Heat transfer analysis in hybrid nano-composite flow in a stretchable convergent/divergent channel in the preaence of Darcy-Forchheimer law and Lorentz force

IF 6 2区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY
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Abstract

The hybrid nano-composite fluid transportation in Jaffery-Hemal flow (JHF) has important uses in various technologies, like converging dies, hydrology, automobiles, etc. Such significant applications motivated us to work on the current problem. Therefore, the purpose of the current work is to inspect the energy efficiency analysis of hybrid nanofluids via convergent/divergent channels using porous space. The hybrid nanofluid consists of polyethylene glycol water, nanoparticles ZrO2 and MgO. To understand the porosity features, the Darcy-Forchheimer law is used. Solar radiation is considered for a more comprehensive analysis of the thermal field. The strong ODEs are obtained using a suitable similarity transformation. The NDSolve technique is used to simulate numerical results, which are then compared with previous published results. Plots and tables are used to report physical investigations of the related parameters. For higher solid volume fractions, the divergent channel’s velocity drops. Whereas it increases for a convergent channel. In the presence of variables, Eckert number, and porosity parameter, skin friction increases in divergent channels and decreases in convergent channels for both nanofluids and hybrid nanofluids. Furthermore, it is noticed that hybrid nanocomposite has more dominant features than nanocomposite for both scenarios of narrowing/expanding channels.

达西-福克海默定律和洛伦兹力作用下可拉伸汇聚/发散通道中混合纳米复合材料流的传热分析
贾弗里-赫马尔流(JHF)中的混合纳米复合流体传输在各种技术中都有重要用途,如汇流排、水文学、汽车等。这些重要的应用促使我们研究当前的问题。因此,当前工作的目的是利用多孔空间,通过会聚/发散通道检测混合纳米流体的能效分析。混合纳米流体由聚乙二醇水、纳米粒子 ZrO2 和 MgO 组成。为了解多孔性特征,使用了达西-福克海默定律。为了更全面地分析热场,还考虑了太阳辐射。通过适当的相似性变换可以得到强 ODEs。使用 NDSolve 技术模拟数值结果,然后将其与之前公布的结果进行比较。图表用于报告相关参数的物理研究。固体体积分数越高,发散通道的速度越低。而收敛通道的速度则会增加。在存在变量、埃克特数和孔隙率参数的情况下,对于纳米流体和混合纳米流体,发散通道的表皮摩擦力会增加,而收敛通道的表皮摩擦力会减小。此外,我们还注意到,在通道变窄/变宽的两种情况下,混合纳米复合材料比纳米复合材料具有更主要的特征。
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来源期刊
Ain Shams Engineering Journal
Ain Shams Engineering Journal Engineering-General Engineering
CiteScore
10.80
自引率
13.30%
发文量
441
审稿时长
49 weeks
期刊介绍: in Shams Engineering Journal is an international journal devoted to publication of peer reviewed original high-quality research papers and review papers in both traditional topics and those of emerging science and technology. Areas of both theoretical and fundamental interest as well as those concerning industrial applications, emerging instrumental techniques and those which have some practical application to an aspect of human endeavor, such as the preservation of the environment, health, waste disposal are welcome. The overall focus is on original and rigorous scientific research results which have generic significance. Ain Shams Engineering Journal focuses upon aspects of mechanical engineering, electrical engineering, civil engineering, chemical engineering, petroleum engineering, environmental engineering, architectural and urban planning engineering. Papers in which knowledge from other disciplines is integrated with engineering are especially welcome like nanotechnology, material sciences, and computational methods as well as applied basic sciences: engineering mathematics, physics and chemistry.
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