Stagnation point hybrid nanofluid flow past a stretching/shrinking sheet driven by Arrhenius kinetics and radiation effect

被引:29
|
作者
Zainal, Nurul Amira [1 ]
Waini, Iskandar [1 ]
Khashi'ie, Najiyah Safwa [1 ]
Kasim, Abdul Rahman Mohd [2 ]
Naganthran, Kohilavani [3 ]
Nazar, Roslinda [4 ]
Pop, Ioan [5 ]
机构
[1] Univ Teknikal Malaysia Melaka, Fak Teknol Kejuruteraan Mekanikal & Pembuatan, Melaka 76100, Malaysia
[2] Univ Malaysia Pahang, Ctr Math Sci, Gambang Pahang 26300, Malaysia
[3] Univ Malaya, Inst Math Sci, Fac Sci, Kuala Lumpur 50603, Malaysia
[4] Univ Kebangsaan Malaysia, Fac Sci & Technol, Dept Math Sci, Ukm Bangi 43600, Selangor, Malaysia
[5] Babesss Bolyai Univ, Dept Math, Cluj Napoca 400084, Romania
关键词
Arrhenius kinetics; Stagnation-point flow; Hybrid nanofluid; Thermal radiation; Stretching; shrinking sheet; BOUNDARY-LAYER-FLOW; THERMAL-RADIATION; HEAT-TRANSFER; CONVECTION;
D O I
10.1016/j.aej.2023.01.005
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The exclusive behaviour of hybrid nanofluid has been actively emphasized due to the determination of improved thermal efficiency. Therefore, the aim of this study is to highlight the stagnation point Al2O3-Cu/H2O hybrid nanofluid flow with the influence of Arrhenius kinetics and thermal radiation over a stretching/shrinking sheet. This particular work is distinctive because it presents a novel hybrid nanofluid mathematical model that takes into account the highlighted issue with a combination of multiple consequences that have not yet been addressed in prior liter-ature. The bvp4c package embedded in MATLAB software is used to address the formulated ordi-nary differential equations and specified boundary conditions based on similarity solutions. The flow is assumed to be incompressible and laminar, and the hybrid nanofluid is made up of two dif-ferent types of nanoparticles. The findings demonstrate the viability of dual solutions within the defined ranges of the physical parameters. As predicted, the hybrid nanofluid flow has been con-vincingly proved to enhance the skin friction coefficient and the heat transfer performance as opposed to viscous flow and nanofluid flow. The heat of reaction and radiation parameters also act as contributing factors in the progress of thermal enhancement. On the other hand, the reaction rate parameter unexpectedly displays a decreasing trend in the heat transfer rate of the current study. It is anticipated that this study will benefit future research into this potential heat transfer fluid, particularly in the areas of thermal systems and boundary layer analysis.(c) 2023 THE AUTHORS. Published by Elsevier BV on behalf of Faculty of Engineering, Alexandria University. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/ licenses/by-nc-nd/4.0/).
引用
收藏
页码:29 / 38
页数:10
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