Skip to main content

Research Repository

Advanced Search

Application of differential transform method to unsteady free convective heat transfer of a couple stress fluid over a stretching sheet

Kumar, M; Reddy, GJ; Kumar, NN; Beg, OA

Application of differential transform method to unsteady free convective heat transfer of a couple stress fluid over a stretching sheet Thumbnail


Authors

M Kumar

GJ Reddy

NN Kumar



Abstract

In the present article, the transient rheological boundary layer flow over a stretching sheet
with heat transfer is investigated, a topic of relevance to non-Newtonian thermal materials
processing. Stokes couple stress model is deployed to simulate non-Newtonian characteristics. Similarity transformations are utilized to convert the governing partial differential equations into nonlinear ordinary differential equations with appropriate wall and free stream boundary conditions. The non-dimensional boundary value problem emerging is shown to be controlled by a number of key thermophysical and rheological parameters, namely the rheological couple stress parameter, unsteadiness parameter, Prandtl number (Pr), buoyancy parameter. The semi-analytical Differential Transform Method (DTM) is used to solve the reduced nonlinear coupled ordinary differential boundary value problem. A numerical solution is also obtained via the MATLAB built in solver ‘bvp4c’ to validate the results. Further validation with published results from the literature is included. Fluid velocity is enhanced with increasing couple stress parameter whereas it is decreased
with unsteadiness parameter. Temperature is elevated with couple stress parameter whereas it is initially reduced with unsteadiness parameter. The flow is accelerated with increasing positive buoyancy parameter (for heating of the fluid) whereas it is decelerated with increasing negative buoyancy parameter (cooling of the fluid). Temperature and thermal boundary layer thickness are boosted with increasing positive values of buoyancy parameter. Increasing Prandtl number decelerates the flow, reduces temperatures, increases momentum boundary layer thickness and decreases thermal boundary layer thickness. Excellent accuracy is achieved with the DTM approach.

Citation

Kumar, M., Reddy, G., Kumar, N., & Beg, O. (2018). Application of differential transform method to unsteady free convective heat transfer of a couple stress fluid over a stretching sheet. Heat Transfer - Asian Research, 48(2), 582-600. https://doi.org/10.1002/htj.21396

Journal Article Type Article
Acceptance Date Oct 5, 2018
Online Publication Date Nov 13, 2018
Publication Date Nov 13, 2018
Deposit Date Oct 8, 2018
Publicly Available Date Nov 13, 2019
Journal Heat Transfer-Asian Research
Print ISSN 1099-2871
Electronic ISSN 1523-1496
Publisher Wiley
Volume 48
Issue 2
Pages 582-600
DOI https://doi.org/10.1002/htj.21396
Publisher URL https://doi.org/10.1002/htj.21396
Related Public URLs https://onlinelibrary.wiley.com/journal/15231496
Additional Information Projects : Computational Non-Newtonian Polymer Coating Simulation

Files

HEAT TRANSFER ASIAN RESEARCH DTM COUPLE STRESS polymer coating flow OCT 5th 2018 ACCEPTED.pdf (621 Kb)
PDF




You might also like



Downloadable Citations