Determining the Power and Energy Capacities of a Battery Energy Storage System to Accommodate High Photovoltaic Penetration on a Distribution Feeder

R. Bass, J. Carr, José Aguilar, K. Whitener
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引用次数: 38

Abstract

The integration of distributed energy generation systems has begun to impact the operation of distribution feeders within the balancing areas of numerous electrical utilities. Battery energy storage systems may be used to facilitate greater integration of renewable energy generation. This paper describes a method for determining the power and energy capacities a battery energy storage system would need in order to accommodate a particular photovoltaic penetration level within a distribution feeder, or conversely, the amount of photovoltaic that could be installed on a feeder with a minimal investment in power and energy battery energy storage system (BESS) capacities. This method determines the BESS capacities required to compensate both intra-hour and inter-hour load and photovoltaic fluctuations to achieve a flat feeder power profile. By managing the feeder power, the voltage drop along the length of feeder may be managed, thereby mitigating the voltage fluctuation induced by the stochastic nature of both renewables generation and load. Doing so facilitates system benefits, such as conservation voltage reduction, fewer operations of load tap changers, and voltage regulators, and allows for deferment of capital expenditures.
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确定电池储能系统的功率和能量容量以适应配电馈线上的高光伏渗透
分布式发电系统的集成已经开始影响众多电力公司平衡区内配电馈线的运行。电池储能系统可用于促进可再生能源发电的更大整合。本文描述了一种确定电池储能系统所需的功率和能量容量的方法,以便在配电馈线内容纳特定的光伏渗透水平,或者相反,在电力和能源电池储能系统(BESS)容量方面投资最小的情况下,可以在馈线上安装的光伏数量。该方法确定了BESS补偿小时内和小时间负荷和光伏波动所需的容量,以实现平坦的馈线功率剖面。通过管理馈线电源,可以管理沿馈线长度的电压降,从而减轻由可再生能源发电和负荷的随机性引起的电压波动。这样做有利于系统的好处,例如降低电压,减少负载分接开关和电压调节器的操作,并允许延迟资本支出。
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