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Reconfiguration strategies for reducing partial shading effects in photovoltaic arrays: State of the art

机译:减少光伏阵列中部分阴影效应的重配置策略:现有技术

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Power delivered by a Photovoltaic (PV) cell reduces significantly due to non-uniform irradiance. Consequently, in the case of PV module or array, the generated output power get reduces and further deteriorates the overall system performance. The reduction of output power is not directly proportional to the shading area but depends on the shading pattern and type of array configuration chosen. Many solutions have been reported in the literature to reduce partial shadings. However, the reported solutions may fail to enhance maximum power to the possible extent. Therefore, to compensate these power losses a promising technique is required which relies on reconfiguration strategies, namely reconfigure the PV modules within the PV array in order to increase maximum power at a higher level. These strategies are classified into dynamic and static reconfiguration techniques. This paper presents the state of the art of reconfiguration strategies for PV array's to increase maximum power under partial shading and mismatch conditions. In addition to this, the challenging issues for hardware implementation of both dynamic and static reconfiguration techniques are discussed in this paper. Based on the review study, it can be concluded that the dynamic reconfiguration techniques are relatively expensive, but this can effectively compensate the partial shading and mismatch effects in PV array as compared to static technique.
机译:由于辐照度不均匀,光伏(PV)电池传递的功率大大降低。因此,在PV模块或阵列的情况下,产生的输出功率get降低,并进一步降低了整个系统的性能。输出功率的降低并不直接与阴影区域成正比,而是取决于阴影图案和所选阵列配置的类型。在文献中已经报道了许多解决方案以减少局部阴影。但是,报告的解决方案可能无法将最大功率提高到可能的程度。因此,为了补偿这些功率损耗,需要一种有前途的技术,该技术依赖于重新配置策略,即在PV阵列内重新配置PV模块,以便在更高的水平上增加最大功率。这些策略分为动态和静态重新配置技术。本文介绍了PV阵列在部分阴影和失配条件下增加最大功率的重新配置策略的最新技术。除此之外,本文还讨论了动态和静态重新配置技术的硬件实现方面的挑战性问题。根据综述研究,可以得出结论,动态重构技术相对昂贵,但是与静态技术相比,它可以有效补偿PV阵列中的部分阴影和失配效应。

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