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Determining the Power and Energy Capacity of a Battery Energy Storage System Utilizing a Smoothing Feeder Profile to Accommodate High Photovoltaic Penetration on a Distribution Feeder

机译:利用平滑馈线型材确定电池储能系统的功率和能量容量,以适应​​分配馈线的高光伏渗透

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摘要

Electricity is a perishable commodity; once it is generated it needs to be consumed or stored. Electric energy storage provides both power and energy capacity. Power capacity applications reduce the need for generation, while energy capacity allows for energy consumption to be decoupled from generation. Previous research was done to develop an algorithm for determining the power (MW) and energy (MWh) capacities of a battery energy storage system (BESS) to mitigate the adverse impacts of high levels of photovoltaic (PV) generation. The algorithm used a flat feeder profile, and its performance was demonstrated on the equinoxes and solstices.Managing feeder power leads to fewer voltage fluctuations along the length of the feeder, potentially mitigating load management issues caused by variability of renewable generation and load profile. These issues include lighting flicker, compressor seizing, equipment shut-off, loss of motor torque, frequent transformer tap changes and even voltage collapse due to loss of reactive power support.The research described in this thesis builds on this algorithm by incorporating a smoothed feeder profile and testing it over an entire year. Incorporating a smoothing function reduces the requisite BESS energy capacity necessary to provide firming and shaping to accommodate the stochastic nature of PV. Specifically, this method is used to conduct a year-long study on a per second basis, as well as a one-minute basis, for a distribution feeder. Statistical analytical methods were performed to develop recommendations for appropriately sizing the BESS. This method may be used to determine the amount of PV generation that could be installed on a distribution feeder with a minimal investment in the BESS power and energy capacities that would be required to manage the distribution feeder power.Results are presented for PV penetration levels of 10%-50% of the distribution feeder capacity and show that the use of a smooth feeder profile reduces the required energy capacity by a minimum factor of 10 when compared to a flat feeder profile. Results indicated that it is sufficient to have a one-minute sampling rate, as it provides the necessary granularity to model cloud-induced fluctuations. This method can be applied to any distribution feeder where a load profile and a PV profile are available.
机译:电力是一种易腐商品。一旦生成,就需要使用或存储。电能存储既提供功率又提供能量容量。功率应用减少了发电需求,而能源容量则使能源消耗与发电脱钩。进行了先前的研究,以开发一种确定电池储能系统(BESS)的功率(MW)和能量(MWh)容量的算法,以减轻高水平光伏(PV)发电的不利影响。该算法使用平坦的馈线配置文件,并在昼夜平分线和孤点上证明了其性能。管理馈线电源可减少沿馈线长度的电压波动,从而潜在地减轻了可再生发电和负载配置文件的可变性所引起的负载管理问题。这些问题包括闪烁,压缩机卡死,设备关闭,电动机转矩损失,频繁的变压器抽头变化以及由于无功功率损失导致的电压崩溃甚至是电压崩溃。本文描述的研究基于该算法并结合了平滑的馈线。进行配置并对其进行一年的测试。合并平滑功能会降低必需的BESS能量容量,以提供牢固和整形的能力,以适应PV的随机性。具体而言,此方法用于对配电馈线进行每秒一年和一分钟一次的长达一年的研究。进行了统计分析方法,以提出适当确定BESS尺寸的建议。该方法可用于确定可以在配电馈线上安装的PV发电量,而只需花费最少的BESS功率和能源容量投资即可管理配电馈线功率。分布馈线容量的10%-50%,表明与扁平馈线轮廓相比,使用平滑馈线轮廓可以将所需的能量容量降低至少10倍。结果表明,只有一分钟的采样率就足够了,因为它提供了必要的粒度来模拟云引起的波动。该方法可以应用于任何有负荷曲线和PV曲线的配电馈线。

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    Osama Mansour;

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  • 年度 2000
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