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首页> 外文期刊>Journal of Energy Storage >POWER management and control of A PHOTOVOLTAIC system with hybrid battery-supercapacitor energy storage BASED ON HEURISTICS METHODS
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POWER management and control of A PHOTOVOLTAIC system with hybrid battery-supercapacitor energy storage BASED ON HEURISTICS METHODS

机译:基于启发式方法的混合电池 - 超级电容器储能的光伏系统电源管理和控制

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摘要

Grid-scale electrical energy storage (EES) systems are enabling technologies to enhance the flexibility and reliability of electricity grids with high penetration of intermittent renewable energy sources such as solar and wind. They allow excess of generation to be stored for later use and can respond quickly to power fluctuations. Unfortunately, there is no single type of EES technology that can effectively fulfill all the desired requirements. Hybrid EES (HEES), combining two or more EES, are an emerging, viable solution. While batteries have a higher energy density, supercapacitors (SC) have a higher power density and are characterized by a fast discharge rate. The combination of both technologies results in a HESS solution which can address the challenges associated with the large-scale deployment of distributed renewable energy sources and enhance the grid reliability. The goal is to design a power management strategy to enhance the performance of the HEES. This paper proposes various robust design methods for the control of the power electronics converters and enhance the performance of the power management of the HEES. These robust design strategies are based on pole placement, linear matrix inequalities (LMI), particle swarm optimization (PSO) and genetic algorithm (GA). The performance of these control schemes is compared in terms of the transient response time and robustness. The results obtained demonstrate the effectiveness of the power management strategy (PMS) for the photovoltaic (PV) system with HEES and the enhanced robustness of the controllers using GA and PSO-based tuning techniques.
机译:网格级电能存储(EES)系统可以实现技术,以提高电网的灵活性和可靠性,具有高渗透间歇性可再生能源,如太阳能和风。它们允许存储过量以供以后使用,并且可以快速响应电量波动。不幸的是,没有单一类型的EES技术可以有效地满足所有所需的要求。混合EES(腿部),组合两个或多个EES,是一种新兴,可行的解决方案。虽然电池具有更高的能量密度,但超级电容器(SC)具有更高的功率密度,并且具有快速放电速率的特征。两种技术的组合导致HESS解决方案,它可以解决与分布式可再生能源的大规模部署相关的挑战,并提高电网可靠性。目标是设计一种电力管理策略,以提高狮子的表现。本文提出了用于控制电力电子转换器的各种稳健的设计方法,增强铰接电源管理的性能。这些强大的设计策略基于极点放置,线性矩阵不等式(LMI),粒子群优化(PSO)和遗传算法(GA)。在瞬态响应时间和鲁棒性方面比较这些控制方案的性能。所获得的结果证明了电力管理策略(PMS)对光伏(PV)系统的有效性,以及使用GA和PSO的调谐技术的控制器的增强的鲁棒性。

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