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<dc:title xml:lang="pl"><![CDATA[Effects of heat source/sink and chemical reaction on MHD maxwell nanofluid flow over a convectively heated exponentially stretching sheet using homotopy analysis method]]></dc:title>
<dc:creator><![CDATA[Sravanthi, C.S.]]></dc:creator>
<dc:creator><![CDATA[Gorla, Rama Subba Reddy]]></dc:creator>
<dc:subject xml:lang="pl"><![CDATA[HAM]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[chemical reaction]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[heat source/sink]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[Maxwell nanofluid]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[porous exponentially stretching sheet]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[convective boundary conditions]]></dc:subject>
<dc:description xml:lang="pl"><![CDATA[The aim of this paper is to study the effects of chemical reaction and heat source/sink on a steady MHD (magnetohydrodynamic) two-dimensional mixed convective boundary layer flow of a Maxwell nanofluid over a porous exponentially stretching sheet in the presence of suction/blowing. Convective boundary conditions of temperature and nanoparticle concentration are employed in the formulation. Similarity transformations are used to convert the governing partial differential equations into non-linear ordinary differential equations.]]></dc:description>
<dc:description xml:lang="pl"><![CDATA[The resulting non-linear system has been solved analytically using an efficient technique, namely: the homotopy analysis method (HAM). Expressions for velocity, temperature and nanoparticle concentration fields are developed in series form. Convergence of the constructed solution is verified. A comparison is made with the available results in the literature and our results are in very good agreement with the known results.]]></dc:description>
<dc:description xml:lang="pl"><![CDATA[The obtained results are presented through graphs for several sets of values of the parameters and salient features of the solutions are analyzed. Numerical values of the local skin-friction, Nusselt number and nanoparticle Sherwood number are computed and analyzed.]]></dc:description>
<dc:publisher><![CDATA[Zielona Góra: Uniwersytet Zielonogórski]]></dc:publisher>
<dc:contributor><![CDATA[Jurczak, Paweł - red.]]></dc:contributor>
<dc:date><![CDATA[2018]]></dc:date>
<dc:type xml:lang="pl"><![CDATA[artykuł]]></dc:type>
<dc:format xml:lang="pl"><![CDATA[application/pdf]]></dc:format>
<dc:identifier><![CDATA[http://www.zbc.uz.zgora.pl/repozytorium/Content/72922/10.1515_ijame-2018-0009.pdf]]></dc:identifier>
<dc:identifier><![CDATA[https://zbc.uz.zgora.pl/repozytorium/dlibra/publication/80055/edition/72922/content]]></dc:identifier>
<dc:identifier><![CDATA[oai:zbc.uz.zgora.pl:72922]]></dc:identifier>
<dc:source xml:lang="pl"><![CDATA[IJAME, volume 23, number 1 (2018)]]></dc:source>
<dc:language><![CDATA[eng]]></dc:language>
<dc:relation><![CDATA[oai:zbc.uz.zgora.pl:publication:80055]]></dc:relation>
<dc:rights xml:lang="pl"><![CDATA[Biblioteka Uniwersytetu Zielonogórskiego]]></dc:rights>
<dc:rights xml:lang="pl"><![CDATA[CC 4.0]]></dc:rights>
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