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Dynamic Optimization Based Reactive Power Planning to Mitigate Slow Voltage Recovery and Short Term Voltage Instability

机译:基于动态优化的无功功率规划可缓解缓慢的电压恢复和短期电压不稳定

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Short term voltage stability poses a significant threat to system stability and reliability. This paper applies dynamic VAr injection to ensure short term voltage stability following a large disturbance in a power system with high concentration of induction motor loads. Decelerating and stalling of induction motor loads is considered to be the major cause of fault induced delayed voltage recovery (FIDVR) and short term voltage stability. If system dynamics are not taken into account properly, the proposed control solution may be an expensive over design or an under design that is not capable of eliminating FIDVR problems completely. In this work, the optimal amount and locations for installing dynamic reactive resources are found by control vector parameterization (CVP), a dynamic optimization approach. The efficiency and effectiveness of this approach is improved by utilizing results from trajectory sensitivity analysis, singular value decomposition and linear programming optimization. Dynamic optimization based on CVP approach is tested in an IEEE 162-bus system and a realistic large scale utility power system.
机译:短期电压稳定性对系统稳定性和可靠性构成重大威胁。本文采用动态VAr注入来确保在感应电机负载集中的电力系统中出现大扰动后的短期电压稳定性。感应电动机负载的减速和失速被认为是故障引起的延迟电压恢复(FIDVR)和短期电压稳定性的主要原因。如果未适当考虑系统动力学,则所提出的控制解决方案可能会过于昂贵,或者无法完全消除FIDVR问题的设计不足。在这项工作中,通过动态优化方法控制矢量参数化(CVP)找到了安装动态无功资源的最佳数量和位置。利用轨迹灵敏度分析,奇异值分解和线性规划优化的结果,可以提高这种方法的效率和有效性。在IEEE 162总线系统和现实的大型公用事业电力系统中测试了基于CVP方法的动态优化。

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