Regulation of nanosecond pulse breakdown process by vertical magnetic field

Author:

Li Yutai1ORCID,Fu Yangyang2ORCID,Zhang Zhijin1,Liu Zhigang2ORCID,Hu Qin1,Zou Xiaobing2ORCID,Wang Xinxin2ORCID,Jiang Xingliang1

Affiliation:

1. Xuefeng Mountain Energy Equipment Safety National Observation and Research Station of Chongqing University 1 , Chongqing 400044, China

2. Department of Electrical Engineering, Tsinghua University 2 , Beijing 100084, China

Abstract

Effects of vertical magnetic field on the breakdown process of the nanosecond pulse discharge in atmospheric air are studied via two-dimensional particle-in-cell/Monte Carlo collision simulations. The numerical model is chosen and defined reasonably, with reference to experimental situations and literature reports. It is shown that when the applied magnetic field is strong enough, the evolutionary characteristics of the ionization channel are greatly affected due to the Lorentz force on charged particles. The impact is manifested macroscopically by the slowing down of the ionization channel evolution speed, the ionization channel shift, and the improvement of the discharge uniformity. At the microscopic level, the impact is mainly reflected in the regulation of the highest-energy electrons and the regulation of the overall electron energy distribution. That is, the adoption of a strong vertical magnetic field is capable of suppressing the generation of energetic electrons. The authors' results explicitly demonstrate the regulation of vertical magnetic field on the breakdown process of the nanosecond pulse discharge, which provides more comprehensive knowledge for the atmospheric air gap nanosecond pulse discharge physics and the theoretical basis for application design.

Funder

National Natural Science Foundation of China

Research Start-up Foundation for Chongqing University

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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