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考虑不同柱间质量比的四圆柱涡激振动数值研究

NUMERICAL INVESTIGATION OF VORTEX-INDUCED VIBRATIONS OF FOUR CIRCULAR CYLINDERS CONSIDERING DIFFERENT INTER-CYLINDER MASS RATIOS

  • 摘要: 基于任意拉格朗日-欧拉光滑有限元强耦合算法对正方形排列四圆柱双自由度涡激振动问题进行模拟. 上下游圆柱的柱间质量比设为M = 2.0和0.5, 将固-流质量比m*分为小质量比(m*<5)和大质量比(m*≥5), 分别研究3类工况下多柱涡激振动特性: (1)小质量比组合工况(上下游圆柱均为小质量比); (2)混合质量比组合工况(上下游圆柱分属大质量比和小质量比); (3)大质量比组合工况(上下游圆柱均为大质量比). 数值研究结果表明: 工况(1)中柱体振动轨迹杂乱, 振动响应存在不对称现象; 工况(2)中上游圆柱质量比决定下游圆柱尾涡脱落模式且前者变化导致后者流向振幅突变; 工况(3)中各柱振动响应偏弱, 下游圆柱涡激振动受上游圆柱质量比主导. 总体而言, 上游圆柱质量比较大(M = 2.0)有助于下游圆柱尾涡规则化并抑制后者振幅, 其取值较小(M = 0.5)则会增强钝体尾流紊乱性并加剧下游圆柱振动响应. 研究结果可为浸没多柱体结构优化设计提供参考.

     

    Abstract: Two-degree-of-freedom vortex-induced vibrations (VIV) of four circular cylinders arranged in a square configuration are numerically investigated with a partitioned strong coupling algorithm using an arbitrary Lagrangian-Eulerian smoothed finite-element formulation. The emphasis is placed on the effect of inter-cylinder mass ratio M, which is defined as the ratio of mass of the upstream cylinder to that of the downstream cylinder. Here, M is set to 2.0 and 0.5 and the solid-to-fluid mass ratio m* is categorized into low mass ratio (m*<5) and high mass ratio (m*≥5). To this end, three different cases of the VIV event are examined: (1) the low-mass-ratio case (both upstream and downstream cylinders have low mass ratios); (2) the mixed-mass-ratio case (cylinders in a row have a high mass ratio whereas those in the other row have a low mass ratio); (3) the high-mass-ratio case (both upstream and downstream cylinders have high mass ratios). The relevant numerical results are summarized as follows. In Case (1), the vibration trajectories of all cylinders are disordered and asymmetric responses are clearly observed. In Case (2), the mass ratio of the upstream cylinders governs the vortex-shedding mode of the downstream cylinders and, importantly, changing this ratio leads to abrupt variation in stream-wise amplitude of the downstream cylinders. For Case (3), the vibration responses of all cylinders become relatively weak. It is also found that the mass ratio of the upstream cylinder dominates flow-induced motions of the downstream cylinders. Overall, the larger upstream ratio (M = 2.0) results in the regularization of the downstream cylinders’ wake and also suppresses their vibration amplitudes. In contrast, the smaller upstream mass ratio (M = 0.5) enhances the wake disorder and amplifies the vibration responses of the downstream cylinders. The current findings are expected to offer guidance on the optimized design of multiple immersed cylindrical structures.

     

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