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Sizing optimization of a stand-alone photovoltaic system using genetic algorithm

机译:使用遗传算法对独立光伏系统进行尺寸优化

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The Stand-Alone Photovoltaic (SAPV) system's power reliability and the corresponding Life Cycle Cost (LCC) present the main designing objectives. Therefore, a compromise solution between optimization criterions is crucial. This paper presents the sizing optimization of a stand-alone photovoltaic system with battery storage using Genetic Algorithm (GA). The main objective is computing the optimum configuration of the PV panels and storage batteries to supply a residential household. The purpose is to achieve an acceptable Loss of Power Supply Probability (LPSP), which is related to system's reliability, and the minimum LCC. The system's performance evaluation for different configurations of PV panels and batteries for a two-day simulation with an hourly step time was done. It was based on energetic modeling of the studied SAPV system. Sizing optimization insured consumers supply, a minimum LCC and an acceptable batteries State Of Charge (SOC).
机译:独立的光伏(SAPV)系统的功率可靠性和相应的生命周期成本(LCC)呈现了主要的设计目标。因此,优化标准之间的折衷解决方案是至关重要的。本文介绍了使用遗传算法(GA)电池存储器的独立光伏系统的尺寸优化。主要目标是计算PV面板和蓄电池的最佳配置,以供应住宅家庭。目的是达到可接受的电源概率损失(LPSP),与系统的可靠性和最小LCC有关。完成了PV面板和电池的不同配置的系统性能评估,为每小时步骤时间进行为期两天的模拟。它基于研究的SAPV系统的能量建模。大小优化保险消费者供应,最小LCC和可接受的电池充电状态(SOC)。

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