DocumentCode
60405
Title
Boundary Layer Flow of Nanofluid Over a Nonlinearly Stretching Sheet With Convective Boundary Condition
Author
Mustafa, M. ; Khan, Junaid A. ; Hayat, T. ; Alsaedi, A.
Author_Institution
Sch. of Natural Sci., Nat. Univ. of Sci. & Technol., Islamabad, Pakistan
Volume
14
Issue
1
fYear
2015
fDate
Jan. 2015
Firstpage
159
Lastpage
168
Abstract
The steady laminar two-dimensional flow of nanofluid due to nonlinearly stretching sheet is discussed. Convective surface boundary condition is employed for a thermal boundary layer problem. The newly proposed boundary condition is considered that requires nanoparticle volume fraction at the wall to be passively rather than actively controlled. Suitable similarity transformations are introduced to non-dimensionalize the governing boundary layer equations. The velocity, temperature and nanoparticle volume fraction distributions are determined by two methods namely 1) optimal homotopy analysis method and 2) fourth-fifthorder Runge-Kutta method based shooting technique. The results obtained by two solutions are in excellent agreement. Behavior of interesting parameters on the flow fields is thoroughly presented and discussed.
Keywords
Runge-Kutta methods; boundary layers; boundary-value problems; convection; laminar flow; nanofluidics; nanoparticles; convective surface boundary condition; fourth-fifth-order Runge-Kutta method-based shooting technique; nanofluid boundary layer flow; nanoparticle volume fraction distributions; optimal homotopy analysis method; similarity transformations; steady laminar two-dimensional flow; stretching sheet; Boundary conditions; Equations; Fluids; Heat transfer; Heating; Mathematical model; Niobium; Convective boundary condition; Nanofluid; Non-linearly stretching sheet; Optimal homotopy analysis method (OHAM); Shooting method; nanofluid; non-linearly stretching sheet; optimal homotopy analysis method (OHAM); shooting method;
fLanguage
English
Journal_Title
Nanotechnology, IEEE Transactions on
Publisher
ieee
ISSN
1536-125X
Type
jour
DOI
10.1109/TNANO.2014.2374732
Filename
6967833
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