考虑需求侧能源管理的可再生能源枢纽最优日前调度

M. Daneshvar, B. Mohammadi-ivatloo, S. Asadi, K. Zare, A. Anvari‐Moghaddam
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引用次数: 27

摘要

近几十年来,各种分布式能源的渗透率不断提高,使得各种能源之间的相互作用成为必然。在这方面,能源中心的创建是为了考虑整个智能电网中多载波能源系统之间的相互作用。本研究以能源枢纽成本最小为目标,考虑了日前市场中多个能源枢纽的最优调度问题。由于在每个能源枢纽采用风力涡轮机和光伏板,清洁能源生产潜力的利用率很高,所提出的模型将通过在调度范围内减少燃气系统的运行来减轻温室气体排放。冷热电联产系统作为随机发电机组的备用机组,保证了随机发电机组在最小负荷下的电力供应。此外,在有大量清洁和自由能源生产的时间间隔内,还采用电储能装置和热储能装置进行储能。采用蒙特卡罗模拟方法对随机生产者的不确定行为进行建模,并采用快进选择方法进行情景约简。利用需求响应程序对能源需求的灵活性进行了研究。为了验证该模型的有效性,采用了集成分布式能源的IEEE 10总线标准测试系统。仿真结果验证了该模型在多能量枢纽能量管理中的适用性和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Day-Ahead Scheduling of the Renewable Based Energy Hubs Considering Demand Side Energy Management
In recent decades, the rising penetration of various types of distributed energy resources has made interactions between all types of energy inevitable. In this respect, energy hubs are created with the aim of considering the interactions between multi-carrier energy systems throughout the smart grids. In this research, optimal scheduling of the multi-energy hubs is considered in the day-ahead market with the aim of minimizing the energy hub's cost. Because of the high usage of the clean energy production potential by employing the wind turbines and PV panels at each energy hub, the proposed model will mitigate the greenhouse gas emissions through reducing the operation of the gas-fired systems over the scheduling horizon. The combined cooling/heating and power system is also used as a backup unit for the stochastic producers to ensure energy supply with minimum load shedding. Moreover, electrical and thermal energy storage devices are also employed for storing energy during time intervals when there is a large amount of clean and free energy production. The Monte-Carlo simulation approach is used for modeling the uncertain behaviors of the stochastic producers and fast forward selection method is also used for the scenario reduction process. The flexibility of the energy demand is also investigated using demand response programs. In order to validate the effectiveness of the proposed model, IEEE 10-bus standard test system integrated with distributed energy resources is used. Simulation results demonstrate the applicability and usefulness of the proposed model in the energy management of multi energy hubs.
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