Compact Design of 550 kV Basin-Type Spacer in Gas Insulated Switchgear (Part I) -- Structure Optimization

被引:0
|
作者
Wang C. [1 ]
Li W. [1 ]
Chen T. [2 ]
Li W. [1 ]
Gong R. [3 ]
Zhang G. [1 ]
机构
[1] State Key Laboratory of Electrical Insulation and Power Equipment, Xi'an Jiaotong University, Xi'an
[2] Tai'an Power Supply Company, State Grid Shandong Electric Power Company, Tai'an
[3] Shandong Taikai High Voltage Switchgear Co. Ltd, Tai'an
关键词
Basin-type spacer; Compact design; Finite element method (FEM); Gas insulated metal enclosed switchgear (GIS); Structure optimization;
D O I
10.19595/j.cnki.1000-6753.tces.210539
中图分类号
学科分类号
摘要
In the context of guaranteeing good electrical strength of gas insulated metal enclosed switchgear (GIS), to reduce the consumption of SF6 gas and downsize equipment's volume, compact design of a 550 kV basin-type spacer used in real projects was conducted based on the finite element method and numerical optimization method. In the condition of reducing 10% insulation distance between central conductor and sealed tank, by optimizing basin-type spacer's profile and thickness at two terminal regions, surface electric field of spacer is well-distributed and local concentrated mechanical stresses at the central conductor or sealed tank are much relieved. Comparing with original insulation system, structure of spacer obtained by structure optimization exhibits significantly improved electrical and mechanical properties. The maximum electric field along the concave and the maximum deformation of spacer could decrease by 25.4% and 29.9%, respectively. Moreover, optimized structure after compact design shows approximately a 15% decrease of SF6 usage and a 6.1% reduction of epoxy composite weight. We believe that the proposed performance improvement strategy for GIS insulation system taking both electrical and mechanical properties into account, thus exhibits good manufacturing feasibility and application potential, which can provide reference for the development of compact and eco-friendly GIS equipment. © 2022, Electrical Technology Press Co. Ltd. All right reserved.
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页码:1847 / 1855
页数:8
相关论文
共 20 条
  • [1] (2015)
  • [2] Morcos M, Ward S, Anis H, Et al., Insulation integrity of GIS/GITL systems and management of particle contamination[J], IEEE Electrical Insulation Magazine, 16, 5, pp. 25-37, (2000)
  • [3] Zhang Liang, He Cong, Li Junhao, Et al., Breakdown characteristics study of non-uniform field in gas insulated switchgear under oscillating lightning impulses, Transactions of China Electrotechnical Society, 35, 12, pp. 2672-2680, (2020)
  • [4] Xiao Dengming, Development prospect of gas insulation based on environmental protection, High Voltage Engineering, 42, 4, pp. 1035-1046, (2016)
  • [5] Kieffel Y, Irwin T, Ponchon P, Et al., Green gas to replace SF<sub>6</sub> in electrical grids, IEEE Power and Energy Magazine, 14, 2, pp. 32-39, (2016)
  • [6] Chen Qingguo, Qiu Rui, Lin Lin, Et al., Selection of potential substitutes for SF<sub>6</sub> based on density functional theory, High Voltage Engineering, 45, 4, pp. 1026-1033, (2019)
  • [7] Niu Chunping, Jiao Lulu, Wang Xiaohua, Et al., Thermal characteristics analysis of environmentally friendly GIS based on multi-field coupling, Transactions of China Electrotechnical Society, 35, 17, pp. 3765-3772, (2020)
  • [8] Toigo C, Vu-Cong T, Jacquier F, Et al., Partial discharge behavior of protrusion on high voltage conductor in GIS/GIL under high voltage direct current: comparison of SF<sub>6</sub> and SF<sub>6</sub> alternative gases, IEEE Transactions on Dielectrics and Electrical Insulation, 27, 1, pp. 140-147, (2020)
  • [9] 4, pp. 57-58, (1982)
  • [10] Hou Guobin, Fu Mingli, Deng Xiaofeng, Et al., Multi-physics coupling simulation and experiment of temperature rise in GIS and heat flux distribution characteristics, High Voltage Engineering, 45, 7, pp. 2322-2328, (2019)