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Day-ahead thermal and renewable power generation scheduling considering uncertainty

机译:考虑不确定性的日前火电和可再生能源发电计划

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This paper proposes a multi-objective optimization (MOO) based optimal day-ahead scheduling of thermal and renewable (wind and solar photovoltaic) power generation problem considering the intermittent/uncertain nature of renewable energy sources, load demands and thermal generators. System operating cost (i.e., cost of thermal, wind, solar PV and battery powers), reliability and emission cost are considered to be optimized simultaneously. The uncertainties due to generator outages, wind, solar PV and load demand forecast errors are incorporated in the proposed optimization problem using Expected Unserved Energy (EUE) and Loss Of Load Probability (LOLP) reliability indices. In the proposed approach, the amount of spinning reserves (SRs) required are scheduled based on the desired level of system reliability. The proposed multi-objective optimization problem is solved using NSGA-II algorithm. Different case studies are performed considering two or three different objective functions that may be selected by the system operator (SO) based on his/her preference. The simulation results obtained on a sample test system validate the benefits of solving the hybrid power system scheduling problem as a transparent and realistic MOO problem considering the uncertainty. (C) 2018 Elsevier Ltd. All rights reserved.
机译:考虑到可再生能源的间歇性/不确定性,负荷需求和热力发电机,本文提出了一种基于多目标优化(MOO)的热能和可再生(风能和太阳能光伏)发电问题的最优提前调度。系统运行成本(即热,风,太阳能光伏和电池的成本),可靠性和排放成本被认为是同时优化的。利用发电机的预期无功能量(EUE)和负荷损失概率(LOLP)可靠性指标,将由于发电机故障,风力,太阳能光伏发电和负荷需求预测误差引起的不确定性纳入建议的优化问题中。在提出的方法中,根据系统可靠性的期望水平来计划所需的旋转备用量(SR)。提出的多目标优化问题是使用NSGA-II算法解决的。考虑到两个或三个不同的目标功能,可以进行不同的案例研究,目标功能可以由系统操作员(SO)根据其偏好进行选择。在样本测试系统上获得的仿真结果证明,考虑到不确定性,解决混合动力系统调度问题是透明而现实的MOO问题的好处。 (C)2018 Elsevier Ltd.保留所有权利。

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