Computational and experimental study of ionic space charge generated by combined corona-eloctrostatic electrode systems

被引:18
作者
Dumitran, LM [1 ]
Dascalescu, L
Atten, P
Notingher, PV
机构
[1] Univ Bucharest, Lab Elect Mat, Bucharest 060042, Romania
[2] Univ Inst Technol, UPRES, LAII, ESIP,EA 1219, F-16021 Angouleme, France
[3] CNRS, LEMD, F-38042 Grenoble, France
关键词
computational electrostatics; conformal mapping; corona discharge; corona electrodes; electric field; finite-difference method; ionic space charge;
D O I
10.1109/TIA.2005.863913
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Numerical computation of the electric field intensity and space charge density in electrode systems consisting of ionizing and nomonizing elements, connected at the same direct current (de) high-voltage supply and facing a grounded plate, is a difficult problem, which is of interest to several electrostatic processes applications. The aim of the present paper is to demonstrate the effectiveness of an original method of field computation in the analysis of the factors that influence the distribution of the ionic space charge in such combined corona-electrostatic electrode systems. The computations and the experiments were carried out for an ionizing wire of diameter 0.3 mm, located at different distances h (10-30 mm) from a tubular support of diameter 25 mm. Several interelectrode distances (20-45 mm) were simulated. The extension of the zone at the surface of the grounded electrode, which is affected by the space charge, diminishes when reducing the intervals between these elements of the electrode system, and, at similar applied voltage, the density of the corresponding corona current increases. The experimental data were in good agreement with the computed results, validating the accuracy of the numerical method of space-charge calculation in this special electrode configuration.
引用
收藏
页码:378 / 384
页数:7
相关论文
共 23 条
  • [1] Numerical modelling of tribo-charge powder coating systems
    Adamiak, K
    [J]. JOURNAL OF ELECTROSTATICS, 1997, 40-1 : 395 - 400
  • [2] Atten P., 1974, REV G N RAL L LECTRI, V83, P143
  • [3] Bohm J., 1982, ELECTROSTATIC PRECIP
  • [4] Numerical modeling of combined corona-electrostatic fields
    Caron, A
    Dascalescu, L
    [J]. JOURNAL OF ELECTROSTATICS, 2004, 61 (01) : 43 - 55
  • [5] CORONA AND ELECTROSTATIC ELECTRODES FOR HIGH-TENSION SEPARATORS
    DASCALESCU, L
    IUGA, A
    MORAR, R
    NEAMTU, V
    SUARASAN, I
    SAMUILA, A
    RAFIROIU, D
    [J]. JOURNAL OF ELECTROSTATICS, 1993, 29 (03) : 211 - 225
  • [6] NUMERICAL-ANALYSIS OF THE ELECTRIC-FIELD OF ROLL-TYPE ELECTROSTATIC SEPARATORS
    DASCALESCU, L
    [J]. JOURNAL OF ELECTROSTATICS, 1993, 29 (03) : 255 - 267
  • [7] CHARGING OF PARTICULATES IN THE CORONA FIELD OF ROLL-TYPE ELECTROSEPARATORS
    DASCALESCU, L
    MORAR, R
    LUGA, A
    SAMUILA, A
    NEAMTU, V
    SUARASAN, I
    [J]. JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1994, 27 (06) : 1242 - 1251
  • [8] DAVIS JL, 1983, J ELECTROSTAT, V14, P187, DOI 10.1016/0304-3886(83)90006-2
  • [9] 2-D corona field computation in configurations with ionising and non-ionising electrodes
    Dumitran, LM
    Atten, P
    Notingher, PV
    Dascalescu, L
    [J]. JOURNAL OF ELECTROSTATICS, 2006, 64 (3-4) : 176 - 186
  • [10] HUGHES JF, 1997, ELECTROSTATIC PARTIC