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Investigation of Combined SVC and TCSC Versus IPFC in Enhancing Power System Static Security

机译:SVC和TCSC结合IPFC增强电力系统静态安全性的研究

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Electrical power systems are often required to operate at full loading capacity due to ever increasing demand and transmission line contingencies with limited grid expansion. This results in line overload and operating near system limit, thereby threatening system security. Utilization of existing system can be achieved using Flexible Alternating Current Transmission System (FACTS) devices without violating system limits. This research investigation involves static security assessment of a modelled IEEE 30-bus test system in MATLAB/SIMULINK/PSAT environment. The security status with the incorporation of combined Static Var Compensator (SVC), Thyristor Controlled Series Compensator (TCSC) and Interline Power Flow Controller (IPFC) were determined. Prior to this, Contingency Severity Index (CSI) based on Performance Index (PI) of Voltage and Active Power was employed to determine the optimal location of the FACTS devices. Sequential Quadratic Programming (SQP) was applied to determine the optimal sizing/percentage compensation of FACTS. Subsequently, power system with and without the incorporation of FACTS devices were modelled. The ability of the compensated system to withstand credible transmission line contingencies without violating the normal operating limits (bus voltage and line thermal) was examined and presented. The paper presents how combined SVC/TCSC and an IPFC aided the power system to boost its steady state security in the face of possible line contingencies.
机译:由于不断增长的需求和输电线路突发事件以及有限的电网扩展,经常需要电力系统以满负荷运行。这会导致线路过载并在系统极限附近运行,从而威胁系统安全性。使用灵活的交流输电系统(FACTS)设备可以实现对现有系统的利用,而不会违反系统限制。这项研究涉及在MATLAB / SIMULINK / PSAT环境中对建模的IEEE 30总线测试系统进行静态安全评估。确定了结合了静态无功补偿器(SVC),晶闸管控制串联补偿器(TCSC)和线间潮流控制器(IPFC)的安全状态。在此之前,基于电压和有功功率的性能指标(PI)的应急严重性指标(CSI)被用来确定FACTS设备的最佳位置。顺序二次规划(SQP)用于确定FACTS的最佳尺寸/百分比补偿。随后,对带有或不带有FACTS设备的电力系统进行了建模。检验并介绍了补偿系统在不违反正常工作限制(总线电压和线路热)的情况下承受可靠的传输线意外情况的能力。本文介绍了SVC / TCSC和IPFC的结合如何在电力系统可能发生线路意外事件时帮助电力系统提高其稳态安全性。

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