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Selective collection of fine particles by water drops

机译:水滴选择性收集细小颗粒

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This study was concerned with the interaction between a gaseous dispersion of fine particles travelling in the horizontal direction and discrete drops of water falling vertically through the dispersion. A simple analytical model of the particle-drop collision was developed to describe the particle recovery by the drops as a function of the water flux, covering two extremes of relative velocity between the particles and drops. The Discrete Element Method was used to validate the analytical model. Further validation of the model and insights were obtained through experimental studies. The physical process of wetting was observed to be important in influencing the tendency of particles to become engulfed by the drops of water, or to either adhere to the drops or by-pass the drops altogether. Hydrophilic particles were readily engulfed while hydrophobic particles, at best, adhered to the surface of the drop, or failed to attach. Moreover, the recovery of the hydrophilic silica particles was significantly higher than the recovery of hydrophobic coal particles, with the selectivity ratio approximately 1.5. Spherical ballotini particles were the most sensitive, with a notable increase in recovery when cleaned, and evidence of increased recovery with increasing particle size. The recovery of irregular shaped silica flour particles, however, was largely independent of the particle size. A similar result was observed for irregular coal particles, though the recoveries were all lower than relatively more hydrophilic ballotini or silica flour.
机译:这项研究涉及沿水平方向传播的细颗粒的气态分散体与垂直通过该分散体的离散水滴之间的相互作用。建立了粒子与液滴碰撞的简单分析模型,以描述液滴与水通量的函数关系,涵盖了粒子与液滴之间相对速度的两个极端。离散元方法用于验证分析模型。通过实验研究获得了模型的进一步验证和见解。观察到润湿的物理过程对影响颗粒被水滴吞没,粘附或滴落或完全绕过水滴的趋势很重要。亲水性粒子容易被吞噬,而疏水性粒子充其量只能附着在液滴表面或无法附着。此外,亲水性二氧化硅颗粒的回收率显着高于疏水性煤颗粒的回收率,选择性比约为1.5。球形ballotini颗粒最敏感,清洗后回收率显着增加,并且有证据表明随着粒径的增加回收率会增加。然而,不规则形状的硅粉颗粒的回收率在很大程度上与粒度无关。对于不规则煤颗粒,观察到了相似的结果,尽管回收率均低于相对亲水性更高的巴洛蒂尼或二氧化硅粉。

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