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Detached eddy simulation of flow around rectangular bodies with different aspect ratios

机译:纵横比不同的矩形体绕流的分离涡模拟

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As wind flows around a sharp-edged body, the resulting separated flow becomes complicated, with multiple separations and reattachments as well as vortex recirculation. This widespread and unpredictable phenomenon has long been studied academically as well as in engineering applications. In this study, the flow characteristics around rectangular prisms with five different aspect ratios were determined through wind tunnel experiments and a detached eddy simulation, that placed the objects in a simulated deep turbulent boundary layer at Re = 4.6 x 10(4). A series of rectangular prisms with the same height (h = 80 mm), different longitudinal lengths (1 = 0.5h, h, and 2h), or different transverse widths (w = 0.5h, h, and 2h) were employed to observe the effects of the aspect ratio. Furthermore, five wind directions (0 degrees, 10 degrees, 20 degrees, 30 degrees, and 45 degrees) were selected to observe the effects of the wind direction. The simulated results of the surface pressure were compared to the wind tunnel experiment results and the existing results of previous papers. The vortex and spectrum were also analyzed to determine the detailed flow structure around the body. The paper also highlights the pressure distribution around the rectangular prisms with respect to the different aspect ratios. With an increasing transverse width, the surface suction pressure on the top and side surfaces becomes stronger. In addition, depending on the wind direction, the pressure coefficient experiences a large variation and can even change from a negative to a positive value on the side surface of the cube model.
机译:当风在锋利的边缘周围流动时,产生的分离流变得复杂,具有多个分离和重新附着以及涡流再循环。长期以来,这种广泛且不可预测的现象已经在学术上以及在工程应用中进行了研究。在这项研究中,通过风洞实验和独立涡旋模拟确定了具有五个不同纵横比的矩形棱柱周围的流动特性,该实验将物体放置在Re = 4.6 x 10(4)的模拟深湍流边界层中。使用一系列具有相同高度(h = 80 mm),不同纵向长度(1 = 0.5h,h和2h)或不同横向宽度(w = 0.5h,h和2h)的矩形棱镜进行观察长宽比的影响。此外,选择了五个风向(0度,10度,20度,30度和45度)以观察风向的影响。将表面压力的模拟结果与风洞实验结果和先前论文的现有结果进行了比较。还分析了涡旋和频谱以确定人体周围的详细流动结构。本文还重点介绍了不同长宽比下矩形棱镜周围的压力分布。随着横向宽度的增加,顶表面和侧表面上的表面抽吸压力变得更强。此外,根据风向,压力系数会经历较大的变化,甚至在立方模型的侧面甚至会从负值变为正值。

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