纳米流体与双反射抛物面槽集热器吸收管加翅片的联合效应

IF 1.204 Q3 Energy
Tameur Zaitri, Belkacem Bouali, Mostefa Telha, Nadhir Abdelaziz, Aissa Gounni, Maria Hanane Regue
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引用次数: 0

摘要

本文分析了带二次反射器的抛物槽集热器的热性能。主要目的是研究在吸收管中加入翅片、将纳米颗粒引入基液以及将翅片和纳米流体结合作为传热流体(HTF)的影响。研究分为两部分:第一部分采用基于蒙特卡罗技术的射线追踪方法确定接收管侧壁热流密度分布。第二部分模拟了吸收管内的共轭传热和流体流动。本研究采用的传热流体为氧化铝(Al2O3)纳米流体,气象条件为阿尔及利亚南部城市Laghouat。计算表明,二次反射镜的平均效率约为47%。此外,结果表明,在管内插入三个翅片的最优系统配置下,使用矩形翅片的效率提高了11%。此外,在基础液(水)中加入4%的氧化铝纳米颗粒(Al2O3),系统效率提高了12%。最后,使用二次反射器、插入翅片和使用纳米流体作为传热流体的最佳组合可提供约16%的效率增益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Combined Effects of Using a Nanofluid and Adding Fins to the Absorber Tube of a Double-Reflection Parabolic Trough Collector

Combined Effects of Using a Nanofluid and Adding Fins to the Absorber Tube of a Double-Reflection Parabolic Trough Collector

This paper presents an analysis of the thermal performance of a parabolic trough collector (PTC) integrating a secondary reflector. The primary objective is to examine the impact of incorporating fins within the absorber tube, the introduction of nanoparticles to the base fluid, and the combination of fins and a nanofluid as a heat transfer fluid (HTF). The study is divided into two parts: The first part employs a ray-tracing method based on the Monte Carlo technique to determine the heat flux distribution on the lateral surface of the receiver tube. The second part involves simulating the conjugate heat transfer and fluid flow within the absorber tube. The heat transfer fluid used in this study is alumina (Al2O3) nanofluid, and the meteorological conditions are representative of Laghouat, a city in southern Algeria. The calculations revealed an average efficiency of approximately 47% for a secondary reflector. In addition, the results demonstrated that the optimal system configuration includes inserting three fins inside the tube, which leads to an efficiency improvement of 11% when using rectangular fins. Furthermore, the addition of 4% alumina nanoparticles (Al2O3) to the base fluid (water) increases the system’s efficiency by 12%. Finally, an optimal combination using a secondary reflector, the insertion of fins and the use of a nanofluid as a heat transfer fluid offer an efficiency gain of around 16%.

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来源期刊
Applied Solar Energy
Applied Solar Energy Energy-Renewable Energy, Sustainability and the Environment
CiteScore
2.50
自引率
0.00%
发文量
0
期刊介绍: Applied Solar Energy  is an international peer reviewed journal covers various topics of research and development studies on solar energy conversion and use: photovoltaics, thermophotovoltaics, water heaters, passive solar heating systems, drying of agricultural production, water desalination, solar radiation condensers, operation of Big Solar Oven, combined use of solar energy and traditional energy sources, new semiconductors for solar cells and thermophotovoltaic system photocells, engines for autonomous solar stations.
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