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Integrated distribution expansion planning considering stochastic renewable energy resources and electric vehicles

机译:考虑随机可再生能源资源和电动汽车的综合分配扩展规划

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摘要

Renewable energy resources and transport electrification have become essential components of modern and future distribution planning. Despite the impetus of economic and environmental benefits, the uncertainty brought in poses challenges. In this paper, we propose an integrated expansion planning framework based on a multiobjective mixed-integer nonlinear program. The aim is to minimize the net present value of investments considering feeder routing, substation alterations and construction while maximizing the utilization of proposed charging stations. Distributed generation and load uncertainties, recast in two-stage stochastic programming, are tackled with a scenario generation and reduction technique using a probabilistic approach with Kantorovich metrics. The final number of the scenarios are validated with an alternative clustering method. A flow-based location-allocation theory with user equilibrium traffic assignment model is exploited to site charging stations. The sizing problem is determined using continuous-time Markov chain modeling. The proposed framework is solved with a multiobjective Tchebycheff decomposition-based evolutionary algorithm and tested on a modified 54 bus distribution network and 25 transportation node system. Numerical results demonstrate the capability of the proposed method. Distribution planning authorities can benefit from the presented approach to make intertemporal investment decisions while maintaining the quality of system performance.
机译:可再生能源和运输电气化已成为现代和未来分配规划的基本组成部分。尽管经济和环境效益有动力,但不确定性带来了挑战。在本文中,我们提出了一种基于多目标混合整数非线性程序的集成扩展规划框架。目的是最小化考虑饲养路由,变电站改变和施工的投资的净目前价值,同时最大限度地利用所提出的充电站的利用率。两阶段随机编程中的分布式发电和负载不确定性,采用诸如kantorovich指标的概率方法的场景生成和减少技术。使用替代聚类方法验证方案的最终数量。利用用户均衡交通分配模型的基于流基的位置分配理论被利用到现场充电站。使用连续时间马尔可夫链建模确定尺寸尺寸问题。所提出的框架用基于多目标Tchebycheff分解的进化算法来解决,并在修改的54总线分配网络和25个运输节点系统上进行测试。数值结果证明了所提出的方法的能力。分配规划当局可以从提出的方法中受益,以使跨现期投资决策进行维护,同时保持系统性能的质量。

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