Physiological breakdown of Jeffrey six constant nanofluid flow in an endoscope with nonuniform wall
Author(s) -
S. Nadeem,
Aqila Shaheen,
Shafqat Hussain
Publication year - 2015
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4939592
Subject(s) - nanofluid , thermophoresis , mechanics , grashof number , reynolds number , exact solutions in general relativity , homotopy analysis method , physics , magnetohydrodynamic drive , streamlines, streaklines, and pathlines , constant (computer programming) , classical mechanics , magnetohydrodynamics , mathematical analysis , nusselt number , mathematics , heat transfer , magnetic field , turbulence , nonlinear system , quantum mechanics , computer science , programming language
This paper analyse the endoscopic effects of peristaltic nanofluid flow of Jeffrey six-constant fluid model in the presence of magnetohydrodynamics flow. The current problem is modeled in the cylindrical coordinate system and exact solutions are managed (where possible) under low Reynolds number and long wave length approximation. The influence of emerging parameters on temperature and velocity profile are discussed graphically. The velocity equation is solved analytically by utilizing the homotopy perturbation technique strongly, while the exact solutions are computed from temperature equation. The obtained expressions for velocity , concentration and temperature is sketched during graphs and the collision of assorted parameters is evaluate for transform peristaltic waves. The solution depend on thermophoresis number Nt, local nanoparticles Grashof number Gr, and Brownian motion number Nb. The obtained expressions for the velocity, temperature, and nanoparticles concentration profiles are plotted and the impact of various physical parameters are investigated for different peristaltic waves
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