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Numerical Modeling of Highly Swirling Flows in a Through-Flow Cylindrical Hydrocyclone

机译:贯穿式圆柱形水力旋流器中高涡流的数值模拟

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This article aims to identify the most appropriate numerical methodology for simulating hydrocyclone flows with high swirl numbers.The numerical results are validated against the tangential velocity measurements from a cylindrical hydrocyclone with a swirl number of 8.1,which is twice the typical swirl magnitude of industrial hydrocyclones.The linear and quadratic formulations of the Reynolds stress transport (RST) model are used to simulate the anisotropic swirling turbulent flow three-dimensionally in the commercial software package Fluent~(?).The tangential velocity profiles predicted by the quadratic RST model are in good agreement with experimental data.They also show Rankine vortex patterns over the entire flow domain.In contrast,the linear RST model fails to predict this important swirl flow feature.In addition,both models predicted a complex axial flow reversal pattern not previously reported in hydrocyclones.This study clearly shows that the quadratic RST model is preferable for future hydrocyclone simulations,especially when the swirl number is large.All necessary physical and numerical parameters used to obtain converged results are given in this article.
机译:本文旨在寻找最合适的数值方法来模拟具有高旋流数的旋流器流动。数值结果与旋涡数为8.1的圆柱形旋流器的切向速度测量结果相符,这是工业旋液分离器典型旋涡量的两倍在商业软件包Fluent〜(?)中,使用雷诺应力传递(RST)模型的线性和二次公式三维模拟了各向异性涡旋湍流,二次方RST模型预测的切向速度分布在与实验数据具有很好的一致性。它们还显示了整个流域内的兰金旋涡模式。相比之下,线性RST模型无法预测此重要的旋流特征。此外,这两个模型都预测了以前未报道的复杂的轴向流动反转模式。这项研究清楚地表明,二次RST模型是优选的。或未来的水力旋流器模拟,尤其是在旋流数较大时。本文提供了用于获得收敛结果的所有必要物理和数值参数。

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