Forced convection of non-darcy flow of ethylene glycol conveying copper(II) oxide and titanium dioxide nanoparticles subject to lorentz force on wedges: Non-newtonian casson model

The topic of two-dimensional steady laminar MHD boundary layer flow across a wedge with non-Newtonian hybrid nanoliquid (CuO-TiO 2 /C 2 H 6 O 2 ) with viscous dissipation and radiation is taken into consideration. The controlling partial differential equations have been converted to non-linear highe...

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Published inFrontiers in chemistry Vol. 10; p. 1010591
Main Authors Naik, Parvaiz Ahmad, Indumathi, N., Ganga, B., Charles, S., Hakeem, A. K. Abdul, Iqbal, Zahoor, Tag-ElDin, ElSayed, Zu, Jian
Format Journal Article
LanguageEnglish
Published Frontiers Media S.A 26.09.2022
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Summary:The topic of two-dimensional steady laminar MHD boundary layer flow across a wedge with non-Newtonian hybrid nanoliquid (CuO-TiO 2 /C 2 H 6 O 2 ) with viscous dissipation and radiation is taken into consideration. The controlling partial differential equations have been converted to non-linear higher-order ordinary differential equations using the appropriate similarity transformations. It is demonstrated that a number of thermo-physical characteristics govern the transmuted model. The issue is then mathematically resolved. When the method’s accuracy is compared to results that have already been published, an excellent agreement is found. While the thermal distribution increases with an increase in Eckert number, radiation and porosity parameters, the velocity distribution decreases as porosity increases.
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Reviewed by: Ali Chamkha, Kuwait College of Science and Technology, Kuwait
Edited by: Sam P. De Visser, The University of Manchester, United Kingdom
Yassine Ezaier, University Hassan II. Casablanca, Morocco, Morocco
This article was submitted to Theoretical and Computational Chemistry, a section of the journal Frontiers in Chemistry
ISSN:2296-2646
2296-2646
DOI:10.3389/fchem.2022.1010591