[1] 石正, 许寅, 吴翔宇, 等. 交直流混联电网系统保护策略校核与辅助决策方法[J]. 电力自动化设备, 2020, 40(4): 25–31 SHI Zheng, XU Yin, WU Xiangyu, et al. Assessment of system protection strategy and aided decision scheme for AC/DC hybrid power systems[J]. Electric Power Automation Equipment, 2020, 40(4): 25–31 [2] ZHOU M, ZHAI J Y, LI G Y, et al. Distributed dispatch approach for bulk AC/DC hybrid systems with high wind power penetration[J]. IEEE Transactions on Power Systems, 2018, 33(3): 3325–3336. [3] 张运洲, 张宁, 代红才, 等. 中国电力系统低碳发展分析模型构建与转型路径比较[J]. 中国电力, 2021, 54(3): 1–11 ZHANG Yunzhou, ZHANG Ning, DAI Hongcai, et al. Model construction and pathways of low-carbon transition of China's power system[J]. Electric Power, 2021, 54(3): 1–11 [4] 周原冰, 杨方, 余潇潇, 等. 中国能源电力碳中和实现路径及实施关键问题[J]. 中国电力, 2022, 55(5): 1–11 ZHOU Yuanbing, YANG Fang, YU Xiaoxiao, et al. Realization pathways and key problems of carbon neutrality in China's energy and power system[J]. Electric Power, 2022, 55(5): 1–11 [5] 乔骥, 邹军, 袁建生, 等. 采用区域分解法与高阶单元的交直流同塔线路混合电场计算[J]. 电网技术, 2017, 41(1): 335–341 QIAO Ji, ZOU Jun, YUAN Jiansheng, et al. Electric field calculation of HVAC and HVDC transmission lines on the same tower with domain decomposition method and high order element[J]. Power System Technology, 2017, 41(1): 335–341 [6] 孙栩, 董鹏, 朱艺颖, 等. 特高压交直流线路同塔架设对交流线路电磁暂态特性的影响[J]. 电力自动化设备, 2014, 34(1): 148–153 SUN Xu, DONG Peng, ZHU Yiying, et al. Impact of tower-shared UHV DC and AC line installation on electromagnetic transient characteristics of AC line[J]. Electric Power Automation Equipment, 2014, 34(1): 148–153 [7] ZHOU X X, LU T B, CUI X, et al. Simulation of ion-flow field at the crossing of HVDC and HVAC transmission lines[J]. IEEE Transactions on Power Delivery, 2012, 27(4): 2382–2389. [8] 王兵, 贾育培, 严剑峰, 等. 特高压交直流混联电网故障反演系统的体系架构与关键技术[J]. 中国电力, 2020, 53(6): 64–71 WANG Bing, JIA Yupei, YAN Jianfeng, et al. The architecture and key technologies of fault inversion system for hybrid UHV AC/DC power grid[J]. Electric Power, 2020, 53(6): 64–71 [9] 杜婉琳, 唐旭, 黄泽杰. 交-直流碰线故障对交流线路距离保护的影响[J]. 广东电力, 2019, 32(4): 48–54 DU Wanlin, TANG Xu, HUANG Zejie. Affect on distance protection of AC line by AC-DC line touching fault[J]. Guangdong Electric Power, 2019, 32(4): 48–54 [10] LI Xiaohua, LIANG Zipeng, CAI Zexiang, et al. Protection operation sequences and risks in AC/DC line touch fault[C]//2018 International Conference on Power System Technology (POWERCON). Guangzhou, China. IEEE, 2019: 2770-2776. [11] 郑涛, 于溯, 吴建云, 等. 基于换流器分段线性化模型的交直流碰线保护适用性分析[J]. 电网技术, 2021, 45(9): 3478–3488 ZHENG Tao, YU Su, WU Jianyun, et al. Adaptability analysis of AC/DC line-touching protection based on piecewised and linearized model of converter[J]. Power System Technology, 2021, 45(9): 3478–3488 [12] 徐敏, 蔡泽祥, 韩昆仑, 等. 交直流混联电网中交流暂态侵入对直流继电保护的影响分析[J]. 高电压技术, 2014, 40(11): 3618–3625 XU Min, CAI Zexiang, HAN Kunlun, et al. Influence analysis of AC system transient invasion on DC protective relaying in AC/DC hybrid power system[J]. High Voltage Engineering, 2014, 40(11): 3618–3625 [13] 薛海平, 王俊生, 张少凡, 等. 交直流交叉跨越碰线故障分析及处理策略[J]. 电力系统自动化, 2017, 41(24): 150–158 XUE Haiping, WANG Junsheng, ZHANG Shaofan, et al. Touching fault analysis and clearing action strategy for AC/DC crossed transmission lines[J]. Automation of Electric Power Systems, 2017, 41(24): 150–158 [14] 李晓华, 梁子鹏, 冯家伟, 等. 交直流交叉跨越碰线故障及其保护风险分析[J]. 电力系统自动化, 2020, 44(9): 52–59 LI Xiaohua, LIANG Zipeng, FENG Jiawei, et al. Touching fault and its risk protection analysis for AC/DC crossed transmission lines[J]. Automation of Electric Power Systems, 2020, 44(9): 52–59 [15] 杜婉琳. 交—直流线路碰线故障特性分析及对交流线路保护与故障测距的适应性研究[D]. 广州: 华南理工大学, 2018. DU Wanlin. Study on fault characteristic and adaptability of AC relay protection and fault location for AC-DC cross short fault[D]. Guangzhou: South China University of Technology, 2018. [16] 冯家伟. 交直流碰线故障后保护动作时序及风险分析[D]. 广州: 华南理工大学, 2019 FENG Jiawei. Protection operation sequences and risks in ACDC line touch fault[D]. Guangzhou: South China University of Technology, 2019. [17] 邢海瀛, 陈柏超, 田翠华. 超高压系统中可控电抗器抑制工频过电压研究[J]. 电力自动化设备, 2008, 28(12): 25–29 XING Haiying, CHEN Baichao, TIAN Cuihua. Restraint of power frequency over-voltage by controllable reactor in EHV system[J]. Electric Power Automation Equipment, 2008, 28(12): 25–29 [18] 王峰, 刘天琪, 丁媛媛, 等. 直流闭锁引起的暂态过电压计算方法及其影响因素分析[J]. 电网技术, 2016, 40(10): 3059–3065 WANG Feng, LIU Tianqi, DING Yuanyuan, et al. Calculation method and influencing factors of transient overvoltage caused by HVDC block[J]. Power System Technology, 2016, 40(10): 3059–3065 [19] 葛耀中. 新型继电保护与故障测距原理与技术[M]. 西安: 西安交通大学出版社, 1996: 106-108. [20] 张海, 黄少锋. 利用电压辅助电流选相的同杆双回线单端电气量选相原理[J]. 中国电机工程学报, 2013, 33(7): 139–148 ZHANG Hai, HUANG Shaofeng. A fault phase selection scheme of currents with assistant voltages for common-tower double-circuit transmission lines using one-terminal electrical quantities[J]. Proceedings of the CSEE, 2013, 33(7): 139–148 [21] 李晓华, 蔡旺延, 刘飘, 等. 跨电压等级不接地故障时低电压系统的过电压评估[J]. 电测与仪表, 2021, 58(1): 26–31 LI Xiaohua, CAI Wangyan, LIU Piao, et al. Overvoltage evaluation of low voltage system when cross-voltage ungrounded fault[J]. Electrical Measurement & Instrumentation, 2021, 58(1): 26–31
|