混合纳米流体与混合光伏集热器耦合冷却系统的多重性能优化

Khadija Chakar, C. Ennawaoui, M. El Mouden, A. Hajjaji
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引用次数: 0

摘要

混合光电热(PVT)集热器以热和电两种形式表现出双能适用性,因此具有相当重要的意义。混合集热器的热行为在消散电池中产生的热量方面起着改善作用,并在冷却液(纳米流体)的帮助下相应地提高了电效率。本研究的贡献是通过模拟和比较TiO2-水、cu -水纳米流体和TiO2/ cu -水混合纳米流体的导热性、热容量和粘度,来评估纳米流体在光伏热系统(PVT)冷却系统中的潜在价值。在恒定温度和纳米颗粒直径下,体积浓度从0%到4%和从0%到10%的程序已经开发出来。结果表明,与简单纳米流体相比,混合纳米流体中表征传热的所有热物理性质都更为重要,例如当纳米颗粒体积分数为3%时,在体积分数为0 ~ 10%的范围内,导热系数和热容量分别增加32%和0.23%,而在体积分数为0 ~ 4%的范围内,导热系数和热容量分别增加12%和0.22%。最终,模型与实验结果一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hybrid Nanofluids Multi performance optimizations for the Cooling System coupling with Hybrid Photovoltaic Thermal Collectors
Hybrid photovoltaic thermal (PVT) collectors have assumed considerable importance for their dual-energy applicability which is presented in thermal and electrical form. The thermal behavior of the hybrid collector plays an ameliorative role in dissipating the heat generated in the cell, and this increases the electrical efficiency accordingly with the help of a coolant fluid (nanofluids).The contribution of this study is to evaluate the potential interest of nanofluids in the cooling system of a photovoltaic thermal system (PVT) by modeling and comparing the thermal conductivity of TiO2-Water, Cu-Water nanofluids and of TiO2/Cu-Water hybrid nanofluid, also their thermal capacity and viscosity. Programs have been developed with volume concentrations from 0% to 4% and from 0% to 10% with constant temperature and nanoparticles diameter. The results show that all thermophysical properties characterizing the heat transfer are more important in a hybrid nanofluid compared to the simple nanofluid, such us for a nanoparticle volume fraction of 3%, the thermal conductivity and thermal capacity increased by 32% and 0.23% respectively, for a volume fraction range of 0 to 10%, while they show an increase of 12% and 0.22% respectively, for a range of 0 to 4%. Eventually the model agreed with experimental results.
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