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Advanced Lead–Acid Batteries and the Development of Grid-Scale Energy Storage Systems

机译:先进的铅酸电池和电网规模储能系统的发展

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This paper discusses new developments in lead–acid battery chemistry and the importance of the system approach for implementation of battery energy storage for renewable energy and grid applications. The described solution includes thermal management of an UltraBattery bank, an inverter/charger, and smart grid management, which can monitor the state of charge (SoC) and the state of health (SoH) of the battery during system operation. With such features, it can allow the battery to operate within an optimum SoC window and thus can further maximize the longevity of the UltraBattery. Importantly, the smart battery management can trend the SoH of the battery and allow cell replacement at a convenient time without affecting the system operation. Furthermore, the advanced system package allows remote monitoring and control of operation, thus reducing the running cost of the system. It is clear that the widespread use of renewable-energy systems, in turn, would lead to a reduction in global consumption of the limited supplies of the fossil fuels and in the associated production of greenhouse-gas emissions.
机译:本文讨论了铅酸电池化学的新发展以及系统方法对于实现可再生能源和电网应用中的电池能量存储的重要性。所描述的解决方案包括UltraBattery电池组的热管理,逆变器/充电器和智能电网管理,它们可以在系统运行期间监视电池的充电状态(SoC)和健康状态(SoH)。借助这些功能,它可以使电池在最佳SoC窗口内运行,从而可以进一步最大化UltraBattery的使用寿命。重要的是,智能电池管理可以趋势化电池的SoH并允许在方便的时间更换电池,而不会影响系统运行。此外,先进的系统软件包允许对操作进行远程监视和控制,从而降低了系统的运行成本。显然,可再生能源系统的广泛使用反过来将导致减少化石燃料有限供应的全球消耗量以及与之相关的温室气体排放量。

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