[1] 马成廉, 王乐天, 李波, 等. 基于ANSYS的陕北换流站直流接地极地电位分布计算[J]. 中国电力, 2018, 51(5):52-60 MA Chenglian, WANG Letian, LI Bo, et al. Simulation study on the DC grounding electrode earth potential distribution of northern Shaanxi converter station based on ANSYS[J]. Electric Power, 2018, 51(5):52-60 [2] 刘连光, 赵夏瑶, 张述铭, 等. 接地极偏磁治理对电网GIC的影响[J]. 电网技术, 2018, 42(11):3594-3600 LIU Lianguang, ZHAO Xiayao, ZHANG Shuming, et al. Influence of DC bias suppression of grounding electrodes on power grid GIC[J]. Power System Technology, 2018, 42(11):3594-3600 [3] 赵畹君. 高压直流输电工程技术[M]. 2版. 北京:中国电力出版社, 2011. [4] 刘连光, 马成廉. 基于有限元方法的直流输电接地极多层土壤地电位分布计算[J]. 电力系统保护与控制, 2015, 43(18):1-5 LIU Lianguang, MA Chenglian. Calculation of multi-layer soil earth surface potential distribution of HVDC due to finite element method[J]. Power System Protection and Control, 2015, 43(18):1-5 [5] 王明新, 张强. 直流输电系统接地极电流对交流电网的影响分析[J]. 电网技术, 2005, 29(3):9-14 WANG Mingxin, ZHANG Qiang. Analysis on influence of ground electrode current in hvdc on ac power network[J]. Power System Technology, 2005, 29(3):9-14 [6] 曾连生. 直流输电接地极电流对电力变压器的影响[J]. 高电压技术, 2005, 31(4):57-58, 81 ZENG Liansheng. Impact of HVDC ground electrode current on the adjacent power transformers[J]. High Voltage Engineering, 2005, 31(4):57-58, 81 [7] 钟连宏, 陆培均, 仇志成, 等. 直流接地极电流对中性点直接接地变压器影响[J]. 高电压技术, 2003, 29(8):12-13, 28 ZHONG Lianhong, LU Peijun, QIU Zhicheng, et al. The influence of current of DC earthing electrode on directly grounded transformer[J]. High Voltage Engineering, 2003, 29(8):12-13, 28 [8] 郭名文, 樊艳芳, 耿山, 等. 特高压直流接地极周边断裂结构对地表电位分布的影响研究[J]. 电力系统保护与控制, 2019, 47(2):73-79 GUO Mingwen, FAN Yanfang, GENG Shan, et al. Study on the effect of fracture structure adjacent to ground electrodes of UHVDC power transmission lines on earth surface potential distribution[J]. Power System Protection and Control, 2019, 47(2):73-79 [9] 曾嵘, 张波, 赵杰, 等. HVDC地中直流对交流系统的影响及规律分析[J]. 高电压技术, 2009, 35(3):678-682 ZENG Rong, ZHANG Bo, ZHAO Jie, et al. Influence and characteristics analysis of effect of the HVDC ground return current on AC system[J]. High Voltage Engineering, 2009, 35(3):678-682 [10] MA C L, LIU C M. Influence of pipeline insulation leakage points on the distribution of geomagnetically induced current and pipe-soil potential[J]. IEEE Access, 2019, 7:147470-147480. [11] 祝郦伟, 沈晓明, 杨帆, 等. 基于正则化的接地网断开故障诊断方法[J]. 中国电力, 2016, 49(11):31-35 ZHU Liwei, SHEN Xiaoming, YANG Fan, et al. Break fault diagnosis method of grounding grids based on regularization[J]. Electric Power, 2016, 49(11):31-35 [12] 郭剑. 直流接地极对电气化铁路的电磁影响[J]. 高电压技术, 2013, 39(1):241-250 GUO Jian. Electromagnetic influences of ground electrode on electrified railway[J]. High Voltage Engineering, 2013, 39(1):241-250 [13] 刘连光, 崔明德, 孙中明, 等. ±800 kV直流接地极对交流电网的影响范围[J]. 高电压技术, 2009, 35(6):1243-1247 LIU Lianguang, CUI Mingde, SUN Zhongming, et al. Influence scope of AC network by DC grounding electrode rated ±800 kV[J]. High Voltage Engineering, 2009, 35(6):1243-1247 [14] 杨培宏, 郑许朋, 刘连光, 等. 变压器中性点配置小电阻器对治理电网GIC的效果分析[J]. 电网技术, 2017, 41(4):1324-1331 YANG Peihong, ZHENG Xupeng, LIU Lianguang, et al. Effects of transformer neutral grounding via small resistor on mitigating geomagnetically induced currents in power grid[J]. Power System Technology, 2017, 41(4):1324-1331 [15] 刘春明, 黄彩臣, 潘明明, 等. 抑制变压器直流偏磁的电容隔直装置优化配置[J]. 高电压技术, 2016, 42(7):2308-2314 LIU Chunming, HUANG Caichen, PAN Mingming, et al. Optimal configuration of capacitor blocking devices for suppressing DC Bias in transformers[J]. High Voltage Engineering, 2016, 42(7):2308-2314 [16] 刘晨蕾, 潘卓洪, 文习山, 等. 一种基于碳化硅IGBT的可控型直流偏磁抑制方法[J]. 电力科学与技术学报, 2019, 34(1):67-73 LIU Chenlei, PAN Zhuohong, WEN Xishan, et al. A controllable DC bias suppression device based on the SiC IGBT[J]. Journal of Electric Power Science and Technology, 2019, 34(1):67-73 [17] 朱艺颖, 蒋卫平, 曾昭华, 等. 抑制变压器中性点直流电流的措施研究[J]. 中国电机工程学报, 2005, 25(13):1-7 ZHU Yiying, JIANG Weiping, ZENG Zhaohua, et al. Studying on measures of restraining dc current through transformer neutrals[J]. Proceedings of the CSEE, 2005, 25(13):1-7 [18] EITZMANN M A, WALLING R A, SUBLICH M, et al. Alternatives for blocking direct current in AC system neutrals at the Radisson/LG2 complex[J]. IEEE Transactions on Power Delivery, 1992, 7(3):1328-1337. [19] 蒯狄正, 万达, 邹云. 直流输电地中电流对电网设备影响的分析与处理[J]. 电力系统自动化, 2005, 29(2):81-82 KUAI Dizheng, WAN Da, ZOU Yun. Analysis and handling of the impact of geomagnetically induced current upon electric network equipment in DC transmission[J]. Automation of Electric Power Systems, 2005, 29(2):81-82 [20] 曹方圆, 时卫东, 康鹏, 等. 接地材料对杆塔接地装置冲击接地阻抗的影响[J]. 中国电力, 2016, 49(10):67-73 CAO Fangyuan, SHI Weidong, KANG Peng, et al. Influence of ground material on the impulse ground impedance of tower's grounding devices[J]. Electric Power, 2016, 49(10):67-73 [21] 潘卓洪, 梅桂华, 张露, 等. 抑制变压器直流偏磁的电流注入法[J]. 电力系统自动化, 2009, 33(20):88-91, 108 PAN Zhuohong, MEI Guihua, ZHANG Lu, et al. A current injection method to restrain transformer DC bias[J]. Automation of Electric Power Systems, 2009, 33(20):88-91, 108 [22] 张怿宁, 王彩芝, 陈平, 等. 直流接地极线路故障暂态行波传播特性分析[J]. 中国电力, 2015, 48(3):88-93 ZHANG Yining, WANG Caizhi, CHEN Ping, et al. Analysis of propagation characteristics of transient traveling waves in HVDC grounding electrode line faults[J]. Electric Power, 2015, 48(3):88-93 [23] 刘连光. 灾害空间天气对我国电网安全的影响及风险[J]. 中国工程科学, 2010, 12(9):29-33 LIU Lianguang. Influence and hazard of disastrous space weather on power grid in China[J]. Engineering Sciences, 2010, 12(9):29-33 [24] 张露, 阮羚, 潘卓洪, 等. 变压器直流偏磁抑制设备的应用分析[J]. 电力自动化设备, 2013, 33(9):151-156 ZHANG Lu, RUAN Ling, PAN Zhuohong, et al. Evaluation of DC bias restraint equipment application[J]. Electric Power Automation Equipment, 2013, 33(9):151-156 [25] 朱艺颖. 多个特高压直流系统共用接地极的研究[J]. 电网技术, 2007, 31(10):22-27 ZHU Yiying. Study on sharing earth electrode by rectifiers or inverters of some UHVDC systems[J]. Power System Technology, 2007, 31(10):22-27 [26] 顾承昱, 司文荣, 郑旭, 等. 并联直流接地极抑制上海区域直流偏磁的方法研究[J]. 高压电器, 2012, 48(4):65-74 GU Chengyu, SI Wenrong, ZHENG Xu, et al. DC bias suppression for Shanghai region using parallel connection of DC grounding electrodes[J]. High Voltage Apparatus, 2012, 48(4):65-74 [27] 周锋, 吴斌, 文锦霞, 等. 基于PSCAD的UHVDC换流站共用接地极影响研究[J]. 电瓷避雷器, 2012(2):105-110 ZHOU Feng, WU Bin, WEN Jinxia, et al. Research on effect of common grounding electrode in UHVDC stations converter based on PSCAD[J]. Insulators and Surge Arresters, 2012(2):105-110 [28] 张东, 陶凤源, 董新胜, 等. 哈密地区变压器直流偏磁仿真分析及抑制措施研究[J]. 电瓷避雷器, 2015(1):87-92 ZHANG Dong, TAO Fengyuan, DONG Xinsheng, et al. Analysis and simulation of transformer DC bias and measures of suppression in Hami region[J]. Insulators and Surge Arresters, 2015(1):87-92 [29] 王建, 马勤勇, 常喜强. ±800 kV天-中直流对哈密电网变压器直流偏磁影响的仿真和实测研究[J]. 高压电器, 2015, 51(11):168-175 WANG Jian, MA Qinyong, CHANG Xiqiang. Investigating the impacts of ±800 k V Tian-Zhong HVDC project on transformer DC magnetic bias in Hami power grid via simulation and measurement[J]. High Voltage Apparatus, 2015, 51(11):168-175 [30] 刘连光, 闫旭东, 马成廉, 等. 换流变压器编组和受端电网结构对其直流偏磁的影响研究[J]. 电网技术, 2016, 40(1):322-327 LIU Lianguang, YAN Xudong, MA Chenglian, et al. Research of converter transformer marshalling and receiving-end grid structure's effect on converter transformer DC bias[J]. Power System Technology, 2016, 40(1):322-327 [31] GUOS X, LIU L G, PIRJOLA R J, et al. Impact of the EHV power system on geomagnetically induced currents in the UHV power system[J]. IEEE Transactions on Power Delivery, 2015, 30(5):2163-2170. [32] 王华伟, 林少伯, 王祖力, 等. 溪浙特高压直流隔直装置存在的问题分析及改进[J]. 电网技术, 2015, 39(6):1600-1604 WANG Huawei, LIN Shaobo, WANG Zuli, et al. Problems analysis and improvement for neutral DC current blocking device used in xizhe UHVDC[J]. Power System Technology, 2015, 39(6):1600-1604 [33] 华东电力设计院, 浙江省电力设计院. 溪浙直流工程受端电网偏置测试与治理工作汇报[R]. 上海:华东电力设计院, 2014. [34] MA C. Effect of lateral earth resistivity changes on earth surface potential around dc grounding electrodes[J]. Applied Ecology and Environmental Research, 2019, 17(4):8555-8568.
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