Exploring the mechanism of inter-particle charge diffusion

被引:9
作者
Grosshans, Holger [1 ]
Papalexandris, Miltiadis, V [2 ]
机构
[1] PTB, Bundesallee 100, D-38116 Braunschweig, Germany
[2] Catholic Univ Louvain, Inst Mech Mat & Civil Engn, B-1348 Louvain La Neuve, Belgium
关键词
CONTACT ELECTRIFICATION; ELECTROSTATIC FORCES; POWDER; SIMULATION; TURBULENCE; TRANSPORT; MODEL;
D O I
10.1051/epjap/2018170360
中图分类号
O59 [应用物理学];
学科分类号
摘要
Dispersed solid particles in wall-bounded flows may get electrified during particle-wall collisions due to triboelectric effects. Subsequently, the electrostatic charge migrates from the near-wall regions to the bulk of the flow through the dynamics of the particles (particle-bound charge transport) and charge transfer during collisions between particles (inter-particle charge diffusion). In this paper, we explore the physics underlying the mechanism of inter-particle charge diffusion, which remains not well understood, by means of numerical simulations. We investigated the efficiency of the charge transport within the particulate phase via this mechanism and propose a time-scale for its characterization for particular systems. The considered parameters of these systems included the particle number density and charge as well as their mechanical and electrical properties. It was found that both an increase of the material density of the particles or of their number density results in an enhanced inter-particle charge diffusion and, thus, a reduction of its time scale. Moreover, if only the number density is high but the material density is kept low, then inter-particle charge diffusion may even become the dominant wall-normal charge transport mechanism. Further, in case some particles carry a high charge they are accelerated towards uncharged particles through electrostatic forces which leads to an efficient charge redistribution.
引用
收藏
页数:9
相关论文
共 27 条
[11]   A model for the non-uniform contact charging of particles [J].
Grosshans, Holger ;
Papalexandris, Miltiadis V. .
POWDER TECHNOLOGY, 2017, 305 :518-527
[12]   Large Eddy simulation of triboelectric charging in pneumatic powder transport [J].
Grosshans, Holger ;
Papalexandris, Miltiadis V. .
POWDER TECHNOLOGY, 2016, 301 :1008-1015
[13]   Evaluation of the parameters influencing electrostatic charging of powder in a pipe flow [J].
Grosshans, Holger ;
Papalexandris, Miltiadis V. .
JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES, 2016, 43 :83-91
[15]   Applications of Electrified Dust and Dust Devil Electrodynamics to Martian Atmospheric Electricity [J].
Harrison, R. G. ;
Barth, E. ;
Esposito, F. ;
Merrison, J. ;
Montmessin, F. ;
Aplin, K. L. ;
Borlina, C. ;
Berthelier, J. J. ;
Deprez, G. ;
Farrell, W. M. ;
Houghton, I. M. P. ;
Renno, N. O. ;
Nicoll, K. A. ;
Tripathi, S. N. ;
Zimmerman, M. .
SPACE SCIENCE REVIEWS, 2016, 203 (1-4) :299-345
[16]   The role of changing contact in sliding triboelectrification [J].
Ireland, Peter M. .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2008, 41 (02)
[17]  
Klinkenberg A., 1958, Electrostatics in the petroleum industry: the prevention of explosion hazards
[18]  
a Royal Dutch/Shell research and development report
[20]  
Lenard P., 1892, WIED ANN, V46, P584, DOI DOI 10.1002/ANDP.18922820805