Experimental Analysis of Corona Current Density Distribution and Electric Field at Variable Temperatures in Electrostatic Precipitator

IF 1.1 Q4 ELECTROCHEMISTRY
H. Ait Said, M. Aissou, A. Laifaoui, N. Hebbar, M. Kaci, H. Nouri, Y. Zebboudj
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引用次数: 1

Abstract

In blade-to-plane electrostatic precipitators at variable temperatures, the electric field and the current density distributions of the negative DC corona were experimentally analyzed, and the corona discharge was used as the source of ionization. In this research, an experimental cell was designed and built to adjust the temperature from 20 to 46°C within the cell. The current density-voltage characteristic and the radial distance distribution of the current density of an electrostatic blade-to-plane precipitator were measured over a temperature interval. Based on the Tassicker and Townsend models, the electric field and the onset voltage were determined. With the rise in temperature, the corona current obtained at the collector plate has been observed to increase, but the onset voltage decreased. The applied voltage and temperature greatly affected the corona current density characteristics and the electrical field. If an exponent of 4.6 to 5 for a negative corona discharge is taken, the DC density distribution is satisfied, then the current density distribution follows the well-known Warburg theorem.

Abstract Image

静电除尘器变温度下电晕电流密度分布及电场的实验分析
实验分析了变温度下叶片-平面静电除尘器中负直流电晕的电场和电流密度分布,并以电晕放电作为电离源。在本研究中,设计并建造了一个实验细胞,可以调节细胞内的温度从20°C到46°C。在一定温度区间内测量了静电叶片-平面除尘器的电流密度-电压特性和电流密度的径向距离分布。基于Tassicker和Townsend模型,确定了电场和起始电压。随着温度的升高,在集电极极板处获得的电晕电流增大,但起始电压减小。外加电压和温度对电晕电流密度特性和电场有很大影响。如果取负电晕放电4.6 ~ 5的指数,则满足直流密度分布,则电流密度分布符合著名的Warburg定理。
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来源期刊
Surface Engineering and Applied Electrochemistry
Surface Engineering and Applied Electrochemistry Engineering-Industrial and Manufacturing Engineering
CiteScore
1.70
自引率
22.20%
发文量
54
审稿时长
6 months
期刊介绍: Surface Engineering and Applied Electrochemistry is a journal that publishes original and review articles on theory and applications of electroerosion and electrochemical methods for the treatment of materials; physical and chemical methods for the preparation of macro-, micro-, and nanomaterials and their properties; electrical processes in engineering, chemistry, and methods for the processing of biological products and food; and application electromagnetic fields in biological systems.
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