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Novel optimization algorithm for the power and energy management and component sizing applied to hybrid storage-based photovoltaic household-prosumers for the provision of complementarity services

机译:用于提供互补服务的混合储存的光伏家庭专业的电力和能源管理和组件尺寸的新型优化算法

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摘要

Combining complementarity services such as frequency containment reserve (FCR) and photovoltaic self consumption (PV SFC) can increase revenues for household-prosumers supported by battery/supercapacitorbased hybrid energy storage systems (HESSs). Nonetheless, to calculate the best financial profitability, optimization algorithms should be applied to power and energy management as well as component sizing. For this purpose, this research developed a four-dimensional optimization algorithm based on the teaching-learning based optimization (TLBO) method. The optimization of management strategies was based on wavelet transform. An objective function was expressed in economic terms, including the investment, cycling, energy exchange and FCR provision, among other costs. Furthermore, a battery durability model was introduced. This algorithm was illustrated by a case study in Spain. The algorithm not only determined the optimal management, but also the best overall component sizing. A HESS was found to be a cost-effective way of enhancing PV SFC and providing FCR by increasing the profitability of the asset. Planning both complementarity services led to maximum revenues. The results showed that the optimal supercapacitor hybridization was 3.98-10.50%, depending on the planned services. This increased the profitability of battery-only configurations by more than 5.37-10.37%. Battery aging played a crucial role because of replacement cost.
机译:结合频率容纳储备(FCR)和光伏自费(PV SFC)的互补服务可以增加电池/超级电池的混合能量存储系统(HESSS)支持的家庭专业的收入。尽管如此,要计算最佳的金融盈利能力,应应用优化算法,以及能源管理以及组件尺寸。为此,本研究开发了一种基于教学基于教学优化(TLBO)方法的四维优化算法。管理策略的优化基于小波变换。客观函数是以经济术语表达的,包括投资,骑自行车,能源交易和FCR规定,以及其他费用。此外,介绍了电池耐用性模型。该算法是通过西班牙的案例研究说明的。该算法不仅确定了最佳管理,还确定了最佳整体组件尺寸。发现一个HESS是增强PV SFC并通过提高资产的盈利能力来提供FCR的成本效益的方法。规划两个互补性服务导致最大收入​​。结果表明,最佳超级电容器杂交为3.98-10.50%,具体取决于计划的服务。这增加了仅限电池配置的盈利能力超过5.37-10.37%。由于更换成本,电池老化发挥了至关重要的作用。

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