首页|Modification of streamer-to-leader transi-tion model based on radial thermal expansion in the sphere-plane gap discharge at high altitude

Modification of streamer-to-leader transi-tion model based on radial thermal expansion in the sphere-plane gap discharge at high altitude

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Historically,streamer-to-leader transition studies mainly focused on the rod-plane gap and low altitude analysis,with limited attention paid to the sphere-plane gap at high altitude analysis.In this work,sphere-plane gap discharge tests were carried out under the gap distance of 5 m at the Qinghai Ultra High Voltage(UHV)test base at an altitude of 2200 m.The experiments measured the physical parameters such as the discharge current,electric field intensity and instantaneous optical power.The duration of the dark period and the critical charge of streamer-to-leader transition were obtained at high altitude.Based on radial thermal expansion of the streamer stem,we established a modified streamer-to-leader transition model of the sphere-plane gap discharge at high altitude,and calculated the stem temperature,stem radii and the duration of streamer-to-leader transition.Compared with the measured duration of sphere-plane electrode discharge at an altitude of 2200 m,the error rate of the modified model was 0.94%,while the classical model was 6.97%,demonstrating the effectiveness of the modified model.From the comparisons and analysis,several suggestions are proposed to improve the numerical model for further quantitative investigations of the leader inception.

streamer-to-leader transition modelhigh altitudestreamer stemconvective diffusionradial thermal expansion

耿江海、林果、王平、丁玉剑、丁杨、俞华

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Department of Electric Power Engineering,North China Electric Power University,Baoding 071003,People's Republic of China

China Electric Power Research Institute,Beijing 100192,People's Republic of China

Xinjiang Electric Power Company Research Institute,Urumchi 830000,People's Republic of China

Shanxi Electric Power Company Research Institute,Taiyuan 030001,People's Republic of China

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National Natural Science Foundation of China(Scientific Funds for Young Scientists)

52007064

2024

等离子体科学和技术(英文版)
中国科学院合肥物质科学研究所 中国力学学会

等离子体科学和技术(英文版)

EI
影响因子:0.297
ISSN:1009-0630
年,卷(期):2024.26(1)
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