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首页> 外文期刊>Proceedings of the Institution of Civil Engineers >Balancing control for grid-scale battery energy storage system
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Balancing control for grid-scale battery energy storage system

机译:电网规模电池储能系统的平衡控制

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Lithium (Li)-ion cells are becoming increasingly attractive for use in grid-scale battery energy storage systems (BESSs). A key problem with BESSs is the potential for poor utilisation of mismatched cells and reliability issues resulting from the use of large series strings of cells. This paper investigates the close integration of a full-bridge modular multilevel converter and a large number of lithium-ion cells interfacing with an AC electrical grid. The cells are organised in a hierarchical structure consisting of modules, sub-banks, banks and phases. The control strategy includes five levels of balancing: balancing of cells within a module, balancing of modules within a sub-bank, sub-banks within banks, banks within phases and balancing between phases. The system is validated in simulation for a 380 kWh BESS using 2835 lithium-ion cells. Charge balancing is demonstrated for mismatched cells by varying the parameters such as ampere-hour capacity, internal resistance and initial state of charge. A 'peak sharing' concept is implemented so that alternative modules assume a portion of the load when certain modules are not capable of meeting the demand. This work is intended to address the challenges of eventual scaling towards a 100 MWh+BESS, which may be composed of 100000 individual cells.
机译:锂(Li)离子电池在网格规模的电池储能系统(BESS)中的使用正变得越来越有吸引力。 BESS的一个关键问题是不匹配电池的利用率不佳以及使用大串联电池串可能导致可靠性问题。本文研究了全桥模块化多电平转换器和与交流电网连接的大量锂离子电池的紧密集成。单元以包含模块,子库,库和阶段的层次结构进行组织。控制策略包括五个级别的平衡:模块内单元的平衡,子银行内模块的平衡,银行内的子银行,阶段内的银行以及阶段之间的平衡。该系统已通过仿真,使用2835个锂离子电池对380 kWh BESS进行了验证。通过改变诸如安培小时容量,内部电阻和初始充电状态之类的参数,证明了失配电池的电荷平衡。实现了“峰值共享”概念,以便当某些模块无法满足需求时,备用模块承担一部分负载。这项工作旨在解决最终扩展到100 MWh + BESS(可能由100000个单个电池组成)的挑战。

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