TY - GEN
T1 - The Spatiotemporal Distribution of Temperature and Electromagnetic Force in Low-Voltage Electrical Penetrations Under Short-Circuit
AU - Li, Xinlu
AU - Zhai, Changchun
AU - Zhao, Yu
AU - Ruan, Yang
AU - Zhang, Chuang
AU - Li, Shengtao
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2024
Y1 - 2024
N2 - Electrical penetrations are crucial for the safe and stable operation of nuclear power plant reactors, serving as power supply, dynamic monitoring of the reactors, resistance to nuclear leak and so on. As a result, it is important to investigate the performance of electrical penetrations in extreme circumstances such as short-conditions. In this work, a three-dimensional electromagnetic-thermal coupled model for low-voltage electrical penetration components with connecting cables is established, in which spatial and temporal distribution characteristics of temperature and electromagnetic force are calculated utilizing finite element method. The results indicated that electrical penetration components experienced a significant temperature rise under short-circuit conditions, especially the thin layer of poly(ether-ether-ketone) (PEEK) next to conductor where temperature was elevated from 20 to 390°C in one second. Besides, the temperature of PEEK increased with short-circuit time linearly approximately. In addition, electromagnetic force between conductor components increased quadratically with the short-circuit current. It was demonstrated that the distribution of temperature and electromagnetic force were influenced tremendously by the arrangement of conductors. This work may contribute to the structural optimization of electrical penetrations in engineering applications.
AB - Electrical penetrations are crucial for the safe and stable operation of nuclear power plant reactors, serving as power supply, dynamic monitoring of the reactors, resistance to nuclear leak and so on. As a result, it is important to investigate the performance of electrical penetrations in extreme circumstances such as short-conditions. In this work, a three-dimensional electromagnetic-thermal coupled model for low-voltage electrical penetration components with connecting cables is established, in which spatial and temporal distribution characteristics of temperature and electromagnetic force are calculated utilizing finite element method. The results indicated that electrical penetration components experienced a significant temperature rise under short-circuit conditions, especially the thin layer of poly(ether-ether-ketone) (PEEK) next to conductor where temperature was elevated from 20 to 390°C in one second. Besides, the temperature of PEEK increased with short-circuit time linearly approximately. In addition, electromagnetic force between conductor components increased quadratically with the short-circuit current. It was demonstrated that the distribution of temperature and electromagnetic force were influenced tremendously by the arrangement of conductors. This work may contribute to the structural optimization of electrical penetrations in engineering applications.
KW - effectiveness of sealing
KW - electrical penetrations
KW - electromagnetic force
KW - spatiotemporal distribution
KW - temperature
UR - https://www.scopus.com/pages/publications/85211160996
U2 - 10.1109/ICPADM61663.2024.10750779
DO - 10.1109/ICPADM61663.2024.10750779
M3 - 会议稿件
AN - SCOPUS:85211160996
T3 - Proceedings of the IEEE International Conference on Properties and Applications of Dielectric Materials
SP - 170
EP - 174
BT - 14th International Conference on the Properties and Applications of Dielectric Materials, ICPADM 2024
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 14th International Conference on the Properties and Applications of Dielectric Materials, ICPADM 2024
Y2 - 4 August 2024 through 7 August 2024
ER -