Thermodynamics of Cattaneo–Christov heat flux theory on hybrid nanofluid flow with variable viscosity, convective boundary, and velocity slipThermodynamics of Cattaneo–Christov heat flux theory on hybrid nanofluid flow with variable…N. Fatima et al.

被引:0
作者
Nahid Fatima [1 ]
Refka Ghodhbani [2 ]
Aaqib Majeed [3 ]
Nouman Ijaz [4 ]
Najma Saleem [5 ]
机构
[1] Prince Sultan University,Department of Mathematics and Sciences
[2] Northern Border University,Department of Computer Sciences, Faculty of Computing and Information Technology
[3] The University of Faisalabad,Department of Mathematics
[4] Punjab Group of Colleges,Department of Mathematics and Statistics
[5] Prince Mohammad Bin Fahd University,Department of Mathematics and Natural Sciences
关键词
Hybrid nanofluid; Momentum slip; C–C model; MHD; Porous medium; 2D flow; Viscous dissipation; MATLAB;
D O I
10.1007/s10973-024-13833-x
中图分类号
学科分类号
摘要
This work aims to analyze the behavior of the Cattaneo–Christov heat flux theory on hybrid nanofluid flow, and the heat transportation that occurs across a stretchable porous space. In this study, energy equation incorporates the combined effects of thermal radiation and Cattaneo–Christov heat flux. Because of their potential uses in various domains, hybrid nanofluids—a more sophisticated type of nanofluids recognized for their improved thermal properties—are being studied. A two-dimensional hybrid nanofluid system with copper (Cu) and alumina oxide (AlO2) nanoparticles distributed throughout a base fluid of water (H2O) is described by the mathematical model created here. The study includes other elements like viscous dissipation and changing viscosity. Similarity transformations are used to turn the governing partial differential equations (PDEs) into ordinary differential equations, which are then numerically solved using a shooting approach and the MATLAB Bvp4c solver. The impact of crucial parameters on velocity and temperature profiles is carefully investigated in this study. These parameters include the Weissenberg number, magnetic parameter relaxation time, Prandtl number, thermal radiation parameter, velocity slip parameter, Biot number, convection parameter, suction parameter, heat source parameter, and Eckert number. In comparison to conventional nanofluids, the hybrid nanofluid's temperature profile shows a notable rise, according to the data. In certain circumstances, the results also closely match existing solutions. By outperforming traditional nanofluids, this discovery holds promise for improving the performance of industrial heat exchangers, automobile radiators, and electrical gadgets.
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页码:759 / 769
页数:10
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