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首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Numerical study on deposition of particles in a 90 degrees bend in the presence of swirling flow using Eulerian-Lagrangian method
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Numerical study on deposition of particles in a 90 degrees bend in the presence of swirling flow using Eulerian-Lagrangian method

机译:欧拉 - 拉格朗日方法在旋转流动存在下90度弯曲中粒子沉积的数值研究

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An Eulerian-Lagrangian method has been used to study deposition and penetration of particles in a 90 bend in the presence of swirling flow. Presence of bends and curved pipes is inevitable for industrial applications and deposition of particles in curved pipes is a commonplace phenomenon and may reduce system efficiency or cause erosion on the bend wall. The main objective of this study is to understand if deposition of particles is affected by imposing swirl to fluid flow. The simulations are performed using commercial CFD code Ansys Fluent and RSM turbulent model is employed for all simulations. Swirl was generated using internal spiral vanes which were placed on the inner wall of the pipe. Different heights for vanes and different swirling pitches were used to see how they affect swirl intensity and deposition efficiency. Deposition efficiency is reported as function of particle stokes number. It was found that both lowering swirling pitch and increasing vanes' heights increase swirl intensity and higher swirl intensities reduce deposition rates for wide range of stokes numbers. The results show that increasing vanes' heights have better effect on reduction of deposition efficiency than lowering swirling pitch. Another important finding of this study was that larger particles with higher stokes numbers have more predictable behavior in swirling flow and all ranges of swirl intensities reduce deposition rate of these particles. (C) 2017 Published by Elsevier B.V.
机译:eulerian-lagrangian方法用于研究旋转流动的90弯曲中颗粒的沉积和渗透。弯曲和弯曲管的存在对于工业应用是不可避免的,并且弯曲管中的颗粒的沉积是一种常见的现象,并且可以降低系统效率或导致弯曲壁上的侵蚀。本研究的主要目的是理解,如果粒子的沉积是通过对流体流动施加的影响。使用商业CFD代码来执行模拟,ANSYS流畅,并为所有模拟采用RSM湍流模型。使用内部螺旋叶片产生旋流,该螺旋叶片放置在管道内壁上。用于叶片和不同旋转间距的不同高度用于了解它们如何影响旋流强度和沉积效率。沉积效率报告为粒子斯托克斯号的功能。结果发现,降低旋转间距和增加的叶片高度增加旋流强度,更高的旋涡强度降低了广泛的斯托克斯号码的沉积速率。结果表明,随着降低旋转间距,增加的叶片高度具有更好的影响沉积效率。该研究的另一个重要发现是具有较高斯托克斯数的较大粒子在旋流中具有更高可预测的行为,并且所有涡流强度范围都会降低这些颗粒的沉积速率。 (c)2017年由Elsevier B.V发布。

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