Abstract:
This paper concerns with a steady MHD boundary layer flow of an electrically conducting nanofluid over a vertical permeable stretching surface with variable stream conditions. The transport model includes the effect of Brownian motion with thermophoresis in presence of chemical reaction and thermal radiation. The group theoretic method is used to find the symmetries of the governing partial differential equations. The reduced equations are solved numerically by employing a fourth order Runge–Kutta method and Shooting techniques to predict the heat and mass transfer characteristics of the nanofluid flow. Numerical results are presented through graphs and tables for several sets of values of the involved parameters of the problem and discussed in details from the physical point of view.
Keywords:
nanofluid, Lie group transformation, magnetic field, chemical reaction, Brownian motion, thermal radiation.
The first author wishes to express his cordial thanks to UGC, Govt. of INDIA for providing financial support through the Minor Research Project (PSW-106/14-15) to undertake this research work. Also the authors wish to express their cordial thanks to reviewers for valuable comments to improve the presentation of this article.
Received: 26.11.2016 Accepted: 06.02.2017
Bibliographic databases:
Document Type:
Article
UDC:517.1
Language: English
Citation:
Kalidas Das, Amit Sarkar, Prabir Kumar Kundu, “Nanofluid flow over a stretching surface in presence of chemical reaction and thermal radiation: an application of Lie group transformation”, J. Sib. Fed. Univ. Math. Phys., 10:2 (2017), 146–157
\Bibitem{DasSarKun17}
\by Kalidas~Das, Amit~Sarkar, Prabir~Kumar~Kundu
\paper Nanofluid flow over a stretching surface in presence of chemical reaction and thermal radiation: an application of Lie group transformation
\jour J. Sib. Fed. Univ. Math. Phys.
\yr 2017
\vol 10
\issue 2
\pages 146--157
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\crossref{https://doi.org/10.17516/1997-1397-2017-10-2-146-157}
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Linking options:
https://www.mathnet.ru/eng/jsfu535
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This publication is cited in the following 2 articles: