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Voltage Stability Constrained Optimal Power Flow Using NSGA-II

机译:使用NSGA-II的电压稳定性约束最优潮流

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摘要

Voltage stability has become an important issue in planning and operation of many power systems. This work includes multi-objective evolutionary algorithm techniques such as Genetic Algorithm (GA) and Non-dominated Sorting Genetic Algorithm II (NSGA II) approach for solving Voltage Stability Constrained-Optimal Power Flow (VSC-OPF). Base case generator power output, voltage magnitude of generator buses are taken as the control variables and maximum L-index of load buses is used to specify the voltage stability level of the system. Multi-Objective OPF, formulated as a multi-objective mixed integer nonlinear optimization problem, minimizes fuel cost and minimizes emission of gases, as well as improvement of voltage profile in the system. NSGA-II based OPF-case 1-Two objective-Min Fuel cost and Voltage stability index; case 2-Three objective-Min Fuel cost, Min Emission cost and Voltage stability index. The above method is tested on standard IEEE 30-bus test system and simulation results are done for base case and the two severe contingency cases and also on loaded conditions.
机译:电压稳定性已成为许多电源系统规划和运行中的重要问题。这项工作包括多目标进化算法技术,例如遗传算法(GA)和非主导排序遗传算法II(NSGA II)方法,用于解决电压稳定约束的最优潮流(VSC-OPF)。基本情况下的发电机功率输出,发电机母线的电压幅值作为控制变量,负载母线的最大L指数用于指定系统的电压稳定性水平。多目标OPF公式化为多目标混合整数非线性优化问题,可最大程度地降低燃料成本和气体排放,并改善系统中的电压分布。基于NSGA-II的OPF案例1-两个目标-最低燃料成本和电压稳定性指数;案例2-三个目标-最低燃料成本,最低排放成本和电压稳定性指标。上面的方法在标准的IEEE 30总线测试系统上进行了测试,并针对基本情况和两个严重的意外情况以及在负载条件下进行了仿真结果。

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