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Vortex-induced vibration characteristics of multi-mode and spanwise waveform about flexible pipe subject to shear flow

机译:涡旋诱导的多模式振动特性,柔性管经过剪切流动

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Numerical simulations of the Vortex-Induced Vibration (VIV) about a large-scale flexible pipe subject to shear flow were carried out in this paper. Efficiency verification was performed firstly, validating that the proposed fluid–structure interaction solution strategy is competent in predicting the VIV response. Then, the VIV characteristics related to multi-mode and spanwise hybrid waveform about the flexible pipe attributed to shear flow were investigated. When inflow velocity rises, higher vibration modes are apt to be excited, and the spanwise waveform easily convertes from a standing-wave-dominated status to a hybrid standing–traveling wave status. The multi-mode or even multiple-dominant-mode is prone to occur, that is, the dominant mode is often followed by several apparent subordinate modes with considerable vibration energy. Hence, the shedding frequencies no longer obey Strouhal law, and vibration trajectories become intricate. According to the motion analysis concerning the coupled cross-flow and in-line vibrations, as well as the corresponding wake patterns, a tight coupling interaction exists between the structural deformation and the wake flow behind the flexible pipe. In addition, the evolution of the vortex tube along the pipe span and a strong 3Deffect are observed due to the slenderness of the flexible pipe and the variability of the vortex shedding attributed to the shear flow.
机译:本文进行了涡流诱导的振动(VIV)的数值模拟,在本文中进行了剪切流动的大规模柔性管。首先进行效率验证,验证所提出的流体结构相互作用解决方案策略在预测VIV响应方面具有能力。然后,研究了与多模和跨越混合波形相关的VIV特性,围绕施加到剪切流程的柔性管。当流入速度升高时,较高的振动模式易于激励,并且始线波形容易从站立波导地位转换为混合行驶波状态。易于发生多模式甚至多主导模式,即主导模式通常是几种具有相当大的振动能量的表观从属模式。因此,脱落频率不再服从Strouhal法律,振动轨迹变得复杂。根据关于耦合的交叉流动和在线振动的运动分析,以及相应的唤醒图案,在结构变形和柔性管后面的唤醒流动之间存在紧密的耦合相互作用。另外,由于柔性管的细长和归因于剪切流程的涡流的可变性,因此观察到沿管跨度和强力3DEFFECT的涡流管的进化。

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