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Bio-inspired optimization algorithms based maximum power point tracking technique for photovoltaic systems under partial shading and complex partial shading conditions

机译:基于生物启发优化算法基于局部遮阳下的光伏系统的最大功率点跟踪技术及复杂的部分着色条件

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摘要

PV systems generate electrical energy from solar energy and are categorized as the cleanest and cost-effective form of electrical energy. Due to changes in temperature and irradiance conditions, PV systems fall into the category of partial shading (PS) which renders its output to be non-linear. Power losses occur due to PS conditions. Multiple bio-inspired MPPT techniques are pre-selected such as particle swarm optimization (PSO), grey wolf optimizer (GWO), cuckoo search (CS), and grasshopper optimization (GHO). Oscillations around the Global Maxima (GM), getting trapped in local maxima and in-efficient tracking of the GM, are the main drawbacks that are observed in the above mentioned techniques. This paper utilizes two swarm intelligence (SI) based novel MPPT techniques namely marine predator algorithm (MPA) and mayfly optimization algorithm (MFA). These techniques overcome the above-mentioned drawbacks. Three cases have been introduced in this paper namely fast varying irradiance, partial shading conditions, and complex partial shading condition. Improvements in the tacking time of up to 45% and efficiency greater than 99.9% has been observed in the proposed technique. It is observed that oscillations have been reduced to as low as 1W along with extreme reduction in power loss as well. Rapid MPPT, low computational power, and high efficiency are the main features of the proposed techniques.
机译:光伏系统从太阳能产生电能,并被分类为最干净,经济高效的电能形式。由于温度和辐照度条件的变化,光伏系统落入部分着色(PS)类别,使其输出成为非线性的。由于PS条件,功率损耗发生。预先选择多种生物启发MPPT技术,如粒子群优化(PSO),灰狼优化器(GWO),杜鹃搜索(CS)和蚱蜢优化(GHO)。全局最大值(GM)周围的振动,被困在局部最大值和高效跟踪GM,是在上述技术中观察到的主要缺点。本文利用了两种智能智能(SI)新型MPPT技术即船舶捕食者算法(MPA)和MANFLY优化算法(MFA)。这些技术克服了上述缺点。本文介绍了三种情况,即快速的辐照度,偏遮阳条件和复杂的部分遮阳条件。在提出的技术中,已经观察到高达45%,效率大于99.9%的粘性时间的改善。观察到,振荡已经减少到低至1W,同时极低减少功率损耗。快速MPPT,低计算能力和高效率是所提出的技术的主要特征。

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