Elimination of lock-in phenomenon in vortex-induced vibration by passive modal control

Fuqing Luo, Chuanqiang Gao, Zhen Lyu, Weiwei Zhang
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Abstract

Theoretical analysis and numerical results have shown that frequency lock-in in vortex-induced vibration (VIV) is caused by the instability of the structural mode rather than a resonant response to external excitations. However, there is a lack of experimental evidence supporting relevant theoretical research findings. This study investigates VIV suppression with a passive modal controller (PMC) for a circular cylinder at Reynolds numbers $Re = 60$ and $Re = 40$ , using experiments to distinguish the effects of stable and unstable wake modes. Comparative analysis before and after the implementation of the PMC reveals significant reduction in the vibration amplitude and the disappearance of the lock-in phenomenon at $Re = 60$ . The vibration frequency closely follows the vortex shedding frequency after control, while dynamic mode decomposition of the flow field indicates that the wake mode is dominant. For $Re = 40$ , the vibration is eliminated and the flow becomes steady. Additionally, the root loci of the coupled system are investigated before and after the PMC implementation via linear stability analysis. The results indicate that the PMC can alter the dynamic characteristics of the original system, causing the structural mode and PMC mode to couple when approaching the PMC frequency. Then, the interaction typically improves the stability of the structural mode. Finally, a parametric study is conducted in the experiment, as well as a linear stability analysis. The study provides experimental evidence that stability control of the structural mode is the key to suppressing VIV and eliminating the lock-in phenomenon.
通过被动模态控制消除涡激振动中的锁定现象
理论分析和数值结果表明,涡流诱导振动(VIV)中的频率锁定是由结构模态的不稳定性引起的,而不是对外部激励的共振响应。然而,目前还缺乏支持相关理论研究成果的实验证据。本研究调查了在雷诺数 $Re = 60$ 和 $Re = 40$ 条件下使用被动模态控制器(PMC)抑制圆柱体 VIV 的情况,通过实验来区分稳定和不稳定唤醒模式的影响。实施 PMC 前后的对比分析表明,在雷诺数为 $Re = 60$ 时,振动幅度显著减小,锁定现象消失。控制后的振动频率紧跟涡流脱落频率,而流场的动态模式分解显示唤醒模式占主导地位。在 $Re = 40$ 时,振动消除,流场趋于稳定。此外,还通过线性稳定性分析研究了 PMC 实施前后耦合系统的根位置。结果表明,PMC 可以改变原始系统的动态特性,使结构模式和 PMC 模式在接近 PMC 频率时耦合。然后,相互作用通常会提高结构模式的稳定性。最后,在实验中进行了参数研究和线性稳定性分析。研究提供的实验证据表明,结构模式的稳定性控制是抑制 VIV 和消除锁定现象的关键。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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