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首页> 外文期刊>Progress in photovoltaics >CCGPA-MPPT: Cauchy preferential crossover-based global pollination algorithm for MPPT in photovoltaic system
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CCGPA-MPPT: Cauchy preferential crossover-based global pollination algorithm for MPPT in photovoltaic system

机译:CCGPA-MPPT:CAUCHY优先交叉的光伏系统MPPT全局授粉算法

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摘要

In general, the photovoltaic (PV) is considered as the best selection among renewable energy resources due to its nonpolluted operation and good flexibility condition. The PV system is affected because of the partial shading conditions (PSCs), which reduce the generated power. During steady-state operating conditions, there occurs a time delay in tracking the Global maximum power point (GMPP) and Local maximum power point (LMPP) under PSCs using the perturb and observe (P&O) method. In order to overcome such shortcomings, this paper proposed a hybrid algorithm with a P&O technique to improve the maximum power point tracking (MPPT) for the PV system under PSC. In addition to this, the P&O technique is utilized to achieve the LMPP in the first section, and the hybrid algorithm is utilized to achieve the GMPP in the second section. Here, the hybrid technique is the integration of Cauchy preferential crossover (CC) with the flower pollination algorithm (FPA). Furthermore, the exploitation ability of the FPA is enhanced by the CC, and the combined hybrid algorithm has the ability to produce the optimal duty cycle for the DC-DC boost converter for MPPT. Then the proposed method will be executed in MATLAB/Simulink model, and it is contrasted with the existing methods such as CC, current sensorless (CS), and FPA, respectively. The experimental results and analysis reveal that the proposed approach provides better performances when compared with several other metaheuristic algorithms.
机译:一般来说,光伏发电(PV)因其无污染运行和良好的灵活性条件而被认为是可再生能源中的最佳选择。光伏系统受到部分遮光条件(PSC)的影响,这会降低发电量。在稳态运行条件下,使用扰动和观测(P&O)方法跟踪PSCs下的全局最大功率点(GMPP)和局部最大功率点(LMPP)会出现时间延迟。为了克服这些缺点,本文提出了一种结合P&O技术的混合算法来改进PSC下光伏系统的最大功率点跟踪(MPPT)。除此之外,第一部分采用P&O技术实现LMPP,第二部分采用混合算法实现GMPP。在这里,混合技术是柯西优先杂交(CC)与花授粉算法(FPA)的结合。此外,CC增强了FPA的开发能力,组合混合算法能够为MPPT的DC-DC升压变换器产生最佳占空比。然后在MATLAB/Simulink模型中实现了该方法,并分别与CC、无电流传感器(CS)和FPA等现有方法进行了对比。实验结果和分析表明,与其他几种元启发式算法相比,该算法具有更好的性能。

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