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A Data-driven Optimal Sizing and Control Methodology for Hybrid Storage System

机译:混合存储系统的数据驱动最优尺寸和控制方法

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In this paper, a novel data-driven optimal sizing and control methodology is proposed. The historical operation data of grid is used to calculate the operating characteristic parameters of the local power grid. Based on the characteristic parameters, a typical grid operating curve is fitted by K-Means clustering method. Additionally, an improved filter-based hybrid energy storage system control strategy is presented. Combining the proposed strategy and the typical grid operating curve, the sizing of high energy density storage device is provided while the performance requirement of high power density storage device is calculated. The simulation results based on an East China system proved that the presented methodology improve the renewable energy consumption and the grid peak-shaving ability with the lowest cost of construction.
机译:本文提出了一种新型数据驱动的最佳尺寸和控制方法。网格的历史操作数据用于计算本地电网的操作特性参数。基于特征参数,典型的网格操作曲线由K-means聚类方法装配。另外,提出了一种改进的基于滤波器的混合能量存储系统控制策略。结合所提出的策略和典型的网格操作曲线,提供了高能密度存储装置的尺寸,同时计算了高功率密度存储装置的性能要求。基于华东系统的仿真结果证明,提出的方法可以提高可再生能耗和具有最低施工成本的电网峰值剃须能力。

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