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High Voltage Mitigation of EHV System by Shunt Reactor vs Shunt Capacitor

机译:通过顺声反应器VS分流电容器高压减缓EHV系统

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Rajasthan power system has extensively grown in last 10 years due to potential of wind & solar power projects, construction of transmission system for formation of National Grid and for evacuation of large thermal power plants. Large number of 765 kV and 400 kV transmission lines have been constructed. Due to variability of wind and solar power generation, quantum and also direction of power flow on transmission lines is significantly changed. State Load Dispatch Center has instructed to switch off shunt capacitors from 6 pm to 6 am to control high voltage. This paper presents a comparative case study to control high voltage in power system by switching ON shunt reactors vs switching OFF shunt capacitors. Rajasthan power system has four 765 kV GSS, twenty-seven 400 kV GSS, one twenty-two 220 kV GSS and four fifty-two 132 kV GSS is selected to carry out simulation-based case study in MiPower software. Simulation model consists of 943 buses including 85 generator buses, 1142 transmission lines and 201 transformers. The daily routine grid operations without assessing the outcome or achievement level lead to create problems in power network. Shunt reactors are switched OFF at seven 400 kV grid sub stations where as to reduce high voltage shunt capacitor banks have been switched OFF. Case studies are carried out to observe the effect of switching ON shunt reactors to control high voltage instead of switching OFF shunt capacitors. Test network loading is about 10000 MW. The impact on voltage profile of buses, system losses, financial analysis, loadings of system elements is presented at last.
机译:由于风能和太阳能工程,施工制度的潜力,拉贾斯坦邦电力系统在过去10年内广泛发展,形成国家电网的传动系统和大型火力发电厂的疏散。建设了大量765 kV和400 kV输电线路。由于风和太阳能发电的可变性,量子和输电线路上的电流方向显着改变。状态负荷调度中心已指示从6 PM至6 AM关闭分流电容以控制高电压。本文通过开启分流抗滤波器VS关闭分流电容来介绍对电力系统高压的比较案例研究。 Rajasthan电力系统有四个765 kV GSS,二十七个400 kV GSS,选择了一台二十二个220 kV GSS和四个五十二个132 kV GSS,以便在灰化软件中执行基于模拟的案例研究。仿真模型包括943母线,包括85个发电机总线,1142个传输线和201变压器。日常常规网格运营,而不评估结果或成就水平导致电网中的问题。在七个400 kV网格站点关闭并联反应器,以减少高压分流电容器组已关闭。进行案例研究以观察切换在分流反应器上的效果,以控制高电压而不是切断分流电容器。测试网络负载约为10000 MW。最后对公共汽车,系统损失,财务分析,系统元素的负载的影响施加了对电压曲线的影响。

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