为分析500 k V变电站内干式空心电抗器频繁故障的原因,对干式空心电抗器的结构、特点进行了研究,在分析电网内发生的多起干式空心电抗器故障后发现,引起电抗器故障的最直接原因为匝间短路且故障多发生在干式电抗器投入运行1 h内,引起匝...为分析500 k V变电站内干式空心电抗器频繁故障的原因,对干式空心电抗器的结构、特点进行了研究,在分析电网内发生的多起干式空心电抗器故障后发现,引起电抗器故障的最直接原因为匝间短路且故障多发生在干式电抗器投入运行1 h内,引起匝间短路的原因为维护不当、正常投切过程中产生的操作过电压、制造工艺不良、制造材料不良等,线圈匝间绝缘缺陷、包封表面缺陷、局部温升过高是容易导致干式空心电抗器发生故障的3个薄弱环节。根据这些故障特点,从严格执行反措、加强日常巡维等方面对干式空心电抗器的故障提出了有效的防护措施。展开更多
Cloud computing technology is used in traveling wave fault location,which establishes a new technology platform for multi-terminal traveling wave fault location in complicated power systems.In this paper,multi-termina...Cloud computing technology is used in traveling wave fault location,which establishes a new technology platform for multi-terminal traveling wave fault location in complicated power systems.In this paper,multi-terminal traveling wave fault location network is developed,and massive data storage,management,and algorithm realization are implemented in the cloud computing platform.Based on network topology structure,the section connecting points for any lines and corresponding detection placement in the loop are determined first.The loop is divided into different sections,in which the shortest transmission path for any of the fault points is directly and uniquely obtained.In order to minimize the number of traveling wave acquisition unit(TWU),multi-objective optimal configuration model for TWU is then set up based on network full observability.Finally,according to the TWU distribution,fault section can be located by using temporal correlation,and the final fault location point can be precisely calculated by fusing all the times recorded in TWU.PSCAD/EMTDC simulation results show that the proposed method can quickly,accurately,and reliably locate the fault point under limited TWU with optimal placement.展开更多
文摘为分析500 k V变电站内干式空心电抗器频繁故障的原因,对干式空心电抗器的结构、特点进行了研究,在分析电网内发生的多起干式空心电抗器故障后发现,引起电抗器故障的最直接原因为匝间短路且故障多发生在干式电抗器投入运行1 h内,引起匝间短路的原因为维护不当、正常投切过程中产生的操作过电压、制造工艺不良、制造材料不良等,线圈匝间绝缘缺陷、包封表面缺陷、局部温升过高是容易导致干式空心电抗器发生故障的3个薄弱环节。根据这些故障特点,从严格执行反措、加强日常巡维等方面对干式空心电抗器的故障提出了有效的防护措施。
基金the Key Project of Smart Grid Technology and Equipment of National Key Research and Development Plan of China(2016YFB0900600)Project supported by the National Natural Science Foundation Fund for Distinguished Young Scholars(51425701)+2 种基金the National Natural Science Foundation of China(51207013)the Hunan Province Natural Science Fund for Distinguished Young Scholars(2015JJ1001)the Education Department of Hunan Province Project(15C0032).
文摘Cloud computing technology is used in traveling wave fault location,which establishes a new technology platform for multi-terminal traveling wave fault location in complicated power systems.In this paper,multi-terminal traveling wave fault location network is developed,and massive data storage,management,and algorithm realization are implemented in the cloud computing platform.Based on network topology structure,the section connecting points for any lines and corresponding detection placement in the loop are determined first.The loop is divided into different sections,in which the shortest transmission path for any of the fault points is directly and uniquely obtained.In order to minimize the number of traveling wave acquisition unit(TWU),multi-objective optimal configuration model for TWU is then set up based on network full observability.Finally,according to the TWU distribution,fault section can be located by using temporal correlation,and the final fault location point can be precisely calculated by fusing all the times recorded in TWU.PSCAD/EMTDC simulation results show that the proposed method can quickly,accurately,and reliably locate the fault point under limited TWU with optimal placement.