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A computational study of drag reduction and vortex shedding suppression of flow past a square cylinder in presence of small control cylinders

机译:在存在小控制缸的情况下流过方形缸的气流的减阻和涡流抑制的计算研究

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This article presents a two-dimensional numerical study of the unsteady laminar flow from a square cylinder in presence of multiple small control cylinders. The cylinders are placed in an unconfined medium at low Reynolds numbers (Re = 100 and 160). Different flow phenomena are captured for the gap spacings (g = s/D, where s is the surface-to-surface distance between the main cylinder and small control cylinders and D is the size of the main cylinder) between 0.25 – 3 and angle of attack (θ) ranging from 300 to 1800. Numerical calculations are performed by using a lattice Boltzmann method. In this paper, the important flow physics of different observed flow patterns in terms of instantaneous vorticity contours visualization, time-trace analysis of drag and lift coefficients and power spectra analysis of lift coefficient are presented and discussed. Drag reduction and suppression of vortex shedding is also discussed in detail and compared with the available experimental and numerical results qualitatively as well as quantitatively. In addition, the mean drag coefficient, Strouhal number, root-mean-square values of the drag and lift coefficients are determined and compared with a single square cylinder without small control cylinders. We found that the drag is reduced 99.8% and 97.6% for (θ, g)?=?(300, 3) at Re = 100 and 160, respectively.
机译:本文提出了在存在多个小型控制气缸的情况下,来自方形气缸的非恒定层流的二维数值研究。将圆柱体以低雷诺数(Re = 100和160)放置在无限制的介质中。间隙间隔(g = s / D,其中s是主缸和小型控制缸之间的表面到表面距离,D是主缸的大小)之间捕获的不同流动现象在0.25 – 3和角度之间攻击角度(θ)从30 0 到180 0 。通过使用格子玻尔兹曼方法进行数值计算。本文介绍并讨论了在瞬时涡度轮廓可视化,阻力和升力系数的时间轨迹分析以及升力系数的功率谱分析方面,不同观测流型的重要流动物理学。还详细讨论了减阻和涡流脱落的抑制,并定性和定量地与可用的实验和数值结果进行了比较。另外,确定平均阻力系数,斯特劳哈尔数,阻力和升力系数的均方根值,并将其与没有小控制缸的单方缸进行比较。我们发现,在Re = 100和160时,(θ,g)?=?(30 0 ,3)的阻力分别减小了99.8%和97.6%。

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