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A new robust, mutated and fast tracking LPSO method for solar PV maximum power point tracking under partial shaded conditions

机译:一种新的鲁棒,变异且快速跟踪的LPSO方法,用于在部分阴影条件下跟踪太阳能光伏最大功率点

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摘要

Mounting demand for energy and accumulation of hazardous nuclear wastes has invited the world to reduce their addiction to conventional power generation. Having established its global potential to replace fossil fuels, solar PV is increasingly installed worldwide. Yet PV is ill-starred due to its non-linear characteristics and hence, PV systems employ Maximum Power Point (MPP) controllers. Even though enough research progress is kept at the forefront in the MPP research area, the necessity to improvise the existing methods becomes mandatory to improve the energy conversion efficiency. Hence, in this paper, a global maximum power point tracking (GMPPT) algorithm based on Leader Particle Swarm Optimization (LPSO) is proposed for PV system. Apart from the conventional PSO, exclusive mutations strategies are employed to obtain the global best leader that helps the algorithm to differentiate between local and global MPPs. The simulation results are validated under numerous test conditions in which partial shading conditions are analyzed over a wide extent and in validation, the results of LPSO method is compared with PSO and P&O methods as well. Interestingly LPSO method has an inherent exploration and exploitation quality that made it to produce hasty converge within 0.5 s under any shade conditions. Acknowledging to the promise shown in simulation, the mutation based LPSO method has managed to excel even in hardware experimentation which in turn justifies its suitability for MPPT application. (C) 2017 Elsevier Ltd. All rights reserved.
机译:对能源和危险性核废料的积累的不断增长的需求吸引了全世界减少其对常规发电的依赖。确立了其替代化石燃料的全球潜力后,太阳能光伏在全球范围内的安装越来越多。然而,由于其非线性特性,光伏发电不佳,因此,光伏系统采用最大功率点(MPP)控制器。即使在MPP研究领域保持了足够的研究进展,但必须改进现有方法以提高能量转换效率。因此,本文提出了一种基于前导粒子群算法(LPSO)的全局最大功率点跟踪(GMPPT)算法。除了传统的PSO,还采用排他性突变策略来获得全局最佳前导,这有助于算法区分本地MPP和全局MPP。在众多测试条件下对仿真结果进行了验证,在这些测试条件下,广泛分析了部分阴影条件,并且在验证中,还将LPSO方法的结果与PSO和P&O方法进行了比较。有趣的是,LPSO方法具有固有的勘探和开发质量,可以在任何阴影条件下在0.5 s内草草收敛。基于仿真所显示的希望,基于突变的LPSO方法即使在硬件实验中也表现出色,从而证明了其适用于MPPT应用的合理性。 (C)2017 Elsevier Ltd.保留所有权利。

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