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Studies on the performance of a hydrocyclone and modeling for flow characterization in presence and absence of air core

机译:研究水力旋流器的性能以及在有空芯存在和不存在空芯的情况下进行流量表征的模型

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摘要

Hydrocyclones are getting more and more interest from various industries. They are widely used to separate particulates from liquid at high throughput because of their advantages like simple structure, low cost, large capacity and small volume, require little way of maintenance and support structure. Modeling of complex and multiphase flow behavior inside the hydrocyclone is done usually with the help of cornputational fluid dynamic study. Current study involves experimental investigation of separation performance characteristics of the hydrocyclone using new design parameters. For experimental purpose, a new hydrocyclone was designed with insertion of solid rod, at central portion of conical section of hydrocyclone, inside the hydrocyclone. By which air core could be eliminated effectively and hydrocyclone performance is improved. This effect may be observed due to reduction of radial and axial components of velocity and turbulence in the area near the entrance of the vortex finder. Therefore, the flow field characteristics inside the hydrocyclone with no air core become more suitable for separation. Also the effect of flow rate, vortex finder depths, air core and particle interaction were studied experimentally. A new arrangement was suggested to eliminate the air core formed inside the hydrocyclone. In this case, effect of diameter and height of solid rod inserted inside the hydrocyclone with changing total inlet flow rate was studied experimentally. Three-dimensional geometry and meshing of hydrocyclone is created in Gambit, preprocessor of commercial software-Fluent, for hydrodynamic study. (c) 2007 Elsevier Ltd. All rights reserved.
机译:水力旋流器越来越受到各行业的关注。它们具有结构简单,成本低,容量大,体积小的优点,几乎不需要维护和支撑结构,因此被广泛用于高通量从液体中分离颗粒物。水力旋流器内部复杂和多相流动行为的建模通常是在角质层流体动力学研究的帮助下完成的。当前的研究涉及使用新的设计参数对水力旋流器的分离性能特性进行实验研究。为了实验目的,设计了一种新的水力旋流器,在水力旋流器内部的水力旋流器圆锥形部分的中心部分插入了实心杆。通过它可以有效地消除空芯并提高水力旋流器的性能。由于减少了涡流探测器入口附近区域的速度和湍流的径向和轴向分量,因此可以观察到这种效果。因此,没有空芯的水力旋流器内部的流场特性变得更适于分离。还通过实验研究了流速,涡旋探测器深度,空芯和颗粒相互作用的影响。建议采取一种新的布置,以消除形成在水力旋流器内部的空气核心。在这种情况下,实验研究了插入水力旋流器内部的固体棒的直径和高度对总入口流量变化的影响。在商业软件Fluent的预处理程序Gambit中创建了水力旋流器的三维几何形状和网格,用于水动力研究。 (c)2007 Elsevier Ltd.保留所有权利。

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