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A novel framework for optimization of size and control strategy of lithiumion battery based off-grid renewable energy systems

机译:基于离网的可再生能源系统优化锂电池尺寸和控制策略的新框架

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This paper proposes a new methodology to find the most economic system configuration and energy management strategy for Li-ion battery based off-grid renewable energy systems. A system level macroscopic model and a microscopic battery lifetime prediction model are incorporated into the optimization framework to simulate hourly performance of the system. Due to the computational efficiency of the model, optimization is carried out using enumerative method {evaluating all the possible combinations of components and control strategies) to ensure finding the global optimum solution of the problem. To investigate the effectiveness of the proposed methodology, the optimization results are compared with a baseline scenario which is an installed PV-battery system to provide electricity for an isolated house situated near Zaragoza, Spain. Results indicate that the optimized scenario leads to 9.7% reduction in the levelized cost of energy and 48.6% improvement in the battery service period in comparison with the baseline scenario. Moreover, by considering a 0.5% unmet load, the economic feasibility of the system and the battery longevity are enhanced to 14.6% and 78.4%, respectively. Finally, to evaluate the effect of battery unit price and future trends on the optimization results, sensitivity analysis is performed.
机译:本文提出了一种新方法,可为基于锂离子电池的离网可再生能源系统找到最经济的系统配置和能源管理策略。系统级别的宏观模型和微观电池寿命预测模型被合并到优化框架中,以模拟系统的每小时性能。由于模型的计算效率,使用枚举方法(评估组件和控制策略的所有可能组合)进行了优化,以确保找到问题的全局最优解。为了研究所提出方法的有效性,将优化结果与基线方案进行了比较,该基线方案是已安装的光伏电池系统,可为西班牙萨拉戈萨附近的一所孤立房屋提供电力。结果表明,与基准情景相比,优化的情景导致能源平均成本降低了9.7%,电池使用时间缩短了48.6%。此外,通过考虑0.5%的未满足负载,系统的经济可行性和电池寿命分别提高到14.6%和78.4%。最后,为了评估电池单价和未来趋势对优化结果的影响,进行了敏感性分析。

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