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首页> 外文期刊>Journal of Fluids and Structures >Modelling of fluidelastic instability in a square inline tube array including the boundary layer effect
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Modelling of fluidelastic instability in a square inline tube array including the boundary layer effect

机译:包含边界层效应的方形直列管阵列中的流体弹性不稳定性建模

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摘要

Flow-induced vibration (FIV) is a design concern in many engineering applications such as tube bundles in heat exchangers. When FIV materializes, it often results in fatigue and/or fretting wear of the tubes, leading to their failure. Three cross-flow excitation mechanisms are responsible for such failures: random turbulence excitation, Strouhal periodicity, and fluidelastic instability. Of these three mechanisms, fluidelastic instability has the greatest potential for destruction. Because of this, a large amount of research has been conducted to understand and predict this mechanism. This paper presents a time domain model to predict the fluidelastic instability forces in a tube array. The proposed model accounts for temporal variations in the flow separation. The unsteady boundary layer is solved numerically and coupled with the structure model and the far field flow model. It is found that including the boundary layer effect results in a lower stability threshold. This is primarily due to a larger fluidelastic force effect on the tube. The increase in the fluidelastic effect is attributed to the phase difference between the boundary layer separation point motion and the tube motion. It is also observed that a non-linear limit cycle is predicted by the proposed model.
机译:流动引起的振动(FIV)是许多工程应用(例如热交换器中的管束)中的设计关注点。当FIV发生时,通常会导致管子疲劳和/或微动磨损,从而导致管子失效。三种横流激励机制是造成此类故障的原因:随机湍流激励,斯特劳哈尔周期性和流体弹性不稳定性。在这三种机制中,流体弹性不稳定性具有最大的破坏潜力。因此,进行了大量的研究来理解和预测这种机制。本文提出了一种时域模型来预测管阵列中的流体弹性失稳力。所提出的模型考虑了流动分离中的时间变化。数值求解非稳态边界层,并与结构模型和远场流模型耦合。发现包括边界层效应导致较低的稳定性阈值。这主要是由于对管的更大的流体弹力作用。流体弹性效应的增加归因于边界层分离点运动与管运动之间的相位差。还观察到,所提出的模型预测了非线性极限循环。

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