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Research and application of technologies for large-capacity skid-mounted mobile intelligent substation |
ZUO Tao1,2, LIU Jiantao3, JIANG Qiang2,4, ZHU Xiping2,5, SONG Yingjie1,2 |
1. Leshan ELECT Electrified Wire Netting Automation Co., Ltd, Leshan, Sichuan 614000; 2. Sichuan Prefabricated Cabin Power Equipment Engineering Technology Research Center, Leshan, Sichuan 614000; 3. School of Mechanical Engineering, Southwest Jiaotong University, Chengdu 611756; 4. School of Electronic Information and Artificial Intelligence, Leshan Normal University, Leshan, Sichuan 614000; 5. School of Electrical Engineering and Information, Southwest Petroleum University, Chengdu 610500 |
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Abstract In order to meet the requirements of the scenario of power supply and power protection in the power system, and improve the emergency response capability and power supply reliability of the system, this paper applies a number of key technologies and methods such as compact weight reduction of transformer, shock absorption and isolation of equipment, verification of mechanical impact resistance, anti-corrosion of cabin roof, rapid layout of lightning protection device, modular design of secondary equipment and skid-mounted mobile substation digital twin. A large-capacity skid-mounted mobile intelligent substation with a main transformer capacity of 63 MV∙A and a voltage level of 110 kV is designed. Taking the large-capacity skid-mounted mobile intelligent substation that is actually applied in a new project of 110 kV temporary substation in Leshan City, Sichuan Province as an example, the effectiveness of this design is verified. The practice shows that this kind of power equipment has good promotion value and application prospects.
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Received: 27 December 2024
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Cite this article: |
ZUO Tao,LIU Jiantao,JIANG Qiang等. Research and application of technologies for large-capacity skid-mounted mobile intelligent substation[J]. Electrical Engineering, 2025, 26(7): 69-75.
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URL: |
https://dqjs.cesmedia.cn/EN/Y2025/V26/I7/69
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[1] 蔡晶, 冉旺, 韩丹, 等. 大功率车载式移动变电站设计应用系统研究[J]. 广东电力, 2020, 33(1): 86-92. [2] DEHGHAN H, GHAEMI H, SHADMAN S M, et al.Using the mobile substations in 132 kV network and studying their effects on the losses of network[C]// 2012 Proceedings of 17th Conference on Electrical Power Distribution, Tehran, Iran, 2012: 1-4. [3] 王茜, 薛文斌. 35 kV撬装式变电站的研究及应用[J].科学技术创新, 2019(2): 48-49. [4] 汤振鹏, 刘泽庭, 胡中, 等. 移动变电站技术进展综述[J]. 电网技术, 2019, 43(9): 3415-3425. [5] 张一龙, 王强. 山西首座110千伏移动式变电站试运行[N]. 中国能源报, 2015-11-16(21). [6] 李凯. 矿用隔爆型移动变电站在煤矿供电系统中的实施探究[J]. 西部探矿工程, 2024, 36(3): 36-39. [7] 于燕萍. 澳洲标准下E-house电气设计经验点滴[J].电气技术, 2015, 16(2): 109-114. [8] 袁林, 何志强. 110 kV车载移动变电站在电网应用中的探讨[J]. 中国设备工程, 2019(23): 207-209. [9] 陈卫国, 戴俊. 110 kV及以下预装式变电站设计[J].电气技术, 2019, 20(4): 118-120. [10] 张雷, 张伟, 宋友, 等. 基于ANSYS的车载移动变电站预制舱抗机械冲击仿真研究[J]. 机电信息, 2019(33): 38-40. [11] 武建平, 潘松波, 段新辉, 等. 110 kV车载移动变电站在电网中的研究及应用[J]. 电子世界, 2021(22): 168-169. [12] 燕飞飞, 何显江, 卢旭涛. 预装式户内GIS变电站预制舱设计探讨[J]. 机电信息, 2020(24): 1-3, 5. [13] 左涛, 刘建涛, 蒋强, 等. 非金属模块化预制舱式变电站节能环保关键技术[J]. 电气技术, 2024, 25(4): 59-65, 76. [14] 左涛, 张新太. 智能变电站高性能纤维预制舱防凝露设计[J]. 宁夏电力, 2022(2): 24-30. [15] ZUO Tao, LIU Jiantao, JIANG Qiang, et al.Economic thickness analysis of insulation layer of prefabricated cabin substation based on the whole life cycles[C]// The Proceedings of the 19th Annual Conference of China Electrotechnical Society, Xi’an, 2024. [16] 左涛, 刘建涛, 李敏, 等. 基于建筑设计的非金属模块化预制舱式变电站节能[J]. 电气时代, 2024(2): 76-80. [17] 乐山一拉得电网自动化有限公司. 一种预制舱式变电站舱体屋面防腐与收排水方法[P]. 北京, CN202011313350.5, 2024-12-10. [18] 施礼兴. 变电站 (换流站) 户外箱体防潮措施研究及优化建议[J]. 电气技术, 2023, 24(12): 80-84. [19] 杜满, 徐明芬, 杜宝. 滚球法双支接闪杆xx'平面上单侧保护范围的公式推导及应用[J]. 电世界, 2016, 57(12): 4-6. [20] 预制舱式二次组合设备技术规范: Q/GDW 11157—2017[S]. [21] 李旭斌, 田付强, 郭亦可. 新型电力系统中电力设备健康管理与智能运维关键技术探究[J]. 电网技术, 2023, 47(9): 3710-3727. [22] 郭红斌, 马驰, 文正其. 预制舱式模块化变电站关键技术及展望[J]. 电气技术, 2023, 24(9): 1-10, 19. [23] 左涛, 朱西平, 蒋强, 等. 全模块化预制舱式变电站技术经济指标分析[J]. 电气时代, 2023(6): 98-102. [24] 胡天祥, 刘建涛, 蒋强, 等. 撬装式移动变电站智能化技术研究及应用[J]. 湖南电力, 2024, 44(6): 55-60. |
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