Scheduling and real-time control of flexible loads and storage in electricity markets under uncertainty

Stavros Karagiannopoulos, E. Vrettos, G. Andersson, M. Zima
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引用次数: 13

Abstract

In many countries, groups of producers and consumers are organized into virtual entities to participate in electricity markets. These entities are called balance groups (BGs), or are given similar names, because they are responsible for maintaining an energy balance for the group, and experience costs in case of imbalances. With large shares of uncertain renewable energy sources (RES), BGs are exposed to the risk of high balancing costs. In this paper, we propose a day-ahead (DA) scheduling and a real-time (RT) control scheme to minimize the spot market and balancing costs of a BG using flexible loads and storage resources. In the DA scheduling problem, we account for RES and price uncertainties by formulating a two-stage stochastic optimization problem with recourse. The RT control problem is formulated as a stochastic model predictive control (MPC) problem that uses short-term RES forecasts. We demonstrate the performance of the proposed scheme considering a BG with a wind farm, an industrial load, and a pumped-storage plant. The results show that the proposed scheme reduces the BG costs, but the cost savings vary and are case dependent.
电力市场不确定条件下柔性负荷与存储的调度与实时控制
在许多国家,生产者和消费者团体被组织成虚拟实体,参与电力市场。这些实体被称为平衡组(bg),或者有类似的名称,因为它们负责维持群体的能量平衡,并在不平衡的情况下承担成本。由于大量不确定的可再生能源(RES), bg面临着高平衡成本的风险。在本文中,我们提出了一种日前调度和实时控制方案,以最大限度地减少现货市场,并利用灵活的负载和存储资源平衡BG的成本。在数据处理调度问题中,我们通过建立一个带追索权的两阶段随机优化问题来考虑RES和价格的不确定性。RT控制问题被表述为使用短期RES预测的随机模型预测控制(MPC)问题。我们演示了考虑具有风电场,工业负荷和抽水蓄能工厂的BG的拟议方案的性能。结果表明,所提出的方案降低了BG成本,但成本节约有所不同,且取决于具体情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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