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<dc:title xml:lang="pl"><![CDATA[Hybrid Nanoparticles and liquid metal on MHD flow with slip boundary layer on Permeable arterial tube]]></dc:title>
<dc:creator><![CDATA[Teferi, Binyam]]></dc:creator>
<dc:subject xml:lang="pl"><![CDATA[liquid metal]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[MHD flow]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[nanoparticles]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[magnetic field assisted therapies]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[slip boundary layer]]></dc:subject>
<dc:description xml:lang="pl"><![CDATA[This paper investigates the hybrid effect of Nanoparticles and liquid metal on MHD flow with slip boundary layer on Permeable arterial tube subjected to external electromagnetic fields and slip boundary conditions. Blood based carrier fluid with two different particles have been modelled and are used to describe a physiologically relevance of combined effect of nanofluid and MHD liquid metal.]]></dc:description>
<dc:description xml:lang="pl"><![CDATA[The governing equations, such as momentum, energy, and mass transfer, are derived through boundary layer approximations and similarity transformations, which reduce the system of PDEs to a set of nonlinear ODEs. The equations incorporate major physical effects such as viscous dissipation, Brownian motion, thermophoresis, and chemical reactions. MATLAB`s shooting method in association with a Runge-Kutta solver is used to solve the resulting ODEs.]]></dc:description>
<dc:description xml:lang="pl"><![CDATA[The study examines the influence of various parameters including the Hartmann number, permeability factor, nanoparticle volume fraction, and slip coefficients on axial velocity, temperature, and concentration profiles. The findings show the enhancement of heat transfer and flow stability resulting from the incorporation of hybrid nanoparticles and extensive modification of velocity and temperature distributions by magnetic and slip effects. Such analysis provides valuable inputs to maximize the uses of blood-based nanofluid in biomedical engineering, drug delivery, and magnetic field-assisted therapies.]]></dc:description>
<dc:publisher><![CDATA[Zielona Góra: Uniwersytet Zielonogórski]]></dc:publisher>
<dc:contributor><![CDATA[Jurczak, Paweł - red.]]></dc:contributor>
<dc:date><![CDATA[2026]]></dc:date>
<dc:type xml:lang="pl"><![CDATA[artykuł]]></dc:type>
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<dc:identifier><![CDATA[http://zbc.uz.zgora.pl/Content/97626/Volume31_Issue2_paper_10.pdf]]></dc:identifier>
<dc:identifier><![CDATA[https://zbc.uz.zgora.pl/dlibra/publication/109398/edition/97626/content]]></dc:identifier>
<dc:identifier><![CDATA[oai:zbc.uz.zgora.pl:97626]]></dc:identifier>
<dc:source xml:lang="pl"><![CDATA[IJAME, volume 31, number 2 (2026)]]></dc:source>
<dc:language><![CDATA[eng]]></dc:language>
<dc:relation><![CDATA[oai:zbc.uz.zgora.pl:publication:109398]]></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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