不确定环境下带配电和电容器的重构微电网多目标规划模型

V. Murty, Ashwani Kumar
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引用次数: 1

摘要

针对不确定环境下重构微电网中配电机组和电容器组的最优布局和最优尺寸问题,提出了蚁狮优化、遗传算法和通用代数建模系统的混合优化方法。适当的概率模型考虑了电力需求和太阳辐照度的不确定性。研究了有无可再生能源和重构相互作用的无功补偿方案。该方法已在负荷随小时变化的IEEE 69总线测试系统上进行了测试。数值计算结果表明,该方法在降低功率损耗、改善电压分布和节约成本方面具有显著的优势。
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Multi-objective Planning Model for Reconfigured Microgrids with Distribution Generation and Capacitors under Uncertainty Environment
In this paper, a hybrid optimization combination of ant lion optimization (ALO), genetic algorithm and general algebraic modelling system (GAMS) is presented for optimal placement and sizing of distribution generation and capacitor banks in reconfigured microgrids under uncertainty environment. Appropriate probabilistic models are considered to take care of uncertainty in electricity demand and solar irradiance. Various scenarios are investigated for reactive power compensation with and without interaction of renewable energy sources and reconfiguration. The proposed method is tested on IEEE 69-bus test systems with hourly varying load profile. Numerical results shows that the proposed technique provide significant benefits of reduction in power loss, improvement in voltage profile and cost savings.
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