热辐射和磁场作用下纳米流体斜通道传热分析

IF 0.9 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
Refat Ullah Jan, Hamid Khan, Walid Emam, Zeeshan Ali, Subhan Ullah, Dolat Khan, Dragan Pamucar
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引用次数: 0

摘要

本研究利用纳米流体探索杰弗瑞-哈默尔流,在需要高效传热和精确控制流体流动的领域,特别是在收敛或发散通道中,具有许多实际应用价值。这些应用包括热交换器、电子冷却系统和太阳能集热器等技术。具体应用包括电子冷却中的微型散热器,生物医学设备中的磁流体动力泵和太阳能集热器。受杰弗瑞-哈默尔流动的实际应用启发,该技术旨在通过在纳米流体中引入磁性参数和热辐射来提高流体的热效率。本研究将含铜的水基纳米流体作为纳米粒子进行分析,建立了一个非线性方程组,并通过NDSolve技术进行了计算。将所得数值结果与已有研究结果进行了比较,结果吻合较好,证实了所提方法的一致性。研究仔细考察了哈特曼数、纳米粒子浓度和热辐射对速度场和温度场的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heat transfer analysis of nanofluid through inclined channels under the influence of thermal radiation and magnetic field

This study explores Jeffery–Hamel (JH) flow using nanofluids, which have many practical applications in areas that need efficient heat transfer and precise control of fluid flow, especially in converging or diverging channels. These applications include technologies like heat exchangers, cooling systems for electronics, and solar thermal collectors. Specific applications include microscale heat sinks in electronic cooling, magnetohydrodynamic pumps in biomedical devices, and solar thermal collectors. Inspired by these real-world applications of Jeffery–Hamel flow, it is aimed to improve the thermal efficiency of the fluid, by introducing magnetic parameter and thermal radiation in the nanofluids. The analysis of this research study considers water based nanofluid with copper (Cu) as nanoparticles, which modeled a system of nonlinear equation and computed through NDSolve technique. The numerical results so obtained are compared with already existing studies, showing a good match and confirming the consistency of the proposed method. The study carefully examines, impact of the Hartmann number, nanoparticles concentration, and thermal radiation affects the velocity and temperature fields.

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来源期刊
Journal of the Korean Physical Society
Journal of the Korean Physical Society PHYSICS, MULTIDISCIPLINARY-
CiteScore
1.20
自引率
16.70%
发文量
276
审稿时长
5.5 months
期刊介绍: The Journal of the Korean Physical Society (JKPS) covers all fields of physics spanning from statistical physics and condensed matter physics to particle physics. The manuscript to be published in JKPS is required to hold the originality, significance, and recent completeness. The journal is composed of Full paper, Letters, and Brief sections. In addition, featured articles with outstanding results are selected by the Editorial board and introduced in the online version. For emphasis on aspect of international journal, several world-distinguished researchers join the Editorial board. High quality of papers may be express-published when it is recommended or requested.
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