Wind farm and pumped storage integrated in generation scheduling using PSO

H. Siahkali
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引用次数: 5

Abstract

Wind energy brings many positive benefits to the utility system, such as cost effective energy, long-term price stability, and some system capacity, but it also has different generation characteristics than conventional utility resources. Unlike conventional power generation sources, wind power generators supply intermittent power because of resource uncertainties. This paper presents a new approach to solve the generation scheduling (GS) problem, considering reserve requirement, load-generation balance and wind power generation constraints. The modeling of constraints is an important issue in power system scheduling. This GS problem is solved using new particle swarm optimization (PSO). This problem is applied to a test system which has pumped storage power plants to modify the uncertainties of wind power output and other parameters in power system. Numerical testing results show that near optimal schedules are obtained, and the method can provide a good balance between increasing profit and satisfying constraints.
利用粒子群算法将风电场和抽水蓄能集成到发电调度中
风能为公用事业系统带来了许多积极的效益,如能源的成本效益、长期的价格稳定性和一定的系统容量,但它也具有与常规公用事业资源不同的发电特性。与传统的发电方式不同,风力发电机由于资源的不确定性而提供间歇性的电力。本文提出了一种考虑备用需求、负荷-发电平衡和风力发电约束的新方法来解决发电调度问题。约束建模是电力系统调度中的一个重要问题。利用新的粒子群优化算法(PSO)解决了这一问题。将该问题应用于一个有抽水蓄能电站的试验系统,以修正电力系统中风电输出等参数的不确定性。数值试验结果表明,该方法能较好地平衡利润增加与约束条件满足之间的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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