Computational examination of Jeffrey nanofluid through a stretchable surface employing Tiwari and Das model

Author:

Shahzad Faisal1,Jamshed Wasim1,Koulali Aimad2,Aissa Abederrahmane3,Safdar Rabia4,Akgül Esra Karatas5,Ibrahim Rabha W.6,Nisar Kottakkaran Sooppy7,Badruddin Irfan Anjum89,Kamangar Sarfaraz9,Saleel C. Ahamed9

Affiliation:

1. Department of Mathematics, Capital University of Science and Technology (CUST) , Islamabad , 44000 , Pakistan

2. Department of Physics, Laboratoire de Physique Théorique Faculté de Technologie, Université de Bejaia , 06000 Bejaia , Algérie

3. Department of Physics, Laboratoire de Physique Quantique de la Matiére et Modélisation Mathématique (LPQ3M), University of Mascara , Mascara , Algeria

4. Department of Mathematics, Lahore College Women University , Lahore , 54000 , Pakistan

5. Department of Mathematics, Art and Science Faculty, Siirt University , TR-56100 Siirt , Turkey

6. Department of Mathematics, IEEE: 94086547 , Kuala Lumpur , 59200 , Malaysia

7. Department of Mathematics, Prince Sattam bin Abdulaziz University , Wadi Aldawaser , 11991 , Saudi Arabia

8. Research Center for Advanced Materials Science (RCAMS), King Khalid University , P.O. Box 9004 , Abha-61413 , Asir , Saudi Arabia

9. Department of Mechanical Engineering, College of Engineering, King Khalid University , Abha 61421 , Saudi Arabia

Abstract

Abstract In this research, we analyze the magnetohydrodynamics heat act of a viscous incompressible Jeffrey nanoliquid, which passed in the neighborhood of a linearly extending foil. As a process, we employ alumina ( Al 2 O 3 ) \left({{\rm{Al}}}_{2}{{\rm{O}}}_{3}) as nanoparticles, assuming that the base fluid is ethylene glycol. In this involvement, we consider the heating by Joule effect and viscous dissipation. We select the passable transformations, motion, and temperature formulas converting into non-linear differential equation arrangement. We solved the system by using a Keller-box method. Then, we provide a graphical description of outcomes according to the selected control parameters. Higher values of dissipation parameter cause a surge in temperature field as well as strengthen width of the heat boundary layer. The velocity, drag coefficient, and heat transfer (HT) rate for the base fluid are comparatively greater than that of the Al 2 O 3 {{\rm{Al}}}_{2}{{\rm{O}}}_{3} –ethylene glycol nanofluid, although the temperature is embellished by the inclusion of nanoparticles. Moreover, we report depreciation in surface drag as well as HT by the virtue of amplification in the Deborah number. The proclaimed outcomes are advantageous to boost the incandescent light bulb’s, cooling and heating processes, filament emitting light, energy generation, multiple heating devices, etc.

Publisher

Walter de Gruyter GmbH

Subject

General Physics and Astronomy

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