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Optimal allocation of stochastically dependent renewable energy based distributed generators in unbalanced distribution networks

机译:不平衡配电网中基于随机可再生能源的分布式发电机的最优分配

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摘要

This paper proposes an algorithm for modeling stochastically dependent renewable energy based distributed generators for the purpose of proper planning of unbalanced distribution networks. The proposed algorithm integrate the diagonal band Copula and sequential Monte Carlo method in order to accurately consider the multivariate stochastic dependence between wind power, photovoltaic power and the system demand. Secondly, an efficient algorithm based on modification of the traditional Big Bang-Big crunch method is proposed for optimal placement of renewable energy based distributed generators in the presence of dispatchable distributed generation. The proposed optimization algorithm aims to minimize the energy loss in unbalanced distribution systems by determining the optimal locations of non-dispatchable distributed generators and the optimal hourly power schedule of dispatchable distributed generators. The proposed algorithms are implemented in MATLAB environment and tested on the IEEE 37-node feeder. Several case studies are done and the subsequent discussions show the effectiveness of the proposed algorithms.
机译:本文提出了一种算法,用于对随机相关的基于可再生能源的分布式发电机建模,以正确规划不平衡的配电网络。所提出的算法将对角带Copula和顺序蒙特卡罗方法相结合,以便准确地考虑风能,光伏发电和系统需求之间的多元随机依赖性。其次,提出了一种基于传统大爆炸算法的改进算法,在可调度分布式发电存在的情况下,优化了可再生能源分布式发电机的配置。所提出的优化算法旨在通过确定不可分派的分布式发电机的最佳位置和可分派的分布式发电机的最佳每小时功率计划,来最大程度地减少不平衡配电系统中的能量损失。所提出的算法在MATLAB环境中实现,并在IEEE 37节点馈线上进行了测试。进行了一些案例研究,随后的讨论表明了所提出算法的有效性。

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