Combined Thermal Performance Enhancement of Parabolic Trough Collectors Using Alumina Nanoparticles and Internal Fins

IF 0.8 Q3 ENGINEERING, MULTIDISCIPLINARY International Journal of Engineering Research in Africa Pub Date : 2022-11-23 DOI:10.4028/p-63cdb1
Mohamed H. Yehia, Muhammed A. Hassan, Nabeel Abed, A. Khalil, N. Bailek
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引用次数: 3

Abstract

Parabolic trough collectors are the currently dominant technology for concentrated solar power systems, employed to produce thermal energy at low to medium temperatures (up to 400°C). Extensive research has been carried out to enhance the thermal efficiency and reduce the power production costs of these concentrators. However, there is a lack of studies on combined passive performance enhancement using alternative fluids and absorber designs. In this study, the thermal performance of a full-sized parabolic trough collector is analyzed with the presence of internal longitudinal fins in combination with the use of oil-based nanofluid (Al2O3-Syltherm 800) of different volume fractions. The governing equations are numerically solved using ANSYS FLUENT 17.1 software and the Monte-Carlo ray-tracing (MCRT) model was used to apply the non-uniform heat flux profile over the external surface of the solar receiver. The results show that both techniques enhance thermal energy utilization and reduce radiative and convective thermal losses, resulting in higher thermal efficiency, but also larger pressure losses. The thermal performance is enhanced by 0.1-1.16 % with nanofluid, up to 6.8 % with internal fins, and by up to 7.25 % when both techniques are adopted. These enhancements are attributed to the reduced mean circumferential temperature of the absorber tube.
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利用氧化铝纳米颗粒和内翅片复合增强抛物槽集热器的热性能
抛物面槽式集热器是目前集中太阳能发电系统的主要技术,用于在低至中温(高达400°C)下产生热能。为了提高这些聚光器的热效率和降低发电成本,人们进行了广泛的研究。然而,缺乏使用替代流体和吸收器设计的联合被动性能增强研究。在这项研究中,分析了一个全尺寸抛物线槽集热器的热性能,在存在内部纵向翅片的情况下,结合使用不同体积分数的油基纳米流体(Al2O3-Syltherm 800)。利用ANSYS FLUENT 17.1软件对控制方程进行了数值求解,并采用蒙特卡罗射线追踪(MCRT)模型对太阳能接收器外表面的非均匀热流密度分布进行了模拟。结果表明,这两种技术都提高了热能利用,减少了辐射和对流热损失,从而提高了热效率,但也带来了更大的压力损失。采用纳米流体可使热学性能提高0.1- 1.16%,采用内翅片可提高6.8%,采用两种技术可使热学性能提高7.25%。这些增强是由于吸收管的平均周向温度降低。
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来源期刊
CiteScore
1.80
自引率
14.30%
发文量
62
期刊介绍: "International Journal of Engineering Research in Africa" is a peer-reviewed journal which is devoted to the publication of original scientific articles on research and development of engineering systems carried out in Africa and worldwide. We publish stand-alone papers by individual authors. The articles should be related to theoretical research or be based on practical study. Articles which are not from Africa should have the potential of contributing to its progress and development.
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