Julien Sirois, Marlène Sanjosé, Fabian Sanchez, V. Brailovski
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引用次数: 0
摘要
本文介绍的工作旨在为创建涡流阻尼结构提供设计指南。实验设计旨在研究平面规则网格结构的几何特性(即金属丝直径、孔隙率和网格间距)对其破涡性能的单独和综合影响。模拟使用商用非稳态 RANS 求解器进行。该模型依靠 Von Karman 街道效应在管道中产生涡流,涡流向下游对流,并与网格阵列相互作用。漩涡分解效率由压降、残余湍流动能、流动均匀性和传输漩涡的大小来表征。导线直径是一个重要的设计杠杆,因为它会影响传送涡流的扭曲程度。增加栅格的数量可以增加压力损失,但当导线直径较小时,栅格对涡流破坏的作用就会受到限制。网格间距的影响很大程度上取决于导线直径和网格排列。例如,尽量减小这一间隙可减少直列配置的压降,但会增加偏移配置的压降。
Vortex-Breakdown Efficiency of Planar Regular Grid Structures—Towards the Development of Design Guidelines
The work presented here aims to provide design guidelines to create vortex-damping structures. A design of experiment was developed to investigate the individual and combined effects of the geometrical properties of planar regular grid structures, i.e., the wire diameter, the porosity, and the inter-grid spacing, on their vortex-breakdown performance. The simulations were carried out using a commercial unsteady RANS solver. The model relies on the Von Karman street effect to generate vortices in a pipe which are convected downstream, where they interact with an array of grids. The vortex-breakdown efficiency is characterized by the pressure drop, the residual turbulent kinetic energy, the flow homogeneity, and the size of the transmitted vortices. The wire diameter is shown to be an important design lever as it affects the level of distortion of the transmitted vortices. Increasing the number of grids augments the pressure loss, but their contribution to vortex breakdown is otherwise limited when the wire diameter is small. The influence of grid spacing strongly depends on the wire diameter and grid alignment. For instance, minimizing this gap reduces the pressure drop for the inline configurations, but increases the pressure drop for the offset configurations.