Author:
Ramzan Muhammad,Riasat Saima,Zhang Yan,Nisar Kottakkaran Sooppy,Badruddin Irfan Anjum,Ahammad N. Ameer,Ghazwani Hassan Ali S.
Abstract
AbstractThe present investigation involves the Hall current effects past a low oscillating stretchable rotating disk with Joule heating and the viscous dissipation impacts on a Ferro-nanofluid flow. The entropy generation analysis is carried out to study the impact of rotational viscosity by applying a low oscillating magnetic field. The model gives the continuity, momentum, temperature, magnetization, and rotational partial differential equations. These equations are transformed into the ODEs and solved by using bvp4c MATLAB. The graphical representation of arising parameters such as effective magnetization and nanoparticle concentration on thermal profile, velocity profile, and rate of disorder along with Bejan number is presented. Drag force and the heat transfer rate are given in the tabular form. It is comprehended that for increasing nanoparticle volume fraction and magnetization parameter, the radial, and tangential velocity reduce while thermal profile surges. The comparison of present results for radial and axial velocity profiles with the existing literature shows approximately the same results.
Funder
Deanship of Scientific Research at King Khalid University
Publisher
Springer Science and Business Media LLC
Reference41 articles.
1. Rosensweig, R. E. Ferrohydrodynamics (Cambridge University Press, 1994).
2. Berkovsky, B. & Khartov, M. (eds) Magnetic Fluids and Applications Handbook (Begell House, 1994).
3. Verma, P. D. S. & Ram, P. On the low-Reynolds number magnetic fluid flow in a helical pipe. Int. J. Eng. Sci. 31(2), 229–239 (1993).
4. Rinaldi, C., Chaves, A., Elborai, S., He, X. T. & Zahn, M. Magnetic fluid rheology and flows. Curr. Opin. Colloid Interface Sci. 10(3–4), 141–157 (2005).
5. Zeeshan, A., Majeed, A. & Ellahi, R. Effect of magnetic dipole on viscous ferro-fluid past a stretching surface with thermal radiation. J. Mol. Liq. 215, 549–554 (2016).
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