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A Numerical and Experimental Study on a Cyclone Separator for Difficult Operating Conditions

机译:旋风分离器用于困难操作条件的数值和实验研究

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Considering the design high efficiency cyclone, the important thing to note is to minimize the pressure drop with the enhancement of efficiency of dust collection. Thus the numerical and experimental study has been made for the development of high efficiency cyclone dust separator applicable to the extreme environments of high pressure of 6 bar and temperature up to 400°C. The main objective of this study is to develop a handy and reliable computer program and thereby to figure out the physical mechanism of dust collection for high temperature and pressure condition. The calculated results predict well the general trend and its magnitude of the experimentally measured pressure drop with the condition of increased pressure and temperature as a function of flow rate. Further, experiment shows that the increase of pressure and temperature generally affect significantly the collection efficiency of fine particle less than 10 microns but the effect of pressure and temperature appears contrary each other. That is, the increase of pressure increases the collection efficiency, while the increase of the temperature results in the decrease of the efficiency over a certain range of flow rate. This is explained well by the variation of the gaseous density and viscosity effect on the drag force and also confirmed successfully by the result of numerical calculation. Therefore the decrease of fractional collection efficiency caused by the high operating temperature can be remedied by the increase of operating pressure. In order to investigate in more detail the effect on the physics of collection efficiency, a series of parametric numerical investigations are performed in terms of major cyclone design or operational parameters such as tangential velocity, vortex finder length and diameter. Tangential velocity plays an important role in collecting particles as different cyclone dimensions. And the length of vortex finder has relatively insignificant effect on collection characteristics but the diameter of vortex finder plays an important role for the enhancement of collection efficiency.
机译:考虑到设计高效率旋风,重要的是要尽量减少压力效率的压力下降。因此,已经为高效旋风粉尘分离器进行了数值和实验研究,适用于6巴的高压的极端环境,温度高达400°C。本研究的主要目标是开发一种方便可靠的计算机程序,从而弄清楚灰尘收集的物理机制,用于高温和压力条件。计算结果预测了通过增加压力和温度的条件来预测实验测量的压降的一般趋势及其大小,随着流速的函数而增加的压力和温度。此外,实验表明,压力和温度的增加一般会影响小于10微米的细粒的收集效率,但压力和温度的效果相互呈现。也就是说,压力的增加会增加收集效率,而温度的增加导致在一定范围内的效率降低。通过对拖曳力的气态密度和粘度效应的变化来解释良好,并且通过数值计算成功证实。因此,由高工作温度引起的分数收集效率的降低可以通过增加的操作压力来弥补。为了更详细地调查对收集效率的物理学的影响,就主要旋风设计或操作参数(例如切向速度,涡旋发现器长度和直径)进行一系列参数数值研究。切向速度在收集颗粒作为不同的旋风​​尺寸时起着重要作用。涡旋发现器的长度对收集特性具有相对微不足道的影响,但涡旋发现者的直径对提高收集效率起着重要作用。

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