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Shading Effect to Energy Withdrawn from the Photovoltaic Panel and Implementation of DMPPT Using C Language

机译:光伏面板能量吸收的阴影效应和C语言实现DMPPT

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At first, this paper aims to study the effects of partial shading of photovoltaic (PV) panel without bypass diode, in order to present the hot-spot problem which can cause permanent damage to the panel, and with bypass diode that actually protects the panel against the hot-spot phenomenon. A PSIM simulation model that represents a PV panel under shading has been used to do this and the results are presented in this paper. And then, we benefit from the component provided by PSIM (C block) in order to code the maximum power point tracking algorithm (MPPT) using embedded C language so as to operate the PV panel at maximum power point (MPP). One of most precious advantages of this method is that once the MPPT is implemented using C block it can be applied in digital devices, because C language is portable and independent of the machine. The algorithm used is based in Perturb and observe method and it represents a good performance in terms of response time (0.005s) and efficiency (98.99%). However, we demonstrate that this method can fail to follow the real MPP since multiple maxima can exist on the PV power curve under partial shading (global MPP and local MPP). Finally, to solve this problem, the distributed maximum power point tracking (DMPPT) method is used.
机译:首先,本文旨在研究不带旁路二极管的光伏(PV)面板部分遮蔽的影响,以提出可能会永久损坏面板的热点问题,而带有实际上保护面板的旁路二极管针对热点现象。一个PSIM仿真模型可以在阴影下代表PV面板,并在本文中给出了结果。然后,我们将从PSIM(C块)提供的组件中受益,以便使用嵌入式C语言对最大功率点跟踪算法(MPPT)进行编码,从而以最大功率点(MPP)操作PV面板。此方法最宝贵的优点之一是,一旦使用C块实现MPPT,就可以将其应用于数字设备中,因为C语言是可移植的并且独立于机器。使用的算法基于Perturb和观察方法,在响应时间(0.005s)和效率(98.99%)方面表现出良好的性能。但是,我们证明了这种方法可能无法遵循真实的MPP,因为在部分阴影下(全局MPP和局部MPP),PV功率曲线上可能存在多个最大值。最后,为解决此问题,使用了分布式最大功率点跟踪(DMPPT)方法。

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