可重构光伏系统的资本成本感知设计和部分遮阳感知架构优化

Yanzhi Wang, X. Lin, Massoud Pedram, Jaemin Kim, N. Chang
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引用次数: 11

摘要

光伏(PV)系统经常受到部分遮阳,这大大降低了整个系统的输出功率。重新配置的方法已经提出,以自适应地改变光伏板的配置,根据当前的部分遮阳模式。可重构光伏板架构将每个光伏电池与三个可编程开关集成在一起,以方便光伏板的重构。然而,额外的开关增加了光伏系统的资本成本。在本文中,我们将多个PV电池组合成一个PV宏电池,并且PV面板的重构只改变了相邻PV宏电池之间的连接。所有光伏大电池的尺寸和内部结构(即光伏电池的串并联)是相同的,在光伏系统现场安装后不会改变。确定光伏大电池的最佳尺寸是在降低光伏系统资本成本和提高光伏系统性能之间进行权衡的结果。较大的PV宏电池可以降低成本开销,而较小的PV宏电池可以获得更好的性能。在本文中,我们着手计算PV大电池的最佳尺寸,以便在总体系统成本限制的情况下实现最大的系统性能。这种“设计”问题是用一种高效的搜索算法来解决的。此外,我们提供了PV面板的现场可重构性,通过形成串联连接组的并联连接的宏电池。我们确保PV系统的最大输出功率,以响应任何发生的部分遮阳模式。这种“架构优化”问题是用动态规划来解决的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Capital cost-aware design and partial shading-aware architecture optimization of a reconfigurable photovoltaic system
Photovoltaic (PV) systems are often subject to partial shading that significantly degrades the output power of the whole systems. Reconfiguration methods have been proposed to adaptively change the PV panel configuration according to the current partial shading pattern. The reconfigurable PV panel architecture integrates every PV cell with three programmable switches to facilitate the PV panel reconfiguration. The additional switches, however, increase the capital cost of the PV system. In this paper, we group a number of PV cells into a PV macro-cell, and the PV panel reconfiguration only changes the connections between adjacent PV macro-cells. The size and internal structure (i.e., the series-parallel connection of PV cells) of all PV macro-cells are the same and will not be changed after PV system installation in the field. Determining the optimal size of the PV macro-cell is the result of a trade-off between the decreased PV system capital cost and enhanced PV system performance. A larger PV macro-cell reduces the cost overhead whereas a smaller PV macro-cell achieves better performance. In this paper, we set out to calculate the optimal size of the PV macro-cells such that the maximum system performance can be achieved subject to an overall system cost limitation. This “design” problem is solved using an efficient search algorithm. In addition, we provide for in-field reconfigurability of the PV panel by enabling formation of series-connected groups of parallel-connected macro-cells. We ensure maximum output power for the PV system in response to any incurring partial shading pattern. This “architecture optimization” problem is solved using dynamic programming.
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