通过固体和多孔鳍片促进光伏热系统中相变材料的热调节

Sura A. Namuq, Jasim M. Mahdi
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摘要

本研究探讨了多孔鳍片与相变材料 (PCM) 的整合,以增强光伏热系统 (PVT) 的热调节能力。通过计算模拟,评估了不同多孔鳍片配置对 PCM 熔化动力学、光伏电池温度和整个 PVT 系统效率的影响。结果表明,将优化的多孔鳍片阵列纳入 PCM 区域可显著改善光伏电池的散热,从而实现更有效的热控制。具体来说,优化的交错多孔鳍片设计缩短了 PCM 的总熔化时间,并将电池的峰值温度降低了约 5°C。这是通过在 PCM 熔化过程中创建高效的传热通道,加速自然对流的发生而实现的。与传统固态金属翅片的进一步比较表明,虽然固态翅片能使初始熔化速度提高 12.2%,但与优化的多孔翅片相比,其长期温度调节能力较差。此外,通过利用浮力驱动的对流,将光伏组件从 0° 方向倾斜至 90° 方向,可将 PCM 的总熔化时间进一步缩短 13 分钟。总之,轻质多孔鳍片结构创造了高效的热传导途径,可被动调节光伏热发电系统的温度,与没有鳍片的光伏热发电系统相比,热效率提高了 16%,发电量提高了 2.9%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Boosting thermal regulation of phase change materials in photovoltaic-thermal systems through solid and porous fins
This study explores the integration of porous fins with phase-change materials (PCM) to enhance the thermal regulation of photovoltaic-thermal (PVT) systems. Computational simulations are conducted to evaluate the impacts of different porous fin configurations on PCM melting dynamics, PV cell temperatures, and overall PVT system effectiveness. The results demonstrate that incorporating optimized porous fin arrays into the PCM region can significantly improve heat dissipation away from the PV cells, enabling more effective thermal control. Specifically, the optimized staggered porous fin design reduces the total PCM melting time and decreases peak cell temperatures by about 5°C . This is achieved by creating efficient heat transfer pathways that accelerate the onset of natural convection during the PCM melting process. Further comparisons with traditional solid metallic fins indicate that while solid fins enable 12.2% faster initial melting, they provide inferior long-term temperature regulation capabilities compared to the optimized porous fins. Additionally, inclining the PV module from 0° to 90° orientation can further decrease the total PCM melting time by 13 minutes by harnessing buoyancy-driven convection. Overall, the lightweight porous fin structures create highly efficient heat transfer pathways to passively regulate temperatures in PVT systems, leading to quantifiable improvements in thermal efficiency of 16% and electricity output of 2.9% over PVT systems without fins.
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