Convective heat transfer in magnetized flow of nanofluids between two rotating parallel disks

Author:

Waqas Hassan1,Khan Shan Ali1,Muhammad Taseer2,Yasmin Sumeira1

Affiliation:

1. Department of Mathematics , Government College University Faisalabad, Layyah Campus , Layyah 31200 , Pakistan

2. Department of Mathematics , College of Sciences, King Khalid University , Abha 61413 , Saudi Arabia

Abstract

Abstract Inspired by several implementations (metal mining, turbine disc, spinning disk, mechanical engineering and drawing of plastic film) of nanoliquid flow between rotating disks, we have reported a theoretical analysis on magnetohydrodynamic flow of kerosene base liquid containing three different nanoparticles namely manganese-zinc ferrite, cobalt ferrite and nickel-zinc ferrite between two parallel rotating-disks. Thermal radiation and convection thermal-conditions are considered. Furthermore, the significant properties of induced magnetic field are accounted to control the flow and thermal transport phenomenon. Furthermore, the temperature distribution is improved by employing Cattaneo-Christov heat flux. This communication is critical in the engineering sector due to different implementations including power technology, cooling reactors, fuel cells etc. The system of nonlinear higher order dimensionless equations is found by applying appropriate similarities-transformations. The exact solution of such strong nonlinear equations is not possible therefore we construct the numerical solution by employing bvp4c (shooting approach) in the MATLAB. Physical trends of velocities, pressure and thermal fields are discussed in detail. The outcomes indicate that stretching parameter of lower disk causes improvement in axial and radial fluid velocity. Fluid radial velocity near the lower disk is improved for growing Reynolds number. Moreover, the thermal field is enhanced for growing thermal Biot parameter at lower disk.

Publisher

Walter de Gruyter GmbH

Subject

General Chemical Engineering

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