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Model Reduction in Capacity Expansion Planning Problems via Renewable Generation Site Selection

机译:通过可再生生成站点选择减少容量扩展规划问题的模型

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The accurate representation of variable renewable generation (RES, e.g., wind, solar PV) assets in capacity expansion planning (CEP) studies is paramount to capture spatial and temporal correlations that may exist between sites and impact both power system design and operation. However, it typically has a high computational cost. This paper proposes a method to reduce the spatial dimension of CEP problems while preserving an accurate representation of renewable energy sources. A two-stage approach is proposed to this end. In the first stage, relevant sites are identified via a screening routine that discards the locations with little impact on system design. In the second stage, the subset of relevant RES sites previously identified is used in a CEP problem to determine the optimal configuration of the power system. The proposed method is tested on a realistic EU case study and its performance is benchmarked against a CEP set-up in which the entire set of candidate RES sites is available. The method shows great promise, with the screening stage consistently identifying 90% of the optimal RES sites while discarding up to 54% of the total number of candidate locations. This leads to a peak memory reduction of up to 41% and solver runtime gains between 31% and 46%, depending on the weather year considered.
机译:能力扩展规划(CEP)研究中可变可再生代(RE,例如风,太阳能光伏)资产的准确表示是捕获场地之间可能存在的空间和时间相关性,并影响电力系统设计和操作。但是,它通常具有高计算成本。本文提出了一种减少CEP问题的空间维度的方法,同时保持可再生能源的准确表示。这一结局提出了一种两级方法。在第一阶段,通过筛选例程识别相关网站,该例程丢弃对系统设计影响很小的位置。在第二阶段,先前识别的相关RES网站的子集用于CEP问题以确定电力系统的最佳配置。在现实的欧盟案例研究中测试了该方法,其性能与CEP设置有基准测试,其中整个候选RES网站可用。该方法具有很大的希望,筛选阶段一致地识别最佳RES站点的90%,同时丢弃候选地点总数的54%。这导致峰值记忆降低高达41%,求解器运行时间增益在31%和46%之间,具体取决于考虑的天气年。

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