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Numerical analysis of the flow field and separation performance in hydrocyclones with different vortex finder wall thickness

机译:不同涡旋发现器壁厚的氢旋流器流域和分离性能的数值分析

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High separation sharpness of hydrocyclones is an ultimate goal for the classification process and has attracted considerable attention. The existence of some special flow patterns, such as short-circuit flow and circulation flow, play an important role in the separation process and have not been clearly understood. This paper presents a numerical study of the effects of vortex finder wall thickness on the flow field and separation performance. More importantly, the formations and effects of short-circuit flow, circulation flow, and axial velocity wave zone (AVWZ) were investigated and understood. The simulation results were analyzed in terms of pressure drop, water velocity, separation efficiency, and particle distribution. The results indicate that a thicker vortex finder wall could reduce pressure drop, tangential velocity magnitudes, and the flow rates of both short-circuit flow and circulation flow but increase the fluctuations of axial and radial velocities especially beneath the vortex finder where the AVWZ is formed. The leakage effect of short-circuit flow on sub-coarse particles is less significant than the fluctuation effect of AVWZ. The circulation flow in pre-separation space is beneficial to re separate the sub-fine and sub-coarse particles to improve the separation sharpness. Consequently, the hydrocyclone with a thin-walled vortex finder is more beneficial for efficient classification. (C) 2019 Elsevier B.V. All rights reserved.
机译:水力旋流器的高分离锐度是分类过程的最终目标,并引起了相当大的关注。存在一些特殊的流动模式,例如短路流动和循环流动,在分离过程中起重要作用,并且没有清楚地理解。本文介绍了涡旋发现器壁厚对流场和分离性能影响的数值研究。更重要的是,研究了短路流动,循环流动和轴向速度波区(AVWZ)的形成和效果。在压降,水速,分离效率和颗粒分布方面分析了模拟结果。结果表明,较厚的涡旋发现器壁可以降低压降,切向速度大小,以及短路流动和循环流的流速,而是提高轴向和径向速度的波动,特别是在形成AVWZ的涡旋发现器下方。短路流量对亚粗颗粒的泄漏效应不如AVWZ的波动效应较小。预分离空间中的循环流动有利于将次细和粗颗粒分离以改善分离清晰度。因此,具有薄壁涡旋发现器的水力旋流器更有利于有效分类。 (c)2019年Elsevier B.V.保留所有权利。

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