ELECTROHYDRODYNAMIC PRECIPITATOR FLOW WITH A BARBED PLATE DISCHARGE ELECTRODE

被引:3
|
作者
DAVIDSON, JH [1 ]
MCKINNEY, PJ [1 ]
机构
[1] COLORADO STATE UNIV,DEPT MECH ENGN,FT COLLINS,CO 80523
关键词
Barbed Plate Discharge Electrode - Electric Body Force - Electrohydrodynamic Precipitator Flow;
D O I
10.1080/02786829008959350
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The nonuniform corona discharge in the wire-plate electrostatic precipitator results in a rotational electric body force which is a source of large-scale secondary flows and turbulence within the flow channel. The electrically induced flow causes large increases in diffusivities detrimental to the particle collection process. Since the electrode geometry and the structure of the corona discharge define the magnitude and character of the electric body force, it is theoretically possible to design a discharge electrode which minimizes electrohydrodynamic flow disturbances. As a first step in this direction, a novel planar electrode design in which electrical discharges are configured to reduce the inhomogeneities of the electric body force is experimentally studied in a negative polarity laboratory electrostatic precipitator. Hot-film anemometer measurements of the electrohydrodynamic turbulent velocity field downstream of the plate electrode are compared to those of a conventional wire-plate precipitator. Results confirm that electrode geometry has a significant role in turbulence production. Although there is some evidence that secondary flows are reduced in the planar geometry, spectral analysis of the flow downstream of the electrodes indicate that the barbed plate design increases turbulence intensity as much as 50% without reducing eddy size. Continued experimentation is necessary to fully assess the possible benefits of such a design. © 1990 Elsevier Science Publishing Co., Inc.
引用
收藏
页码:319 / 334
页数:16
相关论文
共 50 条
  • [41] Plate versus mesh collecting electrode for electrohydrodynamic (EHD) drying
    Martynenko, Alex
    Iranshahi, Kamran
    Defraeye, Thijs
    DRYING TECHNOLOGY, 2022, 40 (13) : 2759 - 2769
  • [42] Characterization of electrohydrodynamic flow in a plate-plate electrostatic precipitator with a wire-cylinder pre-charger by data-driven vortex and residence time analysis
    Li, Shuran
    Li, Mengze
    Ma, Jiahe
    Fu, Yihan
    Tian, Yu
    Shen, Xing
    Li, Jiafeng
    Zhu, Weidong
    Ke, Yinglin
    Clack, Herek L.
    Yan, Keping
    POWDER TECHNOLOGY, 2022, 397
  • [43] Effects of electrohydrodynamic flow and turbulent diffusion on collection efficiency of an electrostatic precipitator with cavity walls
    Park, SJ
    Kim, SS
    AEROSOL SCIENCE AND TECHNOLOGY, 2003, 37 (07) : 574 - 586
  • [44] Inducing mechanism of electrohydrodynamic flow by surface barrier discharge
    Takeuchi, Nozomi
    Yasuoka, Koichi
    Ishii, Shozo
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2007, 35 (06) : 1704 - 1709
  • [45] Electrohydrodynamic flow of a dielectric liquid around a blade electrode
    Higuera, FJ
    PHYSICS OF FLUIDS, 2000, 12 (11) : 2732 - 2742
  • [46] Calculation of electrohydrodynamic flow around a single particle on an electrode
    Sides, PJ
    LANGMUIR, 2003, 19 (07) : 2745 - 2751
  • [47] Effect of barbed tubular electrode corona discharge EHD flow on submicron particle collection in a wide-type ESP
    Yan, Dongjie
    Zhang, Ziang
    Gong, Hao
    Ya, Yu
    JOURNAL OF ELECTROSTATICS, 2021, 109
  • [48] Integration of novel hybrid composite discharge electrode with semi-pilot novel cross-flow electrostatic precipitator
    Ali, M.
    Al-Majali, Y. T. A.
    Kennedy, M.
    Alam, K.
    JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2018, 68 (12) : 1346 - 1356
  • [49] FLOW VISUALIZATION INSIDE A WIRE-PLATE ELECTROSTATIC PRECIPITATOR
    KALLIO, GA
    STOCK, DE
    IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 1990, 26 (03) : 503 - 514
  • [50] 3D-PIV Measurement for EHD Flow of Spiked Tubular Electrode Corona Discharge in Wide Electrostatic Precipitator
    Yan, Dongjie
    Zhang, Ziang
    Li, Zhenyang
    Yu, Ya
    Gong, Hao
    Huang, Xueming
    MEASUREMENT SCIENCE REVIEW, 2020, 20 (04): : 178 - 186