四面体纳米颗粒流动中活化能的产热/吸收效应及化学反应的数值研究

Q1 Chemical Engineering
Talha Anwar , Qadeer Raza , M Zubair Akbar Qureshi , M Awais , Bagh Ali , Ehsanullah Hemati
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引用次数: 0

摘要

纳米粒子在加强热管理、生物医学应用和先进工业过程中发挥着至关重要的作用。本研究对含有四面体纳米颗粒(氧化铝、铜、氧化铁和氧化钛)的反应性纳米流体在两个正交排列的多孔圆盘之间流动时的传热传质进行了详细的数值分析。该研究结合了热产生/吸收、Cattaneo-Christov热流模型、活化能、化学反应和三种纳米颗粒形状(球形、砖状和血小板状)的影响。此外,研究了纳米层导热系数、粘性耗散和焦耳加热在传热过程中的作用。利用相似变换将控制非线性偏微分方程转化为常微分方程,并结合四阶龙格-库塔技术进行数值求解。图形结果是使用Mathematica软件生成的。研究结果表明,与其他形状的纳米颗粒相比,血小板形状的纳米颗粒表现出明显优越的传热性能,特别是在吸力情况下,这表明了更高的努塞尔数值。增加纳米层的厚度可以提高注入和吸入情况下的传热速率。然而,更大的纳米颗粒半径导致吸入和注射情况下相反的流体行为,这反映在下盘的努塞尔数值中。此外,增大膨胀比和磁场参数会减小圆盘之间中心区域的径向速度分布,但会增大靠近两个多孔表面的动量边界层内的径向速度分布。较高的产热或吸热值导致温度曲线的降低,而活化能的增加改善了传质,这从浓度曲线中可以看出。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical study on heat generation/absorption effects with activation energy and chemical reaction in tetrahedral nanoparticle flow between two orthogonal porous disks
Nanoparticles play a crucial role in enhancing thermal management, biomedical applications, and advanced industrial processes. This study presents a detailed numerical analysis of heat and mass transfer in a reactive nanofluid containing tetrahedral nanoparticles (aluminum oxide, copper, iron oxide, and titanium oxide), flowing between two orthogonally arranged porous disks. The investigation incorporates the effects of heat generation/absorption, the Cattaneo–Christov heat flux model, activation energy, chemical reactions, and three nanoparticle shapes: spherical, brick, and platelet. Furthermore, the roles of nanolayer thermal conductivity, viscous dissipation, and Joule heating in the heat transfer process are thoroughly examined. The governing nonlinear partial differential equations are transformed into ordinary differential equations using similarity transformations and are solved numerically using the shooting method combined with the fourth-order Runge–Kutta technique. The graphical results are generated using Mathematica software. The findings reveal that the platelet-shaped nanoparticles exhibit significantly superior heat transfer performance, particularly in the suction case, as indicated by higher Nusselt number values compared to other shapes. Increasing the nanolayer thickness enhances the heat transfer rate in both injection and suction scenarios. However, a larger nanoparticle radius leads to opposite fluid behavior in suction and injection cases, as reflected in the Nusselt number values for the lower disk. Moreover, increasing the expansion ratio and magnetic field parameters reduces the radial velocity profile in the central region between the disks but enhances it within the momentum boundary layers near both porous surfaces. Higher values of heat generation or absorption lead to a reduction in the temperature profile, while an increase in activation energy improves mass transfer, as evident from the concentration profile.
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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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