Optimal scheduling of combined pumped storage-wind-photovoltaic-thermal generation system considering the characteristics of source and load

IF 1.9 4区 工程技术 Q4 ENERGY & FUELS Journal of Renewable and Sustainable Energy Pub Date : 2023-09-01 DOI:10.1063/5.0157303
Kun Ding, Changhai Yang, Zhuxiu Wang, Chunjuan Zhao
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Abstract

With the rapid development of renewable energy, the integration of multiple power sources into combined power generation systems has emerged as an efficient approach for the energy utilization. Pumped storage power stations, as large-capacity flexible energy storage equipment, play a crucial role in peak load shifting, valley filling, and the promotion of new energy consumption. This study focuses on the combined pumped storage-wind-photovoltaic-thermal generation system and addresses the challenges posed by fluctuating output of wind and photovoltaic sources. First, a K-means clustering analysis technology has been introduced to identify the typical daily scene output and load fluctuation patterns in an energy base in northwest China. Based on the operation constraints of each subsystem, aiming at the optimal comprehensive benefit, minimum generalized load fluctuation, and minimum carbon emission, an operation optimization scheduling model for the pumped storage-wind-photovoltaic-thermal combined power generation system has been established. When the optimization model has a configuration scale of 3000 MW for wind power and 2800 MW for photovoltaics, the pumped storage power station in the combined power generation system can achieve full pumping for 4 h and full generation for 5 h, which plays an obvious role in peak and valley regulation. Meanwhile, the combined system minimizes operating costs and carbon emissions, resulting in a minimum fluctuation of thermal power output by 6.6%. Furthermore, different capacity configurations demonstrate a non-linear relationship between the comprehensive benefits, carbon emissions, and the scene penetration rate. When prioritizing economic stability over carbon emissions, a thermal power capacity configuration of 7200 MW leads to the lowest total operating cost for the combined system, amounting to 26.38 million ¥. Results indicate that pumped storage effectively suppresses grid power fluctuations, promotes the consumption of renewable energy sources, and enhances the stability of thermal power output.
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考虑源负荷特性的抽水蓄能-风-光-热联合发电系统优化调度
随着可再生能源的快速发展,多源并网发电已成为一种高效的能源利用方式。抽水蓄能电站作为大容量柔性储能设备,在移峰填谷、促进新能源消纳等方面发挥着至关重要的作用。本研究的重点是抽水蓄能-风能-光伏-热能联合发电系统,并解决了风能和光伏资源输出波动带来的挑战。首先,引入k均值聚类分析技术,对西北某能源基地的典型日场景输出和负荷波动模式进行识别。基于各分系统运行约束,以综合效益最优、负荷广义波动最小、碳排放最小为目标,建立了抽水蓄能-风-光-热联产系统运行优化调度模型。当优化模型配置规模为风电3000 MW、光伏2800 MW时,联合发电系统中的抽水蓄能电站可实现满抽水4 h、满发电5 h,调峰调谷作用明显。同时,联合系统最大限度地降低了运行成本和碳排放,使火电输出波动最小,达到6.6%。此外,不同容量配置在综合效益、碳排放和场景渗透率之间表现出非线性关系。当经济稳定优先于碳排放时,7200兆瓦的火电容量配置使联合系统的总运行成本最低,为2638万元。结果表明,抽水蓄能能有效抑制电网电力波动,促进可再生能源消纳,增强火电输出稳定性。
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来源期刊
Journal of Renewable and Sustainable Energy
Journal of Renewable and Sustainable Energy ENERGY & FUELS-ENERGY & FUELS
CiteScore
4.30
自引率
12.00%
发文量
122
审稿时长
4.2 months
期刊介绍: The Journal of Renewable and Sustainable Energy (JRSE) is an interdisciplinary, peer-reviewed journal covering all areas of renewable and sustainable energy relevant to the physical science and engineering communities. The interdisciplinary approach of the publication ensures that the editors draw from researchers worldwide in a diverse range of fields. Topics covered include: Renewable energy economics and policy Renewable energy resource assessment Solar energy: photovoltaics, solar thermal energy, solar energy for fuels Wind energy: wind farms, rotors and blades, on- and offshore wind conditions, aerodynamics, fluid dynamics Bioenergy: biofuels, biomass conversion, artificial photosynthesis Distributed energy generation: rooftop PV, distributed fuel cells, distributed wind, micro-hydrogen power generation Power distribution & systems modeling: power electronics and controls, smart grid Energy efficient buildings: smart windows, PV, wind, power management Energy conversion: flexoelectric, piezoelectric, thermoelectric, other technologies Energy storage: batteries, supercapacitors, hydrogen storage, other fuels Fuel cells: proton exchange membrane cells, solid oxide cells, hybrid fuel cells, other Marine and hydroelectric energy: dams, tides, waves, other Transportation: alternative vehicle technologies, plug-in technologies, other Geothermal energy
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