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An Artificial Intelligence framework for bidding optimization with uncertainty in multiple frequency reserve markets

机译:用于多次频率储备市场不确定性的竞标优化的人工智能框架

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摘要

The global ambitions of a carbon-neutral society necessitate a stable and robust smart grid that capitalizes on frequency reserves of renewable energy. Frequency reserves are resources that adjust power production or consumption in real time to react to a power grid frequency deviation. Revenue generation motivates the availability of these resources for managing such deviations. However, limited research has been conducted on data-driven decisions and optimal bidding strategies for trading such capacities in multiple frequency reserves markets. We address this limitation by making the following research contributions. Firstly, a generalized model is designed based on an extensive study of critical characteristics of global frequency reserves markets. Secondly, three bidding strategies are proposed, based on this market model, to capitalize on price peaks in multi-stage markets. Two strategies are proposed for non-reschedulable loads, in which case the bidding strategy aims to select the market with the highest anticipated price, and the third bidding strategy focuses on rescheduling loads to hours on which highest reserve market prices are anticipated. The third research contribution is an Artificial Intelligence (AI) based bidding optimization framework that implements these three strategies, with novel uncertainty metrics that supplement data-driven price prediction. Finally, the framework is evaluated empirically using a case study of multiple frequency reserves markets in Finland. The results from this evaluation confirm the effectiveness of the proposed bidding strategies and the AI-based bidding optimization framework in terms of cumulative revenue generation, leading to an increased availability of frequency reserves.
机译:碳中性社会的全球野心需要一种稳定且坚固的智能电网,可以利用可再生能源的频率储备。频率储备是在实时调整电力生产或消耗的资源,以便对电网频率偏差进行反应。收入产生激励这些资源的可用性来管理此类偏差。但是,已经在数据驱动的决策和最佳招标策略上进行了有限的研究,以交易多频储量市场的这种能力。我们通过提出以下研究贡献来解决这一限制。首先,基于对全局频率储备市场的关键特性的广泛研究设计了广义模型。其次,提出了基于该市场模型的三项竞标策略,以利用多阶段市场的价格峰值。为不可重载的负荷提出了两种策略,在这种情况下,招标策略旨在以最高预期的价格选择市场,第三次招标策略侧重于重新安排负荷,以便预期最高储备市场价格的数小时。第三次研究贡献是一种基于人工智能(AI)的竞标优化框架,其实现了这三种策略,具有补充数据驱动的价格预测的新颖性不确定性度量。最后,框架是用芬兰多频储量市场的案例研究来评估。该评估结果证实了拟议的招标策略和基于AI的竞标优化框架的有效性,从而导致频率储备的可用性增加。

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