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Flexible Transmission Network Expansion Planning Considering Uncertain Renewable Generation and Load Demand Based on Hybrid Clustering Analysis

机译:基于混合聚类分析的不确定可再生发电和负荷需求的柔性输电网络扩展规划

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This paper presents a flexible transmission network expansion planning (TNEP) approach considering uncertainty. A novel hybrid clustering technique, which integrates the graph partitioning method and rough fuzzy clustering, is proposed to cope with uncertain renewable generation and load demand. The proposed clustering method is capable of recognizing the actual cluster distribution of complex datasets and providing high-quality clustering results. By clustering the hourly data for renewable generation and load demand, a multi-scenario model is proposed to consider the corresponding uncertainties in TNEP. Furthermore, due to the peak distribution characteristics of renewable generation and heavy investment in transmission, the traditional TNEP, which caters to rated renewable power output, is usually uneconomic. To improve the economic efficiency, the multi-objective optimization is incorporated into the multi-scenario TNEP model, while the curtailment of renewable generation is considered as one of the optimization objectives. The solution framework applies a modified NSGA-II algorithm to obtain a set of Pareto optimal planning schemes with different levels of investment costs and renewable generation curtailments. Numerical results on the IEEE RTS-24 system demonstrated the robustness and effectiveness of the proposed approach.
机译:本文提出了一种考虑不确定性的灵活的传输网络扩展规划(TNEP)方法。提出了一种新的混合聚类技术,将图划分方法和粗糙模糊聚类相结合,以应对不确定的可再生能源发电和负荷需求。所提出的聚类方法能够识别复杂数据集的实际聚类分布并提供高质量的聚类结果。通过将可再生发电和负荷需求的小时数据进行聚类,提出了一种多情景模型来考虑TNEP中的相应不确定性。此外,由于可再生能源发电的高峰分布特征和对输电的大量投资,迎合额定可再生能源输出的传统TNEP通常不经济。为了提高经济效益,将多目标优化纳入了多情景TNEP模型,而减少可再生能源发电被视为优化目标之一。该解决方案框架应用了改进的NSGA-II算法,以获取一组具有不同水平的投资成本和可再生能源发电限制的帕累托最优计划方案。 IEEE RTS-24系统的数值结果证明了该方法的鲁棒性和有效性。

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