LAPSE:2023.25115
Published Article

LAPSE:2023.25115
Dynamic Characteristics of Transverse-Magnetic-Field Induced Arc for Plasma-Jet-Triggered Protective Gas Switch in Hybrid UHVDC System
March 28, 2023
Abstract
A plasma jet-triggered gas switch (PJT-GS) has been developed as an important piece of equipment to operate in an ±800 kV ultra-high voltage direct current transmission system (UHV DC) to achieve grid system protection and control. The crucial factors that would affect its operational performance, such as the current level the PJT-GS could withstand and the gas gap distance between the two rotating electrodes, are comparatively studied in the present work by analysing the arc dynamic characteristics. The rotating electrode used in the PJT-GS is designed with a helical-slotted structure, and the arc can be rotated circularly driven by the produced transverse magnetic field (TMF) along the electrode edge. The objective of such research is to provide a thorough study of the arc dynamic behaviour during the current flowing process of the PJT-GS and also to characterise the physical mechanism that affects the arc rotation and the PJT-GS operation performance. The magnetohydrodynamic-based (MHD) approach is applied by establishing a 3D arc model. Following such a study, the variation of arc characteristics under different operation conditions could be thoroughly determined and it also could provide the guidance for the PJT-GS optimum design reasonably to support its corresponding engineering applications.
A plasma jet-triggered gas switch (PJT-GS) has been developed as an important piece of equipment to operate in an ±800 kV ultra-high voltage direct current transmission system (UHV DC) to achieve grid system protection and control. The crucial factors that would affect its operational performance, such as the current level the PJT-GS could withstand and the gas gap distance between the two rotating electrodes, are comparatively studied in the present work by analysing the arc dynamic characteristics. The rotating electrode used in the PJT-GS is designed with a helical-slotted structure, and the arc can be rotated circularly driven by the produced transverse magnetic field (TMF) along the electrode edge. The objective of such research is to provide a thorough study of the arc dynamic behaviour during the current flowing process of the PJT-GS and also to characterise the physical mechanism that affects the arc rotation and the PJT-GS operation performance. The magnetohydrodynamic-based (MHD) approach is applied by establishing a 3D arc model. Following such a study, the variation of arc characteristics under different operation conditions could be thoroughly determined and it also could provide the guidance for the PJT-GS optimum design reasonably to support its corresponding engineering applications.
Record ID
Keywords
arc dynamic characteristics, magnetohydrodynamic-based (MHD), plasma jet-triggered gas switch (PJT-GS), UHVDC
Subject
Suggested Citation
Wang W, Li Z, Gao K, Dong E, Qu X, Xu X. Dynamic Characteristics of Transverse-Magnetic-Field Induced Arc for Plasma-Jet-Triggered Protective Gas Switch in Hybrid UHVDC System. (2023). LAPSE:2023.25115
Author Affiliations
Wang W: High Voltage Department, China Electric Power Research Institute, Beijing 100192, China [ORCID]
Li Z: High Voltage Department, China Electric Power Research Institute, Beijing 100192, China
Gao K: High Voltage Department, China Electric Power Research Institute, Beijing 100192, China
Dong E: School of Electrical Engineering, Dalian University of Technology, Dalian 116024, China
Qu X: School of Electrical Engineering, Dalian University of Technology, Dalian 116024, China
Xu X: High Voltage Department, China Electric Power Research Institute, Beijing 100192, China
Li Z: High Voltage Department, China Electric Power Research Institute, Beijing 100192, China
Gao K: High Voltage Department, China Electric Power Research Institute, Beijing 100192, China
Dong E: School of Electrical Engineering, Dalian University of Technology, Dalian 116024, China
Qu X: School of Electrical Engineering, Dalian University of Technology, Dalian 116024, China
Xu X: High Voltage Department, China Electric Power Research Institute, Beijing 100192, China
Journal Name
Energies
Volume
15
Issue
16
First Page
5871
Year
2022
Publication Date
2022-08-13
ISSN
1996-1073
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PII: en15165871, Publication Type: Journal Article
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LAPSE:2023.25115
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