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均匀流中展向并列柔膜流固耦合特性数值模拟

NUMERICAL SIMULATION OF THE FLUID-STRUCTURE INTERACTION OF SIDE-BY-SIDE FLEXIBLE MEMBRANES IN UNIFORM FLOW

  • 摘要: 柔性体流固耦合是关于流体与柔性结构之间相互作用的力学问题, 柔性薄膜的拍动特性及多个柔膜间的耦合作用作为该类问题的典型代表, 近年来得到了广泛的关注. 采用基于格子玻尔兹曼和有限元方法的流固耦合数值模拟, 系统研究了均匀来流中雷诺数Re = 200条件下, 不同间距比(Dz)的两个及多个展向并列前缘固定后缘自由拍动柔膜的动力学特性与涡结构演化规律. 研究发现, Dz≤0.2的小间隙比下, 并列双膜间狭窄间隙诱导的非对称压力场, 致使拍动模态由单个柔膜的展向内外侧对称拍动转变为内侧(靠近间隙侧)拍动幅值远大于外侧的展向非对称拍动. 随着Dz的增大, 柔膜间的相互作用减弱, 尾缘的拍动幅值、柔膜动能和应变能逐渐减小, 最终趋于单膜对应值. 两并列柔膜各自诱导形成一个涡系结构, 在向下游传播的过程中逐渐融合为一个整体, 融和所发生的位置随Dz的增大而逐渐后移. 在流固耦合作用下, 并列多柔膜的拍动幅值呈现内侧高于外侧的展向不均匀分布. 其拍动特性及诱导涡系结构的演化规律与双柔膜类似, 但呈现出复杂的展向非同步特性.

     

    Abstract: The fluid-structure interaction of flexible bodies is a mechanical problem concerning the interaction between fluids and flexible structures. The flapping characteristics of flexible membranes and the coupling effects among multiple membranes, as typical representatives of this class of problems, have received extensive attention in recent years. Using a fluid-structure interaction numerical method based on the lattice Boltzmann and finite element methods, this study systematically investigates the dynamic characteristics and vortex structure evolution of two and multiple side-by-side arranged flapping membranes with fixed leading edges and free trailing edges in a uniform flow at a Reynolds number of Re = 200, under different distance ratios (Dz). The study finds that at small distance ratios (Dz≤0.2), the asymmetric pressure field induced by the narrow gap between the side-by-side membranes causes the flapping mode to shift from the symmetric flapping of a single membrane to deflected flapping. The flapping amplitude on the gap side is significantly larger than that on the outer side. As Dz increases, the interaction between the membranes weakens. The trailing-edge flapping amplitude, membrane kinetic energy, and strain energy gradually decrease, eventually approaching the corresponding values for a single isolated membrane. Each side-by-side membrane induces the formation of a vortex system structure, which gradually merge into a single entity as they propagate downstream. The location of this merging progressively shifts downstream as Dz increases. Under the effect of fluid-structure interaction, the flapping amplitudes of multiple side-by-side membranes exhibit a spanwise non-uniform distribution, being higher on the inner side than on the outer side. Their flapping characteristics and the evolution laws of the induced vortex structures are similar to those of two membranes, but they exhibit complex spanwise non-synchronization characteristics.

     

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