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Significance of variability in magnetic field strength and heat source on the radiative-convective motion of sodium alginate-based nanofluid within a Darcy-Brinkman porous structure bounded vertically by an irregular slender surface

dc.contributor.authorBaleanu, Dumitru
dc.contributor.authorWakif, A.
dc.contributor.authorThumma, Thirupathi
dc.contributor.authorKhan, Umair
dc.contributor.authorBaleanu, Dumitru
dc.contributor.authorRasool, Ghulam
dc.contributor.authorID56389tr_TR
dc.date.accessioned2022-12-16T13:24:52Z
dc.date.available2022-12-16T13:24:52Z
dc.date.issued2021
dc.departmentÇankaya Üniversitesi, Fen - Edebiyat Fakültesi, Matematik Bölümüen_US
dc.description.abstractThe dynamical behavior and thermal transportation feature of an enhanced MHD convective Casson bi-phasic flows of sodium alginate-based nanofluids are examined numerically in a Darcy-Brinkman medium bounded by a vertical elongating slender concave-shaped surface. The mathematical framework of the present flow model is developed properly by adopting the single-phase approach, whose solid phase is selected to be metallic or metallic oxide nanoparticles. Besides, the influence of thermal radiation is taken into consideration in the presence of an internal variable heat generation. A set of feasible similarity transformations are applied for the conversion of the governing PDEs into a nonlinear differential structure of coupled ODEs. An advanced differential quadrature algorithm is employed herein to acquire accurate numerical solutions for momentum and energy equations. For validating the obtained numerical findings, extensive comparison tests are carried out in this sense. The results of the current exploration show that the wall heat transfer rate and the frictional effect are strengthened with the loading of nanoparticles and weakened with the mounting values of the heat source parameters. However, the magnetic parameter exhibits a reverse trend concerning those engineering quantities. Statistically, the slope linear regression method (SLRM) proves that the aurum-sodium alginate nanofluid presents the higher frictional factor, whereas the copper oxide-sodium alginate is the more thermal performant nanofluid.en_US
dc.description.publishedMonth12
dc.identifier.citationAlghamdi, Metib...at all (2021). "Significance of variability in magnetic field strength and heat source on the radiative-convective motion of sodium alginate-based nanofluid within a Darcy-Brinkman porous structure bounded vertically by an irregular slender surface", Case Studies in Thermal Engineering, Vol. 28.en_US
dc.identifier.doi10.1016/j.csite.2021.101428
dc.identifier.issn2214-157X
dc.identifier.urihttps://hdl.handle.net/20.500.12416/6011
dc.identifier.volume28en_US
dc.language.isoenen_US
dc.relation.ispartofCase Studies in Thermal Engineeringen_US
dc.rightsinfo:eu-repo/semantics/closedAccessen_US
dc.subjectCasson Rheological Modelen_US
dc.subjectIrregular Geometryen_US
dc.subjectMHD Mixed Convectionen_US
dc.subjectPorous Mediumen_US
dc.subjectSodium Alginate-Based Nanofluiden_US
dc.titleSignificance of variability in magnetic field strength and heat source on the radiative-convective motion of sodium alginate-based nanofluid within a Darcy-Brinkman porous structure bounded vertically by an irregular slender surfacetr_TR
dc.titleSignificance of Variability in Magnetic Field Strength and Heat Source on the Radiative-Convective Motion of Sodium Alginate-Based Nanofluid Within a Darcy-Brinkman Porous Structure Bounded Vertically by an Irregular Slender Surfaceen_US
dc.typeArticleen_US
dspace.entity.typePublication
relation.isAuthorOfPublicationf4fffe56-21da-4879-94f9-c55e12e4ff62
relation.isAuthorOfPublication.latestForDiscoveryf4fffe56-21da-4879-94f9-c55e12e4ff62

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