平板太阳能集热器中石墨烯混合纳米流体的数值研究

Abu Shadate Faisal Mahamude, Wan Sharuzi Wan Harun, K. Kadirgama, K. Farhana, D. Ramasamy
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引用次数: 2

摘要

本文旨在用数值方法描述纳米流体和混合纳米流体在太阳能集热器中传热的基本性质。为了降低平板太阳能集热器的能耗,提高集热器的效率,对平板太阳能集热器在不同路径上展开机翼进行了研究。计算仿真是其中的一种,在实际实验前对降低成本起着至关重要的作用。在本研究中,使用石墨烯、CNC纳米流体和混合纳米流体(CNC +石墨烯)进行数值模拟,并将其传递到集热器的集管和提升管中。对纳米流体和混合纳米流体的内能、传热速率、表面传热系数、表面努塞尔数、分子普朗特数和表面摩擦系数等属性进行了评价,并与基液进行了比较。根据太阳能集热器的实际模型,利用软件编制几何图形。数值研究结果表明,石墨烯及其混合纳米流体的内能、传热速率、表面传热系数均有令人满意的提高。此外,纳米流体和混合纳米流体在无量纲数上表现稳定,但表面摩擦系数呈上升趋势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Studies of Graphene Hybrid Nanofluids in Flat Plate Solar Collector
This study aims to present the fundamental properties related to heat transfer of nanofluids and hybrid nanofluids in solar collector numerically. To deduct the energy consumption and to improve the efficiency of the flat plate solar collector, a research study was conducted to expand its wings in various pathways. Computational simulation is one of them and plays a vital role to diminish the cost before the practical experiment. In this study, graphene, CNC nanofluids, and hybrid nanofluids (CNC + graphene) were used for numerical simulations, which were transferred to the header and riser tubes of the collector. Different attributes such as internal energy, heat transfer rate, surface heat transfer coefficient, surface Nusselt number, molecular Prandtl number and skin friction coefficient of nanofluids and hybrid nanofluids were evaluated and compared with the base fluid. The geometry was prepared based on the actual model of the solar collector using a software. The numerical study reported a satisfactory enhancement of internal energy, heat transfer rate, surface heat transfer coefficient of graphene and the hybrid of graphene nanofluids. Besides, nanofluids and hybrid nanofluids performed in a stable non-dimensional number but showed a rising trend in the skin friction coefficient.
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