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Evolutionary scheduling of flexible offers for balancing electricity supply and demand

机译:灵活报价的渐进调度,以平衡电力供需

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To address the needs of rapidly changing energy markets, an energy data management system capable of supporting higher utilization of renewable energy sources is being developed. The system receives flexible offers from producers and consumers of energy, aggregates them on a regional level and schedules the aggregated flexible offers to balance forecast energy supply and demand. This paper focuses on formulating and solving the optimization problem of scheduling aggregated flexible offers within such a system. Three metaheuristic scheduling algorithms (a randomized greedy search, an evolutionary algorithm and a hybrid between the two) tailored to this problem are introduced and their performance is assessed on a benchmark test problem and two realistic problems. The best results are achieved by the evolutionary algorithms, which can efficiently handle thousands of aggregated flex-offers.
机译:为满足快速变化的能源市场的需求,正在开发一种能够支持更高利用可再生能源的能源数据管理系统。该系统从能源的生产者和消费者收到灵活的供应,将它们聚集在区域一级,并调度聚合的灵活优惠以平衡预测能源供需。本文侧重于制定和解决在这种系统中调度聚合灵活优惠的优化问题。介绍了三种成像调度算法(随机贪婪搜索,演进算法与两者之间的杂交),并且在基准测试问题和两个现实问题上评估了它们的性能。进化算法实现了最佳结果,可以有效地处理数千个汇总的Flex提供。

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