混合发电:PCM 和 TEG 与光伏系统集成的实验研究

Manjesh Bandrehalli Chandrashekaraiah, Beemkumar Nagappan, Y. Devarajan
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引用次数: 0

摘要

全球变暖和能源消耗升级已成为迫在眉睫的问题,促使全球向环境发展转变。近年来,太阳能光伏(PV)电池,尤其是晶体硅电池的装机容量大幅增加。在众多旨在提高光伏电池发电效率的研究中,降低这些电池的内部温度是一个突出的途径。本研究的主要目标是提高发电量和光电池效率。为了实现这一目标,研究人员将纳米粒子与相变材料(PCM)进行了战略性混合,通过改变插入比例来调节光伏电池板的吸热能力。此外,该研究还试图评估集成热电发生器(TEG)模块和 TEG 设置下方的水基纳米流体冷却系统的影响。这些措施旨在有效监测废热转化为电能的情况。因此,光伏电池板的拟议定向--涉及通过改变插入百分比来调整 PCM,再加上 TEG 集成和水基纳米流体冷却技术--在提高效率和缓解太阳能电池退化方面大有可为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hybrid Power Generation: Experimental Investigation of PCM and TEG Integration with Photovoltaic Systems
Global warming and escalating energy consumption have presented pressing issues, catalyzing a pivotal shift towards environmental development worldwide. In recent years, the installed capacity of solar photovoltaic (PV) cells, particularly crystalline silicon cells, has experienced a significant surge. Among the myriad studies aimed at enhancing the efficiency of PV cells' power generation, one prominent avenue involves reducing the internal temperature of these cells. The primary objectives of the present study revolved around augmenting power generation and improving photocell efficiency. This was pursued through the strategic blending of nanoparticles with phase change material (PCM), with variations in insertion percentages to modulate the heat absorption capacity of the PV panel. Additionally, the study sought to evaluate the impact of integrating Thermoelectric Generator (TEG) modules and a water-based nano-fluid cooling system beneath the TEG setup. These measures aimed to effectively monitor the conversion of waste heat into electrical energy. Consequently, the proposed orientation of PV panels – involving PCM adjustment via alteration of insertion percentages, coupled with TEG integration and water-based nano-fluid cooling technology – holds significant promise for enhancing efficiency and mitigating solar cell degradation.
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