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Determination of battery energy storage technology and size for standalone microgrids

机译:确定独立微电网的电池储能技术和尺寸

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The high investment cost associated with upgrading utility grid to supply remote area's demand for electricity makes the implementation of standalone microgrids inevitable. These microgrids normally consist of a mix of energy sources such as diesel generators, photovoltaic arrays, wind turbines, and fuel cells. In order to improve the microgrid reliability, reduce its operation cost, and address operational challenges, battery energy storages (BESs) are commonly integrated within remote microgrids. There are a variety of BES technologies with different characteristics which makes it crucial to select the BES technology that is best suited for the standalone microgrid. Since the BES capital cost depends on its size, it is also very important to determine the optimal size for the installed BES. In this paper, a mathematical model that combines the optimization of choosing the BES technology (based on the technical characteristics) and size is developed. The objective is to minimize the standalone microgrid annual expansion planning cost while ensuring that critical loads could be supplied without interruption. Value of loss load is included in the objective function to quantify the economic loss of failing to supply the local load. A mixed integer programming method is used to formulate the problem. The proposed model is tested on a standalone microgrid. The results indicate that the BES technology selection and sizing depend greatly on the microgrid configuration and the renewable penetration level.
机译:与升级效用电网相关的高投资成本供应偏远地区的电力需求,使独立微电网的实施不可避免。这些微电网通常由诸如柴油发电机,光伏阵列,风力涡轮机和燃料电池的能源混合组成。为了提高微电网可靠性,降低其运营成本和解决操作挑战,电池能量存储(BESS)通常集成在远程微电网中。选择具有不同特性的各种各样的技术使得选择最适合独立微电网的BES技术至关重要。由于BES资本成本取决于其规模,确定已安装BES的最佳尺寸也非常重要。在本文中,开发了一种结合选择BES技术的数学模型(基于技术特征)和尺寸。目的是最大限度地减少独立的微电网年扩展规划成本,同时确保可以在不中断的情况下提供临界负荷。损失负荷的价值包括在目标函数中,以量化未能提供局部负荷的经济损失。混合整数编程方法用于制定问题。所提出的模型在独立的微电网上进行测试。结果表明,BES技术选择和尺寸大大依赖于微电网配置和可再生渗透水平。

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