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Optimization of residential off-grid PV-battery systems

机译:住宅离网PV电池系统的优化

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摘要

Solar irradiance is abundant, eco-friendly, sustainable, and one of the most promising energy sources to address the shortage of energy in the future. In isolated areas where access to the grid is limited or restricted, a standalone photovoltaic (PV) system is particularly effective. In such a system, the available electrical energy mainly depends on the solar irradiance and the capacities of the PV array and battery. In this paper, we develop an optimization method for designing a residential off-grid PV system. The method determines the number of PV panels and battery modules for cost-effectively operating the system. We use a mixed-integer programming model to pre-schedule the daily usage of appliances according to a forecasted solar irradiance. The schedule is then executed on a Monte Carlo simulation that considers the uncertainty of the solar irradiance. An integer Nelder-Mead (N-M) algorithm determines the size of the PV-Battery system. The performance of the method is measured using plane of irradiance data at two locations in the USA. We perform a sensitivity analysis by changing the cost of the battery and the penalty cost of non-served energy. In addition, we investigate the effects of scheduling, forecast solar irradiance variability, and battery degradation.
机译:太阳辐照度丰富,环保,可持续,以及最有前景的能源之一,以解决未来能源短缺。在进入网格的限制或限制的隔离区域中,独立的光伏(PV)系统特别有效。在这种系统中,可用的电能主要取决于太阳辐照度和PV阵列和电池的容量。在本文中,我们开发了设计用于设计住宅脱网PV系统的优化方法。该方法确定PV面板和电池模块的数量,以便有效地操作系统。我们使用混合整数编程模型来预先安排根据预测的太阳辐照度的每日使用设备。然后在考虑太阳辐照度的不确定性的蒙特卡罗模拟上执行时间表。整数Nelder-Mead(N-M)算法确定了PV电池系统的大小。使用在美国的两个位置的辐照度数据平面测量该方法的性能。我们通过改变电池的成本和非服务能源的罚款来执行灵敏度分析。此外,我们还研究了调度,预测太阳辐照度变异性和电池劣化的影响。

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