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A fast battery charging algorithm for an intelligent PV system with capability of on-line temperature compensation

机译:具有在线温度补偿功能的智能光伏系统的快速电池充电算法

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摘要

This study presents a battery fast-charging mechanism for an intelligent generic photovoltaic (PV) system and also a pulse-charging method for the on-line temperature compensation. The fuzzy logic control (FLC) is adopted for fast maximum power point tracking (MPPT) of the PV system. Along with proposed battery charging algorithms, the controller presented in this study is named a fuzzy battery-managing controller (FBMC). The fast battery charging by this controller does not only prolong battery lifetime by restoring the maximum battery state of charge (SOC) in the shortest time but also with the temperature compensation. The designed charging algorithm consists of three different stages, namely constant current (CC), pulse charging and trickle charging. In the CC mode, the current at maximum power of the PV array is used for fast charging. The pulse charging mode is next adopted to contain temperature rise while maintaining relatively fast charging speed. To prevent battery damage by charging as battery capacity is close to its full status, 100% SOC, the float charging mode is finally activated by further decreasing charging currents. Simulations are conducted via Powersim to validate the FBMC performance and the PV system model. The FBMC is next implemented by a DSP module (TMS320F2812) in order to adjust the switching duty cycle during operations of the buck converter. Finally, experimental results were compared with a general constant current and/or voltage method. The results show favorable performance of the propose charging method.
机译:这项研究提出了一种用于智能通用光伏(PV)系统的电池快速充电机制,以及一种用于在线温度补偿的脉冲充电方法。模糊逻辑控制(FLC)用于光伏系统的快速最大功率点跟踪(MPPT)。连同提出的电池充电算法,本研究中提出的控制器称为模糊电池管理控制器(FBMC)。通过该控制器进行快速电池充电,不仅可以在最短的时间内恢复最大电池充电状态(SOC)来延长电池寿命,而且还可以进行温度补偿。设计的充电算法包括三个不同的阶段,即恒流(CC),脉冲充电和trick流充电。在CC模式下,将PV阵列最大功率的电流用于快速充电。接下来采用脉冲充电模式以抑制温度升高,同时保持相对较快的充电速度。为了防止由于电池容量接近其满状态(100%SOC)而充电而损坏电池,最终通过进一步降低充电电流来激活浮动充电模式。通过Powersim进行仿真以验证FBMC性能和PV系统模型。 FBMC接下来由DSP模块(TMS320F2812)实现,以便在降压转换器工作期间调整开关占空比。最后,将实验结果与一般的恒定电流和/或电压方法进行了比较。结果表明所提出的充电方法具有良好的性能。

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