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An Adaptive Robust Optimization Model for Power Systems Planning with Operational Uncertainty

机译:具有操作不确定性的电力系统规划自适应鲁棒优化模型

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There is an increasing necessity for new long-term planning models to adequately assess the flexibility requirements of significant levels of short-term operational uncertainty in power systems with large shares of variable renewable energy. In this context, this paper proposes an adaptive robust optimization model for the generation and transmission expansion planning problem. The proposed model has a two-stage structure that separates investment and operational decisions, over a given planning horizon. The key attribute of this model is the representation of daily operational uncertainty through the concept of representative days and the design of uncertainty sets that determine load and renewable power over such days. This setup allows an effective representation of the flexibility requirements of a system with large shares of variable renewable energy, and the consideration of a broad range of operational conditions. To efficiently solve the problem, the column and constraint generation method is employed. Extensive computational experiments on a 20-bus and a 149-bus representation of the Chilean power system over a 20-year horizon show the computational efficiency of the proposed approach, and the advantages as compared to a deterministic model with representative days, due to an effective spatial placement of both variable resources and flexible resources.
机译:新的长期规划模型越来越重要,以充分评估具有大量可变可再生能源的电力系统中大量短期运营不确定性的灵活性要求。在这种情况下,本文提出了一种用于生成和传输扩展规划问题的自适应鲁棒优化模型。拟议的模型具有两级结构,将投资和运营决策分开在给定的规划范围内。该模型的关键属性是通过代表性日的概念和不确定性集的设计来表示日常运行不确定性,以确定负载和可再生能力。该设置允许有效地表示具有大股可变可再生能源的系统的灵活性要求,并考虑广泛的操作条件。为了有效解决问题,采用列和约束生成方法。在20亿的20公交车上和149母线代表的广泛的计算实验,在20年来的20年间地平线上显示了所提出的方法的计算效率,以及与具有代表性日期的确定性模型相比的优势可变资源和灵活资源的有效空间放置。

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