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Performance analysis of coupled inductor active network converter for photovoltaic energy harvesting system using fuzzy based MPPT control techniques

机译:基于模糊的MPPT控制技术的光伏能量收集系统耦合电感器有源网络转换器的性能分析

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This paper investigates the performance analysis of coupled inductor Active Network Converter (ANC) for photovoltaic energy harvesting system. The proposed converter has an integrated with two coupled inductors in a single magnetic core which reduces the size of magnetic components and provides high step-up Voltage gain (Gv) without requiring an extreme Duty ratio (D). The voltage conversion ratio of ANC is high and has low switching losses due to the low voltage and current stress of power switches. The Voltage gain characteristic curve of this converter circuit with different turn's ratio (n) has been studied for various duty cycle. The efficiency of this converter is about to 98.73%. Further, this proposed converter is integrated with the Photovoltaic panel for the harvesting of solar energy. The performance of the solar system for extracting the maximum power depends on the solar irradiance (G), cell temperature (T) and the operating point of MPP (Maximum Power Point) with respect to working conditions. Here, the Incremental Conductance (I&C) algorithm and Fuzzy Logic Control (FLC) method are incorporated for finding the MPP under different operating conditions. The Incremental conductance method overcomes the drawbacks of conventional P&O algorithm. The simulation works have been studied under MATLAB-SIMULINK environment. The effectiveness of the FLC technique adopted in this work for finding MPP has been evaluated and the simulation results are compared with IC method. The simulation results show that the FLC method gives a better improvement in the tracking of MPP than I&C method.
机译:本文研究了光伏能量收集系统耦合电感器有源网络转换器(ANC)的性能分析。所提出的转换器具有与单个磁芯中的两个耦合电感器集成,其减小了磁性元件的尺寸并提供了高升压电压增益(GV)而不需要极端占空比(D)。由于电源开关的低电压和电流应力,ANC的电压转换率高,并且具有低的开关损耗。研究了该转换器电路的电压增益特性曲线,用于各种占空比,已经研究了不同的转向比率(n)。该转换器的效率约为98.73%。此外,该提出的转换器与光伏板集成,用于收获太阳能。用于提取最大功率的太阳系的性能取决于相对于工作条件的太阳辐照度(G),电池温度(T)和MPP(最大功率点)的操作点。这里,增量电导(I&C)算法和模糊逻辑控制(FLC)方法被纳入用于在不同的操作条件下找到MPP。增量电导方法克服了传统P&O算法的缺点。在Matlab-Simulink环境下已经研究了模拟工作。已经评估了该工作中采用的FLC技术的有效性,并进行了仿真结果与IC方法进行了比较。仿真结果表明,FLC方法比I&C方法更好地改善了MPP的跟踪。

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