DocumentCode
1493280
Title
Dynamic motion of a conductive particle in viscous fluid under DC electric field
Author
Choi, Changrag ; Yatsuzuka, Kyoko ; Asano, Kazutoshi
Author_Institution
Dept. of Electr. & Inf. Eng., Yamagata Univ., Yonezawa, Japan
Volume
37
Issue
3
fYear
2001
Firstpage
785
Lastpage
791
Abstract
When plastic waste is liquefied for recycling, the impurities present could influence the quality of the reprocessed products. In order to explore the possible method for removing solid impurities using electrostatic forces, the motion of spherical conductive particles under a uniform electric field has been carefully investigated. In this paper, a solid impurity and liquefied plastics are simulated by a conductive spherical particle and viscous insulating liquid, silicone oil, respectively. Experimental results indicate that the particle undergoes repeated motion between the parallel electrodes. The motion of the particle can be divided into four modes: settling on the lower electrode, moving upward, settling on the upper electrode, and moving downward. The higher the applied voltage, the faster the average particle velocity and the shorter the resting time of the particle. The particle accelerates after leaving the electrode and decelerates before reaching the other electrode. This deceleration could be explained by the viscous effect of the liquid layer between the particle and the electrode. The settling mode could be explained by the fact that there is a liquid flow induced by the particle motion and it pushes the particle against the electrode until the flow decreases. It is, therefore, suggested that the hydrodynamic effect is dominant in our case, as well as the electrostatic force
Keywords
electric fields; electrodes; electrohydrodynamics; electrostatics; hydrodynamics; plastics; recycling; silicones; viscosity; DC electric field; average particle velocity; conductive particle; conductive spherical particle; dynamic motion; electrostatic force; electrostatic forces; hydrodynamic effect; impurities; induced liquid flow; liquefied plastics; liquid layer; parallel electrodes; particle motion; plastic waste liquification; recycling; reprocessed products quality; resting time; settling mode; silicone oil; solid impurities removal; solid impurity; spherical conductive particles motion; uniform electric field; viscous effect; viscous fluid; viscous insulating liquid; Dielectric liquids; Electrodes; Electrostatics; Fluid dynamics; Impurities; Oil insulation; Petroleum; Plastic insulation; Recycling; Solid modeling;
fLanguage
English
Journal_Title
Industry Applications, IEEE Transactions on
Publisher
ieee
ISSN
0093-9994
Type
jour
DOI
10.1109/28.924760
Filename
924760
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