Multi-Objective optimal scheduling of energy Hubs, integrating different solar generation technologies considering uncertainty

IF 5 2区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC International Journal of Electrical Power & Energy Systems Pub Date : 2024-08-27 DOI:10.1016/j.ijepes.2024.110198
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Abstract

For a few decades, operators of energy systems have sought to achieve appropriate frameworks due to energy crises and rapid growth in energy requirements. In this regard, this study presents a multi-objective optimization model for an energy hub (EH) designed to manage a diverse energy portfolio. The EH receives electricity, natural gas, hydrogen, seawater, and solar energy as inputs, aiming to satisfy electricity, heating, and freshwater demands at the output port while considering a limited available area. The model incorporates the selection of the optimal solar energy technology (photovoltaics, parabolic dish, or parabolic trough collector) through a comprehensive evaluation encompassing technical, economic, and environmental aspects. To achieve optimal scheduling of the EH’s production units, the model factors in forecasts of solar energy availability alongside electrical, heat, and water load demands. The evaluation of the EH’s performance is conducted through a multi-objective framework considering social welfare, CO2 emissions, voltage stability margin (VSM), a newly proposed simplified fast temperature stability index (SFTSI), and a similarly novel simplified fast pressure stability index (SFPSI). The optimization problem is formulated within a MATLAB environment and solved using a multi-objective Archimedes optimization algorithm across five distinct case studies, each characterized by a varying designated area for solar energy generation. The effectiveness of the proposed model and optimization technique is validated through test systems, with the obtained results demonstrating significant improvements compared to a baseline scenario. These improvements include a 36.18% reduction in CO2 emissions, a 14.22% increase in total social welfare, and reductions in the average values of VSM, SFTSI, and SFPSI when incorporating all solar energy technologies.

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能源枢纽的多目标优化调度,在考虑不确定性的情况下整合不同的太阳能发电技术
几十年来,由于能源危机和能源需求的快速增长,能源系统运营商一直在寻求建立适当的框架。为此,本研究提出了一个能源枢纽(EH)的多目标优化模型,旨在管理多样化的能源组合。EH 接收电力、天然气、氢气、海水和太阳能作为输入,旨在满足输出端口的电力、供热和淡水需求,同时考虑到可用面积有限。该模型通过技术、经济和环境等方面的综合评估,选择最佳太阳能技术(光伏、抛物面碟形或抛物面槽式集热器)。为实现 EH 生产单元的优化调度,该模型将太阳能可用性预测与电力、热能和水负荷需求一并考虑在内。对 EH 性能的评估是通过多目标框架进行的,该框架考虑了社会福利、二氧化碳排放、电压稳定裕度(VSM)、新提出的简化快速温度稳定指数(SFTSI)以及类似的新简化快速压力稳定指数(SFPSI)。优化问题在 MATLAB 环境中制定,并在五个不同的案例研究中使用多目标阿基米德优化算法求解,每个案例研究的特点是指定的太阳能发电区域各不相同。通过测试系统验证了所提模型和优化技术的有效性,与基线方案相比,所获得的结果显示了显著的改进。这些改进包括二氧化碳排放量减少 36.18%,社会总福利增加 14.22%,以及在采用所有太阳能技术时 VSM、SFTSI 和 SFPSI 平均值的降低。
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来源期刊
International Journal of Electrical Power & Energy Systems
International Journal of Electrical Power & Energy Systems 工程技术-工程:电子与电气
CiteScore
12.10
自引率
17.30%
发文量
1022
审稿时长
51 days
期刊介绍: The journal covers theoretical developments in electrical power and energy systems and their applications. The coverage embraces: generation and network planning; reliability; long and short term operation; expert systems; neural networks; object oriented systems; system control centres; database and information systems; stock and parameter estimation; system security and adequacy; network theory, modelling and computation; small and large system dynamics; dynamic model identification; on-line control including load and switching control; protection; distribution systems; energy economics; impact of non-conventional systems; and man-machine interfaces. As well as original research papers, the journal publishes short contributions, book reviews and conference reports. All papers are peer-reviewed by at least two referees.
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