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Prediction of Flow Pattern Behaviour Behind Square Cylinder using Computational Fluid Dynamic (CFD) Approach

机译:使用计算流体动力学(CFD)方法预测方圆柱后的流动模式行为

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The aim of this study is to investigate the flow pattern behaviour by using computational fluid dynamic (CFD) approach. The square profile was chosen in purpose to have a better understanding of the behaviour which is relevant to the engineering applications. Numerical simulation was performed on various turbulence models with the range of Reynolds number from 6000 to 80000 with three incidence angles of 0°, 15°, and 30°. Mesh dependency study was performed with coarse, base and fine meshes. Fine mesh and standard k–ω were chosen asthe best meshing and turbulence model to perform the simulation due to the capability in terms of less absolute error on aerodynamic coefficient and clear flow visualisation capture. It was found that the average values of Strouhal number for square profile was 0.12. For this particular study, the changes of incidence angle and variation of Reynolds number gave a significant flow pattern behind a square profile. The size of the vortices became smaller and closer to the structure asthe incidence angle increased. At high Reynolds number, it was also observed that the size of the vorticesincreased progressively. The prediction of flow pattern behind square cylinder was successfully determined by using CFD approach.
机译:本研究的目的是通过使用计算流体动态(CFD)方法来研究流动模式行为。以方形的方式为目的选择更好地了解与工程应用相关的行为。在各种湍流模型上进行数值模拟,其中雷诺数为6000至80000,具有0°,15°和30°的三个入射角。用粗糙,基础和细网格进行网格依赖性研究。选择精细网格和标准K-ω的最佳啮合和湍流模型,以执行模拟,因为在空气动力学系数和清晰的流量可视化捕获方面的绝对误差方面的能力。结果发现,方形轮廓的Strouhal数的平均值为0.12。对于这种特定的研究,雷诺数的入射角和变化的变化在方形轮廓后面产生了显着的流动模式。涡流的尺寸变得较小,更接近触发角增加的结构。在高雷诺数,也观察到速度递增的漩涡的大小。通过使用CFD方法成功确定了方圆柱后面的流动图案的预测。

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