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Electrokinetically enhanced pipe flow of coal-water suspensions using a nonintrusive helical anode-cathode geometry.

机译:使用非侵入式螺旋形阳极-阴极几何形状,通过电动方式增强了水-水悬浮液的管道流动。

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摘要

It has been experimentally demonstrated that the application of electrokinetic techniques in the continuous flow of coal-water suspensions within a helical anode-cathode pipe geometry effectively causes a significant reduction in the wall shear stress. This reduction in the frictional force at the cathodic pipe wall surface is attributed to a decrease in the concentration of coal particles in this flow region caused by the migration of negatively charged coal particles towards the anodic surface(s). The disadvantage of flow-intrusive geometries is the reduction in effective flow area as well as an increase in frictional surface area caused by the placement of the anode(s) within the flow region. Experimental data is presented for a non-intrusive helical anodecathode geometry embedded in the pipe wall which shows that a reduction in pumping energy of approximately an order of magnitude is possible. A sample of sub-bituminous black coal fines having a mean particle size of approximately 17 microns was used to prepare coal-water suspensions with a solids concentration of 50%(w/w). The practical and economic implications of this work relate to an enhanced method of long distance transportation of slurries in pipes as well as an alternative technique for continuously separating solid-liquid suspensions.
机译:实验已经证明,电动技术在螺旋形阳极-阴极管几何形状内的煤水悬浮液的连续流动中的应用有效地引起了壁切应力的显着降低。阴极管壁表面摩擦力的这种减小归因于该带电煤颗粒向阳极表面的迁移所引起的该流动区域中煤颗粒浓度的降低。侵入流体的几何形状的缺点是有效流动面积的减小以及由阳极在流动区域内的放置引起的摩擦表面积的增加。给出了嵌入在管壁中的非侵入式螺旋阳极阴极几何形状的实验数据,该数据表明可以将泵浦能量降低大约一个数量级。使用平均粒径约为17微米的次烟煤黑煤粉样品来制备固体浓度为50%(w / w)的煤水悬浮液。这项工作的实际和经济意义涉及到一种在管道中进行长距离泥浆运输的改进方法,以及一种连续分离固液悬浮液的替代技术。

著录项

  • 作者

    Rozakeas P. K.;

  • 作者单位
  • 年度 2007
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  • 原文格式 PDF
  • 正文语种 eng
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