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Empirical sensitivity of two-dimensional nonlinear wake-cylinder oscillators in cross-flow/in-line vortex-induced vibrations

机译:二维非线性唤醒缸振荡器在横流/在线涡旋振动中的经验敏感性

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Phenomenological wake-cylinder oscillators have been extensively implemented for vortex-induced vibration (VIV) predictions. Although such models capture fundamental VIV phenomena, the maximum response estimations and comparisons with different experimental data reveal some quantitative discrepancies due to the model empiricism embedding some uncertainties through system variables. This vital issue has not been well addressed in the literature of VIV modelling. This paper presents a new comprehensive investigation into the sensitivity to empirical input variables of nonlinear wake-cylinder oscillators simulating the two-dimensionally coupled cross-flow/in-line VIV and amplified mean displacements of a flexibly mounted circular cylinder in uniform flows. The fluid structure coupling terms are advanced by accounting for the higher-order nonlinear effects of fluctuating lift-drag forces and steady-drag dynamic magnifications, depending on the relative flow-cylinder velocities. A random sampling and variance-based sensitivity studies are carried out using Monte Carlo simulations which are computationally efficient based on the reduced-order model. This enables a large series of parametric examinations. Individual contribution, relative importance, coupling and interdependence of multiple input variables affecting output uncertainties are qualitatively and quantitatively evaluated. The Reynolds number dependence is also captured by correlating the wake and hydrodynamic coefficients with experimental data. Parametric studies highlight greater variations in the predicted amplitudes and mean displacements of the cylinder two-degree-of-freedom VIV with a lower mass ratio. Numerical findings allow for the identification of a few most influential variables to be treated as the empirically tuned coefficients. The improved understanding of model versatility and sensitivity enhances the calibration confidence and the response predictability with a reduced computational effort. (C) 2018 Elsevier Ltd. All rights reserved.
机译:针对涡旋诱导的振动(VIV)预测,已经广泛地实施了现象学唤醒缸振荡器。虽然这种模型捕获了基本的VIV现象,但由于模型经验主义通过系统变量嵌入了一些不确定性的模型经验主义,最大响应估计和比较揭示了一些定量差异。在VIV建模的文献中,这一重要问题并未得到很好的解决。本文介绍了对非线性唤醒缸振荡器的敏感性的新综合研究,模拟了三维耦合的交叉流量/直线VIV和柔性地流动的柔性圆柱体的扩增平均位移。通过对波动升降力和稳定拖动动态放大倍率的高阶非线性效应来提高流体结构耦合术语,这取决于相对流动缸速度。使用蒙特卡罗模拟进行随机采样和基于方差的敏感性研究,该模拟基于降低阶模型计算效率。这使得能够大量的参数检查。多个输入变量影响输出不确定性的多个输入变量的个性贡献,具有定性和定量评估的多个输入变量。还通过将唤醒和流体动力系数与实验数据相关联来捕获雷诺数依赖性。参数研究突出了具有较低质量比的预测幅度和汽缸两度自由度VIV的平均位移的更大变化。数值发现允许识别若有一些最有影响力的变量被视为经验调谐系数。改进对模型多功能性和灵敏度的理解提高了校准置信度和响应可预测性,并通过减少的计算工作。 (c)2018年elestvier有限公司保留所有权利。

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