Nonsimilar convective thermal transport analysis of EMHD stagnation Casson nanofluid flow subjected to particle shape factor and thermal radiations

Nanofluids are quite popular among researchers due to their high heat transfer rates, which have significant industrial applications. The primary objective of this article is to give a novel analysis of the two-dimensional electromagnetohydrodynamic (EMHD) stagnation point flow of Casson nanofluid w...

Full description

Bibliographic Details
Published in:International communications in heat and mass transfer Vol. 137. P. 106230 (1-10)
Main Author: Hussain, Muzamil
Other Authors: Farooq, Umer, Sheremet, Mikhail A.
Format: Article
Language:English
Subjects:
Online Access:http://vital.lib.tsu.ru/vital/access/manager/Repository/koha:000999478
Перейти в каталог НБ ТГУ
LEADER 04005nab a2200349 c 4500
001 koha000999478
005 20230406161413.0
007 cr |
008 230403|2022 enk s a eng d
024 7 |a 10.1016/j.icheatmasstransfer.2022.106230  |2 doi 
035 |a koha000999478 
040 |a RU-ToGU  |b rus  |c RU-ToGU 
100 1 |a Hussain, Muzamil  |9 878751 
245 1 0 |a Nonsimilar convective thermal transport analysis of EMHD stagnation Casson nanofluid flow subjected to particle shape factor and thermal radiations  |c M. Hussain, U. Farooq, M. A. Sheremet 
336 |a Текст 
337 |a электронный 
504 |a Библиогр.: 45 назв. 
520 3 |a Nanofluids are quite popular among researchers due to their high heat transfer rates, which have significant industrial applications. The primary objective of this article is to give a novel analysis of the two-dimensional electromagnetohydrodynamic (EMHD) stagnation point flow of Casson nanofluid with heat source/sink and thermal radiations. Nanoparticles such as Iron Oxide (Fe2O3) and Gold (Au)) are used with blood as base fluid. Nanomaterials are classified into several categories based on their shapes, properties, and sizes. The effects of shape factors namely sphere, tetrahedron, hexahedron, column, and lamina with various parameters are also included in this analysis. This study presents the implementation of single-phase (Tiwari-Das) model for Casson nanofluid by considering blood as base fluid. Instead of the Buongiorno model, which largely depends on Brownian and thermophoresis diffusion effects for heat transfer analysis. The single-phase model incorporates the volume fraction of nanoparticles for the evaluation of heat transfer. Relying on the Tiwari-Das model for nanofluids, a mathematical framework is constructed. To simplify the governing flow equations, proper nonsimilar conversions are used to appropriately transform the given partial differential system to dimensionless form. The rehabilitated mathematical model is simulated by employing local non-similarity technique via bvp4c. The consequences of sundry parameters against velocity and temperature profiles of Casson nanofluid are presented pictorially. The velocity profile is observed to decrease with increasing Casson fluid parameter values while enhancement is noticed with rising electric field parameter values. The temperature profile improves with increasing magnetic number, nanoparticle concentration, Eckert number, Biot number, and heat generation parameter, whereas it degrades with increasing electric field parameter. Temperature profile is maximum for lamina shaped particle while it has minimum values for sphere shape nanoparticles. The Nusselt number and skin-friction coefficients are also introduced as tools for determining the physical characteristics of Casson nanofluid flow. The obtained results of this model meticulously match those existents in the literature for various limiting constraints. The authors discussed the local non-similarity technique for simulating the dimensionless non-similar structure. To the best of authors observations, no such study for the considered flow model is yet published in literature. 
653 |a Кэссона жидкости 
653 |a тепловое излучение 
653 |a форм-факторы наночастиц 
653 |a конвективный теплообмен 
655 4 |a статьи в журналах  |9 882080 
700 1 |a Farooq, Umer  |9 882081 
700 1 |a Sheremet, Mikhail A.  |9 89131 
773 0 |t International communications in heat and mass transfer  |d 2022  |g Vol. 137. P. 106230 (1-10)  |x 0735-1933 
852 4 |a RU-ToGU 
856 4 |u http://vital.lib.tsu.ru/vital/access/manager/Repository/koha:000999478 
856 |y Перейти в каталог НБ ТГУ  |u https://koha.lib.tsu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=999478 
908 |a статья 
039 |b 100 
999 |c 999478  |d 999478