Darcy–Brinkman Model for Ternary Dusty Nanofluid Flow across Stretching/Shrinking Surface with Suction/Injection

Author:

Sachhin Sudha Mahanthesh1ORCID,Mahabaleshwar Ulavathi Shettar1,Laroze David2ORCID,Drikakis Dimitris3ORCID

Affiliation:

1. Department of Studies in Mathematics, Shivagangothri, Davangere University, Davangere 577 007, India

2. Instituto de Alta Investigacion, Universidad de Tarapacá, Casilla 7 D, Arica 1000000, Chile

3. Institute for Advanced Modelling and Simulation, University of Nicosia, Nicosia CY-2417, Cyprus

Abstract

Understanding of dusty fluids for different Brinkman numbers in porous media is limited. This study examines the Darcy–Brinkman model for two-dimensional magneto-hydrodynamic fluid flow across permeable stretching/shrinking surfaces with heat transfer. Water was considered as a conventional base fluid in which the copper (Cu), silver (Ag), and titanium dioxide (TiO2) nanoparticles were submerged in a preparation of a ternary dusty nanofluid. The governing nonlinear partial differential equations are converted to ordinary differential equations through suitable similarity conversions. Under radiation and mass transpiration, analytical solutions for stretching sheets/shrinking sheets are obtained. Several parameters are investigated, including the magnetic field, Darcy–Brinkman model, solution domain, and inverse Darcy number. The outcomes of the present article reveal that increasing the Brinkman number and inverse Darcy number decreases the velocity of the fluid and dusty phase. Increasing the magnetic field decreases the momentum of the boundary layer. Ternary dusty nanofluids have significantly improved the heat transmission process for manufacturing with applications in engineering, and biological and physical sciences. The findings of this study demonstrate that the ternary nanofluid phase’s heat and mass transpiration performance is better than the dusty phase’s performance.

Publisher

MDPI AG

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Linear stability analysis of micropolar nanofluid flow across the accelerated surface with inclined magnetic field;International Journal of Numerical Methods for Heat & Fluid Flow;2024-07-26

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