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首页> 外文期刊>Energy Conversion & Management >Analysis and optimization of passive cooling approach for free-standing photovoltaic panel: Introduction of slits
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Analysis and optimization of passive cooling approach for free-standing photovoltaic panel: Introduction of slits

机译:独立式光伏板被动冷却方法的分析与优化:狭缝引入

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摘要

One of the major issues related to market available silicon based photovoltaic (PV) technologies is the performance drop caused by relatively high PV panel operating temperatures. The proper cooling of PV panels can reduce performance degradation and increase the lifetime of convectional PV panels. This paper investigates architecture modifications to market available silicon PV panels with the introduction of slits on the PV panel surface, which enables the passive cooling of PV panels. Two different arrangements of slits were numerically investigated and followed with the optimization approach. A developed numerical model was derived from the referent numerical model that was experimentally validated. For each considered scenario, a detailed flow and thermal analysis was performed which included optimization regarding minimum average PV cell temperatures. The considered slit types differ with slit orientation, i.e. parallel to PV panel tilt-axis (type-A) and perpendicular to PV panel tilt-axis (type-B). In both cases, a detailed analysis and optimization required similar to 100 CFD simulations to investigate the effects of different slit sizes and all wind directions. Overall, using the considered slit modifications, the average PV cell temperature could be decreased up to 3 degrees C, where effective cooling with the proposed modification is only reasonable for wind speeds up to 5 m/s.
机译:与市场上可用的基于硅的光伏(PV)技术有关的主要问题之一是由相对高的PV面板操作温度引起的性能下降。 PV面板的适当冷却可以降低性能下降并增加对流光伏面板的寿命。本文调查了在PV面板表面上引入狭缝的市场可用硅PV面板的架构修改,这使得PV面板的被动冷却能够。在数值上进行了两种不同的狭缝布置,并随后进行了优化方法。从实验验证的参考数字模型导出了开发的数值模型。对于每个考虑的场景,进行了详细的流动和热分析,其包括关于最小平均光伏电池温度的优化。所考虑的狭缝类型与狭缝方向不同,即平行于光伏面板倾斜轴(类型-A)并垂直于光伏面板倾斜轴(型-B)。在这两种情况下,详细的分析和优化需要类似于100个CFD模拟,以研究不同狭缝尺寸和所有风向的影响。总的来说,使用所考虑的狭缝修改,平均光伏电池温度可降低至3℃,其中有效冷却与所提出的修改仅适用于风速高达5米/秒。

著录项

  • 来源
    《Energy Conversion & Management》 |2020年第1期|112277.1-112277.11|共11页
  • 作者单位

    Univ Split Fac Elect & Mech Engn & Naval Architecture Lab Numer Modeling & Comp Applicat Rudjera Boskovica 32 Split 21000 Croatia;

    Univ Split Fac Elect Engn Mech Engn & Naval Architecture LTEF Lab Thermodynam & Energy Efficiency Rudjera Boskovica 32 Split 21000 Croatia;

    Univ Split Fac Elect Engn Mech Engn & Naval Architecture LTEF Lab Thermodynam & Energy Efficiency Rudjera Boskovica 32 Split 21000 Croatia;

    Univ Split Fac Elect & Mech Engn & Naval Architecture Dept Elect Rudjera Boskovica 32 Split 21000 Croatia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Photovoltaics; Numerical analysis; Passive cooling; Renewable energy; Energy conversion efficiency;

    机译:光伏;数值分析;被动冷却;可再生能源;能量转换效率;

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