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Optimal sizing and life cycle assessment of residential photovoltaic energy systems with battery storage

机译:带电池存储的住宅光伏能源系统的最佳尺寸和生命周期评估

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This paper presents the optimal sizing and life cycle assessment of residential photovoltaic (PV) energy systems. The system consists of PV modules as the main power producer, and lead-acid batteries as the medium of electricity storage, and other essential devices such as an inverter. Five parameter analytic PV cell model is used to calculate the energy production from the modules. Electrical needs for a family living under normal conditions of comfort are modelled and used within simulation of the system performance, with an average daily load of approximately 9.0 kWh. The system's performance simulations are carried out with typical yearly solar radiation and ambient temperature data from five different sites in Turkey. The typical years are selected from a total of 6 years data for each site. The life cycle cost of the PV system is analysed for various system configurations for a 20 year system life. The role of the batteries in PV energy systems are analysed in terms of the cost and power loss. The system performance is analysed as a function of various parameters such as energy production and cost. It is shown that these change substantially for different system configurations and locations. The life cycle assessment of the energy system described was also carried out to determine the environmental impact. It was found that, with the conservative European average electricity mix, energy pay back time (EPBT) is 6.2 years and CO2 pay back time is 4.6 years for the given system. Copyright (C) 2007 John Wiley & Sons, Ltd.
机译:本文介绍了住宅光伏(PV)能源系统的最佳规模和生命周期评估。该系统由光伏模块作为主要发电设备,铅酸电池作为电力存储介质,以及其他必不可少的设备,例如逆变器。使用五参数分析光伏电池模型来计算模块的发电量。在系统性能模拟中,模拟并使用了在正常舒适条件下生活的家庭的电力需求,平均每日负荷约为9.0 kWh。该系统的性能模拟是使用来自土耳其五个不同地点的典型年度太阳辐射和环境温度数据进行的。从每个站点的总计6年数据中选择典型年份。针对各种系统配置,分析了20年系统寿命中光伏系统的生命周期成本。根据成本和功率损耗分析了电池在光伏能源系统中的作用。系统性能是根据各种参数(例如,能源生产和成本)进行分析的。结果表明,这些变化对于不同的系统配置和位置会发生很大的变化。还对所述能源系统进行了生命周期评估,以确定对环境的影响。研究发现,在保守的欧洲平均电力结构下,给定系统的能源回收期(EPBT)为6.2年,而CO2回收期为4.6年。版权所有(C)2007 John Wiley&Sons,Ltd.

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