Influence Mechanism of Cathode Curvature Radius on Corona Discharge at Microscale

Energies Pub Date : 2024-07-11 DOI:10.3390/en17143411
Jingyuan Zhang, Bei Zhang, Yong Yang, Zhenzu Liu, Hongguang Pan
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Abstract

Micro-corona devices could be extensively utilized in gas sensing, switchgear, biomedicine, and other fields. As the influence mechanism of the cathode curvature radius on micro-corona discharge dynamical processes is very important for performance optimization and the promotion of these devices, a micro-scale corona discharge gas model in a mixture of N2-O2 is proposed based on the fluid–chemical mixing method, which describes the dynamic process of the discharge at atmosphere and normal temperatures. To reveal the influence mechanism of the nanowire curvature radius on the micro-corona discharge, the effect of the cathode nanowire radius on the discharge current, electric field, ionization reaction rate, and charged particle characteristics at different gaps and voltages were determined. The findings indicate that the effect of curvature radius on discharge intensity varies under different gap and voltage conditions. Further analysis indicates that an increase in curvature radius reduces the electric field near the tip while increasing the ionization area and secondary emission area as well as the number of positive ions in the space, consequently affecting the coupling process between the collision ionization and the secondary emission. Especially under the conditions of either small gap or low voltage, a suitable increase in the curvature radius could promote the coupling process and then increase the discharge current.
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微尺度阴极曲率半径对电晕放电的影响机制
微电晕装置可广泛应用于气体传感、开关设备、生物医学等领域。由于阴极曲率半径对微电晕放电动态过程的影响机制对这些器件的性能优化和推广非常重要,因此基于流体-化学混合法,提出了一种在 N2-O2 混合气体中的微尺度电晕放电气体模型,该模型描述了大气和常温下的放电动态过程。为了揭示纳米线曲率半径对微电晕放电的影响机理,测定了不同间隙和电压下阴极纳米线半径对放电电流、电场、电离反应速率和带电粒子特性的影响。研究结果表明,在不同间隙和电压条件下,曲率半径对放电强度的影响各不相同。进一步的分析表明,曲率半径的增加会降低尖端附近的电场,同时增加电离面积和二次发射面积以及空间中的正离子数量,从而影响碰撞电离和二次发射之间的耦合过程。特别是在小间隙或低电压条件下,适当增加曲率半径可以促进耦合过程,从而增加放电电流。
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