使用双指数锯齿法提高动态天气条件下光伏组件的性能并进行技术经济分析

Muhilan Paramasivam , Rakesh Namani , Senthilkumar Subramaniam , Malavya Udugula , Chandana Karnati
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摘要

光伏(PV)组件的最大输出功率主要取决于环境温度和太阳辐照度。光伏组件的性能受部分遮阳(PS)效应的影响很大,这会导致输出功率降低。它是由建筑物、树木、移动的云和塔的阴影造成的。在局部遮光条件下,与无遮挡模块相比,有遮挡模块接收到的辐照度更低,从而导致光伏阵列过热。本研究采用一种基于双指数锯齿(DES)模式的技术来重新配置光伏组件,从而在 PS 条件下提高光伏输出功率,同时节约能源和经济效益。在该技术中,采用全交叉绑定(TCT)技术的光伏模块及其物理位置按照 DES 模式进行排列,以在不改变光伏模块电气连接的情况下在整个阵列上分布遮阳效果。通过减少对任何一排遮光模块的影响,DES 布局的功率提高了 41.48%。此外,它还提供了随着遮光模块数量的增加而增加的功率分享百分比的详细信息,以及动态遮光变化对整个光伏阵列的影响。与现有的分析、模拟和硬件实验方法相比,所提出的方法在失配损失和填充因子方面表现出更好的性能。此外,分析还扩展了 4 × 4 光伏模块上每个额定功率为 1.5 千瓦的模块的发电量和节能量。
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Performance enhancement and techno-economic analysis of photovoltaic modules under dynamic weather conditions using dual exponential sawtooth method

The maximum output power extracted from the Photovoltaic (PV) modules is mainly dependent on ambient temperature and solar irradiance. The photovoltaic modules performance is hugely influenced by the Partial Shading (PS) effect, which results in the reduction of output power. It is caused by shadows of buildings, trees, moving clouds and towers. Under PS conditions, shaded modules receive less irradiance as compared to the unshaded modules, and this leads to overheating of PV array. The present work has been developed by a technique based on Dual Exponential Sawtooth (DES) pattern to reconfigure the PV modules so as to increase the PV output power under PS conditions along with the energy savings and economical aspects. In this technique, the PV modules of Total Cross Tied (TCT) technique and their physical locations are arranged as per DES pattern to distribute the shading effect over the entire array without altering the electrical connections of the PV modules. The DES arrangement gives the enhanced power of 41.48% by reducing the effect on any row of the shaded modules. Further, it provides the details about power sharing percentage as the number of shaded modules increase and also the affect of dynamic shade variation over the entire PV array. The proposed method validation with the existing methods for the analysis, simulation and hardware experimentation shows better performance in terms of mismatch losses and fill factor. Further, the analysis has been extended for units generated and energy savings with each module rating of 1.5 KW on 4 × 4 PV modules.

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