由地振荡,也可以与唤醒结构中经历的时滞密切相关并且因此,流体力,调节汽缸的位移。第二种机制类似于唤醒颤动;即,它由非保守的流体 - 动态刚度效应控制,并且通常需要阵列中的相邻汽缸之间的相对运动,尽管没有原因不应该出现具有两种自由度的单个柔性滚筒。这两个机制通常共存,但每个机制是在不同的系统参数范围内主要的。

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