A numerical investigation on electron runaway threshold at the initial stage of atmospheric streamer development

Author:

Jiang Ming1ORCID,Zou Lizhuang1,Zhang Jianwei2ORCID,Wang Hongguang1ORCID,Li Yongdong1ORCID,Liu Chunliang1ORCID,Wang YaoGong1ORCID

Affiliation:

1. Key Laboratory for Physical Electronics and Devices of the Ministry of Education, School of Electronic and Information Engineering, Xi'an Jiaotong University 1 , Xi'an 710049, China

2. School of Electrical Engineering, Xi'an University of Technology 2 , Xi'an 710048, China

Abstract

Pre-ionization caused by runaway electrons is an important mechanism for negative streamer development. The aim of this paper is to investigate the runaway criteria and overvoltage threshold of electrons at the initial stage of streamer development in air, with the self-developed 3D particle-in-cell with Monte Carlo Collision code. First, numerical simulations are performed with fixed number of electrons to study the runaway criteria in nonrelativistic cases. This method takes the stochastic fluctuations of collisions into account and solves the major shortcomings of theoretical approach. The simulated critical electric field is less than that of the theoretical approach, and the amplitude of the difference increases with electron energy, due to the “tunneling effect” caused by the stochastic fluctuations of collisions. Then, simulations of negative streamers at various applied voltages are performed to investigate the overvoltage threshold. A more intuitive method, searching energetic electrons in front of the negative streamer head, which corresponds to the nature of runaway electrons, is applied to determine the generation of runaway electrons. Electrons that escaped a certain distance ahead of the streamer can be observed at 30 kV. Thus, the overvoltage threshold for runaway electrons can be roughly estimated as 3.3 in our simulations, which is about three times less than the previously published one. At last, with the redefined overvoltage threshold, the figure of regions of breakdown development for various mechanisms depending upon the overvoltage in air is updated.

Funder

National Natural Science Foundation of China

Projects of International Cooperation and Exchanges Shaanxi Province

National Key Laboratory Funding of China

The Foundation of State Key Laboratory of Intense Pulsed Radiation Simulation and Effect

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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