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Non-similar modeling and numerical simulations of microploar hybrid nanofluid adjacent to isothermal sphere

A. AbbasiDepartment of Mathematics, University of Azad Jammu and Kashmir , Muzaffarabad 13100 , PakistanW. FarooqDepartment of Mathematics, University of Azad Jammu and Kashmir , Muzaffarabad 13100 , PakistanM. GulDepartment of Mathematics, University of Azad Jammu and Kashmir , Muzaffarabad 13100 , PakistanManish GuptaDivision of Research and Technology, Lovely Professional University , Phagwara , IndiaDilsora AbduvalievaDoctor of Philosophy in Pedagogical Sciences, Tashkent State Pedagogical University , Bunyodkor Avenue, 27 , Tashkent , 100070 , UzbekistanFarwa AsmatSchool of Mathematical Sciences, Peking University , Beijing 100871 , P.R. ChinaSalman A. AlQahtaniComputer Engineering Department, College of Computer and Information Sciences, King Saud University , Riyadh , Saudi Arabia
Open Physicsjournal2023en
ABI

Аннотация

Abstract In today’s era of rapid technological development, there is an increasing requirement for high-functioning investiture solutions, working liquids and materials that can satisfy the benchmarks of energy efficacy. Specifically, within the domain of heat transference-based industries, an essential challenge is to fabricate a cooling medium that can effectually cope with dissipation of substantial heat flux engendered by high-energy utilizations. At present, nanoliquids are extensively deliberated as some of the most promising aspirants for such effectual cooling mediums. The current investigation features hybrid nanoliquid flow adjacent to magnetized non-isothermal incompressible sphere. Rheological expressions representing micropolar liquid are accounted for flow formulation. The rheological analysis is developed using the boundary-layer concept. Buoyancy impact is accounted for heat transference analysis. Nanoparticles with distinct shapes are considered. The developed nonlinear systems are computed numerically and non-similar simulations are performed.

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