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INSTABILITY OF A SIMPLY-SUPPORTED CYLINDER SUBJECTED TO ANNULAR FLOW OVER A FINITE-LENGTH AT ITS MID-LENGTH

机译:中等长度上有限长环流在圆弧上的不稳定性

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A few analytical models for a simply-supported cylinder subjected to a concentric annular flow have been developed considering small perturbations in the flow components. The flow perturbation is believed to play a key role in causing instabilities or reducing the effective tube damping. However, it is generally accepted that there is no dynamic instability of a simply-supported cylinder subjected to concentric annular flows; the dynamic instability may materialize only with a very flexible rod where traveling wave solutions are expected. The dynamic behavior of a concentric annular flow in a finite-length-narrow gap at the mid-span of a cylinder is studied to investigate the possibility of a dynamic instability in the case of a simply-supported cylinder. In this study, typically used stainless steel tubing and geometry in engineering application are applied with some fluid boundary conditions at the finite-length-narrow gap such as a contraction entrance and a diffuser exit. The research results from this study are as follows: ⑴ determination of an analytical solution for tube dynamics in terms of fluid boundary conditions such as contraction loss at the entrance and pressure recovery at the exit of the finite-length-annular gap, ⑵ confirmation of the effect of leakage-flow to system dynamics, and ⑶ confirmation of flutter instability (negative damping type) at the fluid boundary conditions.
机译:考虑到流动分量的微小扰动,已经开发出了一些用于同心环形流动的简单支撑气缸的分析模型。据信流动扰动在引起不稳定性或减小有效管阻尼方面起着关键作用。但是,人们普遍认为,承受同心环形流动的简单支撑气缸不存在动态不稳定性。动态不稳定性可能仅会在需要行波解的情况下使用非常柔软的杆来实现。研究了在圆柱体中跨的有限长度-窄间隙中的同心环形流动的动力学行为,以研究在简单支撑圆柱体的情况下动态不稳定的可能性。在这项研究中,工程应用中通常使用的不锈钢管和几何形状在有限的长度-狭窄的间隙处(例如,收缩入口和扩散器出口)应用了一些流体边界条件。这项研究的研究结果如下:⑴根据流体边界条件,例如有限长度-环形间隙的入口处的收缩损失和出口处的压力恢复,确定管动力学的解析解,⑵确定漏流对系统动力学的影响,以及⑶确认流体边界条件下的颤振不稳定性(负阻尼型)。

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