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Investigation of granular surface roughness effect on electrostatic charge generation

机译:粒状表面粗糙度对静电电荷产生的研究

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Electrostatic charge generation is a multivariable and complex issue whose working mechanism has never been fully understood. The objective of this paper is to investigate the effect of granule surface roughness on electrostatic charge generation. Two kinds of granule material, Polyvinyl chloride (PVC) and polypropylene (PP) were used with the granule size of 4 mm diameter, 2 mm height and the shape was cylinder or semi-cylinder. The working surfaces were grounded and roughness ranged from 0.140 to 8.600 mu m. It was found that uneven surfaces tended to give rise to voids between two solids, where air stored in the voids was able to accelerate discharging. With the same roughness, PVC tended to generate more electrostatic charge than PP by one order of magnitude. For both materials, electrostatic charge generation first increased with surface roughness and then decreased. The maximum electrostatic charge generated was found to occur when the effects of interaction, contact area and voids discharging were at equilibrium. With the combined effect of humidity, surface roughness and contact area, highest electrostatics generation occurred near the mid-roughness tested in this work. Humidity had more effect on electrostatic charge generation as the granule working surface had lower roughness. (C) 2017 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:静电电荷产生是一种多变量和复杂的问题,其工作机制从未得到完全理解。本文的目的是研究颗粒表面粗糙度对静电电荷产生的影响。使用两种颗粒材料,聚氯乙烯(PVC)和聚丙烯(PP)与颗粒尺寸为4mm,2mm高,形状为圆柱形或半圆柱。工作表面接地,粗糙度范围为0.140至8.600 mu m。发现不均匀的表面倾向于在两个固体之间产生空隙,其中存储在空隙中的空气能够加速放电。具有相同的粗糙度,PVC倾向于通过单个数量级产生比PP更多的静电电荷。对于两种材料,静电电荷发电首先用表面粗糙度增加,然后减少。发现产生的最大静电电荷在相互作用,接触面积和空隙放电的效果处于平衡时发生。随着湿度,表面粗糙度和接触面积的综合影响,在这项工作中测试的中粗糙度附近发生最高的静电学。随着颗粒工作表面较低的粗糙度,湿度对静电电荷产生更多的影响。 (c)2017年日本粉末科技学会。由elsevier b.v发表。和日本粉末科技会。版权所有。

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