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EIGEN-SOLUTION FOR FLOW INDUCED OSCILLATIONS (VIV GALLOPING) REVEALED AT THE FLUID-STRUCTURE INTERFACE

机译:流体结构界面揭示了流动引起的振动(VIV和驰豫)的本征解决方案

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Consistent rather than heuristic nondimensionalization of the fluid and oscillator dynamics in fluid-structure interaction, leads to decoupling of amplitude from frequency response. Further, recognizing that the number of governing dimensionless parameters should decrease, rather than increase, due to the fluid-structure synergy at the interface, an eigen-relation is revealed for a cylinder in Flow Induced Oscillations (FIO), including VIV and galloping: m_A/m_(bod)=C_A/m*=1/f*~2-1. It shows that, for a given dimensionless oscillation frequency f*, the ratio of real added-mass to oscillating-mass is fully defined. Amplitude decoupling and the eigen-relation, lead to explicit expressions for coefficients, phases, and magnitudes of total, added-mass, and in-phase-with-velocity forces; revealing their dependence on the generic Strouhal number (St_n=f_n*), damping, and Reynolds. Heuristic dimensionless parameters, (mass-damping, reduced velocity, mass-ratio, force coefficients) used in VIV data presentation are not needed. Theoretical derivations and force reconstruction match nearly perfectly with extensive experimental data collected over a decade in the Marine Renewable Energy Laboratory (MRELab) at the University of Michigan using four different oscillator test-models. Beyond the single frequency response model, the residuary force is derived by comparison to experiments. Established facts regarding VIV and galloping and new important observations are readily explained: (1) The effects of Strouhal, damping-ratio, mass-ratio, Reynolds, reduced velocity, and stagnation pressure. (2) The cause of expansion/contraction of the VIV range of synchronization. (3) The corresponding slope-change in oscillation frequency with respect to the Strouhal frequency of a stationary-cylinder. (4) The critical mass-ratio m * implying perpetual VIV. (5) The significance of the natural frequency of the oscillator in vacuo. (6) The effect of vortices on VIV and galloping. (7) The magnitude of vortex forces. (8) The indirect and direct vortex effects. (9) The unification of VIV and galloping onset. (10) Defining the next step in higher order theories for VIV and galloping beyond the eigen-relation.
机译:流体与结构相互作用中流体动力学和振子动力学的一致而不是启发式的无量纲化,导致振幅与频率响应解耦。此外,认识到由于界面处的流体结构协同作用,控制无量纲参数的数量应减少而不是增加,因此在流致振荡(FIO)中显示了汽缸的本征关系,包括VIV和疾驰: m_A / m_(bod)= C_A / m * = 1 / f *〜2-1。它表明,对于给定的无量纲振荡频率f *,完全定义了实际附加质量与振荡质量之比。幅度去耦和特征关系导致总力,附加质量和同相速度力的系数,相位和大小的明确表达;揭示了它们对通用Strouhal数(St_n = f_n *),阻尼和雷诺的依赖。不需要在VIV数据表示中使用的启发式无量纲参数(质量阻尼,降低的速度,质量比,力系数)。理论推导和力重建与过去十年在密歇根大学海洋可再生能源实验室(MRELab)使用四种不同的振荡器测试模型收集的大量实验数据几乎完美匹配。除单频响应模型外,还通过与实验比较得出了残余力。关于VIV和奔腾的既定事实以及新的重要观察结果很容易解释:(1)Strouhal,阻尼比,质量比,雷诺,速度降低和停滞压力的影响。 (2)VIV同步范围扩大/缩小的原因。 (3)振荡频率相对于固定气缸的Strouhal频率的相应斜率变化。 (4)临界质量比m *表示永久性VIV。 (5)真空中振荡器固有频率的重要性。 (6)涡流对VIV和舞动的影响。 (7)涡旋力的大小。 (8)间接和直接涡旋效应。 (9)VIV和疾驰发作的统一。 (10)在VIV的高阶理论中定义下一步,并超越本征关系驰gall。

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