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Unified unit commitment formulation and fast multi-service LP model for flexibility evaluation in sustainable power systems

机译:统一的单位承诺制定和快速的多服务LP模型,用于可持续电力系统中的灵活性评估

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Classical unit commitment (UC) algorithms may be extremely time-consuming when applied to large systems and for long term simulations (for instance, a year) and may not consider all the features required for flexibility assessment, including analysis of different reserve types. In this light, this paper presents a novel flexibility-oriented unified formulation of a large-scale scheduling model considering multiple types of plants (including storage) and reserves, which can seamlessly model binary (BUC), mixed integer linear programming (MILP), and relaxed linear programming (LP) UC. Comparisons are carried out on several case studies for a reduced model of Great Britain, assessing loss of accuracy (as measured according to various metrics specifically introduced) against computational benefits in different renewables scenarios with more or less flexible systems. It is demonstrated how the computational time of the LP model is significantly less than the BUC and MILP approaches while capturing with relatively high precision all the relevant flexibility requirements and allocation of multiple types of reserves to different types of plants. The results indicate that the proposed fast LP model could be suitable for various computationally intensive flexibility studies (e.g., Monte Carlo simulations or planning), with significant reduction in simulation time and only minor errors relative to established MILP models.
机译:当应用于大型系统和长期模拟(例如一年)时,经典单位承诺(UC)算法可能会非常耗时,并且可能不会考虑灵活性评估所需的所有功能,包括对不同储量类型的分析。有鉴于此,本文提出了一种新颖的面向灵活性的大型调度模型的统一表述,该模型考虑了多种类型的工厂(包括存储)和储备,可以无缝地对二进制(BUC),混合整数线性规划(MILP),以及宽松的线性规划(LP)UC。针对英国的简化模型,在几个案例研究中进行了比较,评估了准确性的损失(根据专门引入的各种度量标准衡量)与或多或少具有灵活性的系统在不同可再生能源情景中的计算效益。证明了LP模型的计算时间如何比BUC和MILP方法显着减少,同时以相对较高的精度捕获了所有相关的灵活性要求以及将多种类型的储备分配给不同类型的植物。结果表明,所提出的快速LP模型可能适用于各种计算密集型灵活性研究(例如,蒙特卡洛模拟或规划),并且与建立的MILP模型相比,模拟时间显着减少并且只有很小的误差。

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