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无功静补装置的稳态工况及电抗器脱落过电压分析 被引量:2
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作者 王晓林 尹克宁 《高压电器》 CAS CSCD 北大核心 1994年第2期26-30,共5页
对无功静补装置(SVC)的稳态运行工况进行了分析,并就电抗器脱落时产生的过电压进行了数值计算,得到了产生谐振的条件及电抗器单相脱落时会产生更严重的过电压等结论,对于这些现象应给予足够的重视.
关键词 运行 电抗器 过电压 无功静补装置
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Optimum allocation of FACTS devices in Fars Regional Electric Network using genetic algorithm based goal attainment
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作者 Mohsen GITIZADEH Mohsen KALANTAR 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2009年第4期478-487,共10页
This paper presents a novel approach to find optimum locations and capacity of flexible alternating current transmission system (FACTS) devices in a power system using a multi-objective optimization function. Thyristo... This paper presents a novel approach to find optimum locations and capacity of flexible alternating current transmission system (FACTS) devices in a power system using a multi-objective optimization function. Thyristor controlled series compensators (TCSCs) and static var compensators (SVCs) are the utilized FACTS devices. Our objectives are active power loss reduction, newly introduced FACTS devices cost reduction, voltage deviation reduction, and increase on the robustness of the security margin against voltage collapse. The operational and controlling constraints, as well as load constraints, were considered in the optimum allocation. A goal attainment method based on the genetic algorithm (GA) was used to approach the global optimum. The estimated annual load profile was utilized in a sequential quadratic programming (SQP) optimization sub-problem to the optimum siting and sizing of FACTS devices. Fars Regional Electric Network was selected as a practical system to validate the performance and effectiveness of the proposed method. The entire investment of the FACTS devices was paid off and an additional 2.4% savings was made. The cost reduction of peak point power generation implies that power plant expansion can be postponed. 展开更多
关键词 Flexible alternating current transmission system (FACTS) devices allocation Multi-objective optimization Geneticalgorithm (GA) Goal attainment
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