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Suppression of two-dimensional vortex-induced vibration with active velocity feedback controller

机译:具有主动速度反馈控制器的二维涡旋诱导振动的抑制

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Vortex-induced vibrations (VIV) establish key design parameters for offshore and subsea structures subject to current flows. Understanding and predicting VIV phenomena have been improved in recent years. Further, there is a need to determine how to effectively and economically mitigate VIV effects. In this study, linear and nonlinear velocity feedback controllers are applied to actively suppress the combined cross-flow and in-line VIV of an elastically-mounted rigid circular cylinder. The strongly coupled fluid-structure interactions are numerically modelled and investigated using a calibrated reduced-order wake oscillator derived from the vortex strength concept. The importance of structural geometrical nonlinearities is studied which highlights the model ability in matching experimental results. The effectiveness of linear vs nonlinear controllers are analysed with regard to the control direction, gain and power. Parametric studies are carried out which allow us to choose the linear vs nonlinear control, depending on the target controlled amplitudes and associated power requirements.
机译:涡旋诱导的振动(VIV)建立近海和海底结构的关键设计参数,受电流流动。近年来理解和预测VIV现象得到了改善。此外,需要确定如何有效和经济地缓解VIV效应。在该研究中,施加线性和非线性速度反馈控制器以主动抑制弹性安装的刚性圆柱体的组合交叉流动和线上VIV。使用校准的尾唤醒振荡器衍生自涡流强度概念的校准的尾唤醒振荡器,使用强烈耦合的流体结构相互作用。研究了结构几何非线性的重要性,突出了匹配实验结果的模型能力。在控制方向,增益和功率方面分析了线性VS非线性控制器的有效性。进行参数研究,允许我们选择线性VS非线性控制,这取决于目标控制的幅度和相关电源要求。

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