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Sizing and Allocation of Battery Energy Storage Systems in angstrom land Islands for Large-Scale Integration of Renewables and Electric Ferry Charging Stations

机译:大规模集成可再生能源和电气渡轮充电站的埃船陆岛电池储能系统的大小和分配

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The stringent emission rules set by international maritime organisation and European Directives force ships and harbours to constrain their environmental pollution within certain targets and enable them to employ renewable energy sources. To this end, harbour grids are shifting towards renewable energy sources to cope with the growing demand for an onshore power supply and battery-charging stations for modern ships. However, it is necessary to accurately size and locate battery energy storage systems for any operational harbour grid to compensate the fluctuating power supply from renewable energy sources as well as meet the predicted maximum load demand without expanding the power capacities of transmission lines. In this paper, the equivalent circuit battery model of nickel-cobalt-manganese-oxide chemistry has been utilised for the sizing of a lithium-ion battery energy storage system, considering all the parameters affecting its performance. A battery cell model has been developed in the Matlab/Simulink platform, and subsequently an algorithm has been developed for the design of an appropriate size of lithium-ion battery energy storage systems. The developed algorithm has been applied by considering real data of a harbour grid in the angstrom land Islands, and the simulation results validate that the sizes and locations of battery energy storage systems are accurate enough for the harbour grid in the angstrom land Islands to meet the predicted maximum load demand of multiple new electric ferry charging stations for the years 2022 and 2030. Moreover, integrating battery energy storage systems with renewables helps to increase the reliability and defer capital cost investments of upgrading the ratings of transmission lines and other electrical equipment in the angstrom land Islands grid.
机译:国际海事组织和欧洲指令征用的严格排放规则,船舶和港口在某些目标中限制了环境污染,使他们能够雇用可再生能源。为此,海港网格正在转向可再生能源,以应对现代船舶对陆上供电和电池充电站的需求不断增长。然而,需要精确地尺寸和定位用于任何操作码网的电池能量存储系统,以补偿可再生能源的波动电源,并满足预测的最大负载需求,而不会扩大传输线的电力容量。在本文中,考虑到影响其性能的所有参数,已经利用了镍钴 - 氧化锰化学的等效电路电池模型。在Matlab / Simulink平台中开发了一种电池单元模型,随后开发了一种算法,用于设计适当尺寸的锂离子电池储能系统。通过考虑埃克斯特罗姆岛上的港口网格的真实数据来应用发达的算法,仿真结果验证了电池储能系统的尺寸和位置足够准确,足以让赫斯特罗姆陆岛上的港口网格满足预测多年2022和2030年多个新电气渡轮充电站的最大负荷需求。此外,将电池储能系统与可再生能源集成有助于提高升级输电线路等电气设备等级的可靠性和推迟资金成本投资纪念陆群岛网格。

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