TY - GEN
T1 - Monte Carlo based simulation on surface charging phenomena of insulators prior to flashover in vacuum
AU - Yu, Kai Kun
AU - Huang, Xue Zeng
AU - Zheng, Nan
AU - Zhang, Guan Jun
AU - Yamano, Yasushi
AU - Kobayashi, Shinichi
PY - 2010
Y1 - 2010
N2 - As we know, before flashover across an insulator surface under high electric field in vacuum, there are charging phenomena occurring on the insulator surface, which significantly affect the developing process of flashover. Based on the secondary electron emission avalanche (SEEA) model, and by using the Monte Carlo method, a two-dimensional analysis of surface charge density on cylindrical and conical insulators prior to flashover in vacuum has been performed under unipolar voltage. Typical insulating materials are employed, i.e., machinable ceramic, alumina ceramic, PTFE and PMMA. The influences of secondary electron yield, voltage amplitudes and coning angles on charge distribution are investigated. The results reveal that negative charges exist in a small surface region near the cathode, while the surface charges positive in a larger region away from the cathode. With increasing applied voltage, both the negative charge density and region decrease, and even vanish, whereas both the positive charge density and region increase, and the peaks of both regions move towards the cathode.
AB - As we know, before flashover across an insulator surface under high electric field in vacuum, there are charging phenomena occurring on the insulator surface, which significantly affect the developing process of flashover. Based on the secondary electron emission avalanche (SEEA) model, and by using the Monte Carlo method, a two-dimensional analysis of surface charge density on cylindrical and conical insulators prior to flashover in vacuum has been performed under unipolar voltage. Typical insulating materials are employed, i.e., machinable ceramic, alumina ceramic, PTFE and PMMA. The influences of secondary electron yield, voltage amplitudes and coning angles on charge distribution are investigated. The results reveal that negative charges exist in a small surface region near the cathode, while the surface charges positive in a larger region away from the cathode. With increasing applied voltage, both the negative charge density and region decrease, and even vanish, whereas both the positive charge density and region increase, and the peaks of both regions move towards the cathode.
UR - https://www.scopus.com/pages/publications/78650428769
U2 - 10.1109/DEIV.2010.5625796
DO - 10.1109/DEIV.2010.5625796
M3 - 会议稿件
AN - SCOPUS:78650428769
SN - 9781424483655
T3 - Proceedings - International Symposium on Discharges and Electrical Insulation in Vacuum, ISDEIV
SP - 109
EP - 112
BT - ISDEIV 2010 - 24th International Symposium on Discharges and Electrical Insulation in Vacuum, Proceedings
T2 - 24th International Symposium on Discharges and Electrical Insulation in Vacuum, ISDEIV 2010
Y2 - 30 August 2010 through 3 September 2010
ER -