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An improved P&O algorithm integrated with artificial bee colony for photovoltaic systems under partial shading conditions

机译:局部遮光条件下光伏系统中结合人工蜂群的改进P&O算法

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摘要

For an efficient Photovoltaic (PV) system, tracking of true maximum power point (MPP) is essential. Therefore the maximum power point tracking (MPPT) controller is mandatory for harvesting maximum power from the solar panel. Perturb and Observe (P&O) MPPT is the simplest and most widely used low-cost MPPT method for tracking MPP. The major drawback of P&O is steady state oscillations around MPP and tracking of local MPP (LMPP) instead of global MPP (GMPP) under partial shading conditions (PSC). Thus, this paper proposes a modified P&O MPPT that can be used under PSC effectively, by integrating Artificial Bee Colony (ABC) algorithm in the first stage and P&O algorithm in the second stage. In the proposed method GMPP is first tracked by calling ABC algorithm followed by the P&O algorithm for LMPP. Thus the local search ability of P&O and global search ability of ABC are effectively combined to produce optimum duty cycle for the boost converter in a fast and efficient way. In this paper, the proposed ABC-PO algorithm is implemented in MATLAB/Simulink model and it is compared with different MPPT algorithms such as P&O, Incremental conductance (INC) and ABC. The simulation results clearly depicted that the proposed ABC-PO algorithm gives more than 99.5% efficiency under PSC.
机译:对于高效的光伏(PV)系统,跟踪真实最大功率点(MPP)至关重要。因此,最大功率点跟踪(MPPT)控制器对于从太阳能电池板获取最大功率是必不可少的。扰动和观察(P&O)MPPT是跟踪MPP的最简单,使用最广泛的低成本MPPT方法。 P&O的主要缺点是在部分阴影条件(PSC)下,MPP周围会产生稳态振荡,并且会跟踪局部MPP(LMPP)而不是全局MPP(GMPP)。因此,通过结合第一阶段的人工蜂群算法和第二阶段的P&O算法,本文提出了一种可在PSC下有效使用的改进的P&O MPPT。在提出的方法中,首先通过调用ABC算法,然后是LMPP的P&O算法来跟踪GMPP。因此,有效地组合了P&O的本地搜索能力和ABC的全局搜索能力,以快速有效的方式为升压转换器产生最佳占空比。本文在MATLAB / Simulink模型中实现了所提出的ABC-PO算法,并将其与P&O,增量电导(INC)和ABC等不同的MPPT算法进行了比较。仿真结果清楚地表明,所提出的ABC-PO算法在PSC下的效率超过99.5%。

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