TY - GEN
T1 - Simulation Study on the Pre-Breakdown Process of Underwater High-Voltage Pulsed Discharge Based on Field-Induced Ionization Theory
AU - Cao, Kehan
AU - Zhang, Xing
AU - Wu, Yanfang
AU - Yue, Qiang
AU - Lu, Yunpeng
AU - Cai, Xinyuan
AU - Zhang, Guanjun
AU - Song, Baipeng
N1 - Publisher Copyright:
© Beijing Paike Culture Commu. Co., Ltd. 2026.
PY - 2026
Y1 - 2026
N2 - Pulse discharge in water has been widely applied in various fields due to its physical and chemical properties. However, the morphology of the discharge pre-breakdown process is influenced by multiple parameters, which in turn affect the form of discharge in water and energy conversion. Based on the theory of field ionization, we established a simulation model for the pre-breakdown process of discharge in water under nanosecond pulse voltage. The development of the streamer during pre-breakdown process were studied, which can be divided in to four stages: initiation, distortion, transition, and breakdown. Results demonstrate that elevated voltage amplitudes or reduced electrode gaps intensify needle-tip electric fields, accelerating water ionization and expediting streamer formation, while stronger tip fields concurrently promote branching phenomena at the primary streamer. Furthermore, a smaller curvature radius of the needle tip will also increase the field strength of the needle electrode and change the trajectories of branch streamer. This study elucidates the effects of discharge parameters on pre-breakdown processes in underwater high-voltage pulsed discharges, thereby offering theoretical guidance for the application and parameter optimization.
AB - Pulse discharge in water has been widely applied in various fields due to its physical and chemical properties. However, the morphology of the discharge pre-breakdown process is influenced by multiple parameters, which in turn affect the form of discharge in water and energy conversion. Based on the theory of field ionization, we established a simulation model for the pre-breakdown process of discharge in water under nanosecond pulse voltage. The development of the streamer during pre-breakdown process were studied, which can be divided in to four stages: initiation, distortion, transition, and breakdown. Results demonstrate that elevated voltage amplitudes or reduced electrode gaps intensify needle-tip electric fields, accelerating water ionization and expediting streamer formation, while stronger tip fields concurrently promote branching phenomena at the primary streamer. Furthermore, a smaller curvature radius of the needle tip will also increase the field strength of the needle electrode and change the trajectories of branch streamer. This study elucidates the effects of discharge parameters on pre-breakdown processes in underwater high-voltage pulsed discharges, thereby offering theoretical guidance for the application and parameter optimization.
KW - Pre-breakdown
KW - Streamer morphology
KW - Underwater nanosecond discharge
UR - https://www.scopus.com/pages/publications/105046793483
U2 - 10.1007/978-981-95-8337-9_21
DO - 10.1007/978-981-95-8337-9_21
M3 - 会议稿件
AN - SCOPUS:105046793483
SN - 9789819583362
T3 - Lecture Notes in Electrical Engineering
SP - 217
EP - 227
BT - The Proceedings of the 20th Annual Conference of China Electrotechnical Society
A2 - Yang, Qingxin
A2 - Xu, Dianguo
A2 - Ye, Xuerong
A2 - Nie, Qiuyue
A2 - Guan, Yueshi
PB - Springer Science and Business Media Deutschland GmbH
T2 - 20th Annual Conference of China Electrotechnical Society, ACCES 2025
Y2 - 19 September 2025 through 21 September 2025
ER -