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On the Importance of Renewable Data's Spatial Dependence for Planning of Distribution Systems

机译:关于可再生数据对分销系统规划的空间依赖性的重要性

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By the development of distribution network planning problems, random variables have become an important consideration as their correlation might be ignored for the simplicity. In this study, the impacts of spatial dependency/correlation in terms of distribution network planning problem are investigated by using a Monte Carlo Simulation based optimization framework. This model minimizes the investment and maintenance costs of substations, transformers, feeders, renewable generators while satisfying the chance constraints related to feeder capacities, voltage constraints, and substation capacities. In order to apply this model, an integer genetic algorithm is utilized along with the linearized load flow equations. The case studies applied through the modified 34-nodes test system show that the consideration of spatial dependence yields different investment results.
机译:通过开发分发网络规划问题,随机变量已经成为一个重要的考虑因素,因为它们的相关性可能忽略了简单性。在这项研究中,通过使用基于蒙特卡罗模拟的优化框架来研究空间依赖/相关性在分发网络规划问题方面的影响。该模型最大限度地减少了变电站,变电器,馈线,可再生发电机的投资和维护成本,同时满足与馈线容量,电压约束和变电容量相关的机会限制。为了应用该模型,将整数遗传算法与线性化负载流程方程一起使用。通过修改的34节点测试系统应用的案例研究表明,考虑空间依赖性产生不同的投资结果。

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