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TURBULENT STRUCTURE STUDY ON FLOW-INDUCED VIBRATION IN TEE JUNCTION PIPE

机译:T恤伸管管流动振动的湍流结构研究

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Flow-Induced Vibration (FIV) caused by turbulent flow inside a pipe could lead to fatigue failure with shell mode vibration. Our previous study investigated the excitation source of the FIV for tee junctions experimentally to understand the FIV mechanism and provided Power Spectral Density (PSD) profiles of pressure fluctuation. In the present study, experiments were performed with more extensive measurement points for both 90- and 45-degree tees to understand a more detailed mechanism. PSD plots were provided, featuring different pressure fluctuation characteristics at each measurement point among both angle tees. It also emerged that the PSD level declined with increasing distance from the impingement point. Unsteady Computational Fluid Dynamics (CFD) simulations with the Large Eddy Simulation (LES) model were also performed to understand the turbulent structure for the tee junctions. The frequency characteristic of the simulated pressure fluctuation effectively matched those of the experiments at each measurement point, which implies that CFD simulation with an LES model could reveal reasonable predictions of the FIV excitation source for tee junctions. Simulation results showed that the relatively large vortex shed from the branch pipe impinged periodically on the main pipe bottom and the large vortex was dissipated downstream. These vortex behaviors would be the main mechanism generating the FIV excitation source.
机译:由管内的湍流引起的流动诱导的振动(FIV)可能导致壳体模式振动的疲劳失效。我们以前的研究通过实验研究了T恤交叉点的FIV的激发源,以了解FIV机制和提供的功率谱密度(PSD)的压力波动谱。在本研究中,在90-和45度TEE中以更广泛的测量点进行实验,以了解更详细的机制。提供了PSD图,在角度发球区域之间的每个测量点处具有不同的压力波动特性。它还出现了PSD水平随着距离冲击点的距离增加而下降。还执行了具有大涡模拟(LES)模型的不稳定计算流体动力学(CFD)模拟,以了解T恤交叉点的湍流结构。模拟压力波动的频率特性有效地匹配了每个测量点的实验的实验,这意味着具有LES模型的CFD仿真可以揭示用于T恤连接的FIV激励源的合理预测。仿真结果表明,从主管底部撞击的分支管道和大涡流的分支管道相对大的涡流散发下游。这些涡旋行为是产生FIV激励源的主要机制。

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