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首页> 外文期刊>European Journal of Mechanics, B. Fluids >Computation of fluid flow in double sided cross-shaped lid-driven cavities using Lattice Boltzmann method
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Computation of fluid flow in double sided cross-shaped lid-driven cavities using Lattice Boltzmann method

机译:用格子玻璃法测定双面交叉驱动腔中流体流动的计算

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This work implements Lattice Boltzmann method to compute flows in double-sided cross-shaped lid driven cavities. Firstly, a complicated geometry which is a symmetrized version of the staggered lid-driven cavity namely, the double-sided cross-shaped lid-driven cavity with antiparallel uniform wall motion is studied employing Single as well as Two Relaxation time models. The streamline patterns and vorticity contours obtained for low to moderate Reynolds numbers (150-1000) are compared with published results and found to be in good accordance. Next, this code is extended to simulate flows in a double-sided cross-shaped lid-driven cavity with parallel uniform wall motion. The effect of three dimensionality is also studied for low Reynolds numbers. Lattice Boltzmann method is then used to investigate the oscillating double-sided cross-shaped lid-driven cavity with antiparallel and parallel wall motions. The movement and formation of primary and secondary vortices have been well captured with the variation of Reynolds numbers and oscillating frequencies for uniform and oscillating wall motions. Reasonable agreements with the established results have been observed for the double-sided cross-shaped cavity with uniform wall motions, while new results have been obtained in the case of oscillating wall motions. (C) 2018 Elsevier Masson SAS. All rights reserved.
机译:这项工作实现了格子Boltzmann方法来计算双面交叉盖驱动腔中的流动。首先,作为交错盖驱动腔的对称版本的复杂几何形状即,采用双面交叉驱动腔的双面交叉盖驱动腔采用单一以及两个放松时间模型研究。将用于低至中等雷诺数(150-1000)获得的流线图案和涡流轮廓与公开的结果进行比较,发现符合要求。接下来,将该代码扩展以模拟具有平行均匀壁运动的双面十字形盖驱动腔中的流动。对于低雷诺数,还研究了三维维度的效果。然后使用格子玻璃板方法来研究振荡双面交叉的盖驱动腔,具有反平行和平行的壁运动。雷诺数的变化和振荡频率的变化很好地捕获了初级和次级涡流的运动和形成,用于均匀和振动壁运动。对于具有均匀壁运动的双面交叉形腔,观察到与已建立的结果的合理协议,而在振荡壁运动的情况下已经获得了新的结​​果。 (c)2018年Elsevier Masson SAS。版权所有。

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