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Design of battery charging circuit through intelligent MPPT using SPV system

机译:利用SPV系统通过智能MPPT设计电池充电电路

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In a solar photovoltaic (SPV) based hybrid renewable energy system, batteries are used as a power reservoir. SPV system provides energy under steady operating condition whereas SPV along with batteries serve as the source of energy under transient operating condition. This paper puts forward the design of a battery charging circuit through an intelligent fuzzy logic based discrete proportional-integral-derivative (FL-DPID) maximum power point tracking (MPPT) algorithm. SPV system in conjunction with FL-DPID MPPT technique driven DC-DC boost converter enhances the output voltage besides tracking maximum power point (MPP) under varying irradiance in between 400-1000 W/m(2) and a constant temperature of 25 degrees C. The output voltage of the boost converter drives the optimal PID (O-PID) controlled buck converter to behave as a battery charging circuit under non deterministic atmospheric conditions. The objective of this study is to operate the designed SPV system at MPP under varying environmental condition in order to achieve higher efficacy, minimize overall system cost and obtain apropos voltage and current for effective charging of battery thereby reducing battery losses and enhancing life cycle. A 200 W prototype of an SPV panel has been designed, simulated and investigated in the MATLAB/Simulink environment.
机译:在基于太阳能光伏(SPV)的混合可再生能源系统中,电池被用作蓄能器。 SPV系统在稳定运行条件下提供能量,而SPV与电池一起在瞬态运行条件下充当能源。通过基于智能模糊逻辑的离散比例积分微分(FL-DPID)最大功率点跟踪(MPPT)算法,提出了一种电池充电电路的设计。 SPV系统与FL-DPID MPPT技术驱动的DC-DC升压转换器相结合,不仅可以在400-1000 W / m(2)的变化辐照度和25摄氏度的恒定温度下跟踪最大功率点(MPP)之外,还可以提高输出电压升压转换器的输出电压驱动最佳PID(O-PID)控制的降压转换器,使其在不确定的大气条件下充当电池充电电路。这项研究的目的是在变化的环境条件下以MPP操作设计的SPV系统,以达到更高的功效,最小化整体系统成本并获得适当的电压和电流以对电池进行有效充电,从而减少电池损耗并延长使用寿命。已经在MATLAB / Simulink环境中设计,模拟和研究了200 W SPV面板的原型。

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