Computational study of double diffusive MHD natural convection flow of non-Newtonian fluid between concentric cylinders

This study investigated double diffusion natural convection of Casson fluids in an asymmetrical cavity under a constant magnetic field. The intricacies of flow and heat/mass transfer were explored computationally using the finite element method. With applications in fields such as geology, oceanogra...

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Bibliographic Details
Published inResults in engineering Vol. 21; p. 101925
Main Authors Khan, Muhammad Salim, Ahmad, Shafee, Shah, Zahir, Alshehri, Ahmed, Vrinceanu, Narcisa, Garalleh, Hakim AL
Format Journal Article
LanguageEnglish
Published Elsevier B.V 01.03.2024
Elsevier
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Summary:This study investigated double diffusion natural convection of Casson fluids in an asymmetrical cavity under a constant magnetic field. The intricacies of flow and heat/mass transfer were explored computationally using the finite element method. With applications in fields such as geology, oceanography, metallurgy, and astrophysics, it investigates the impact of key parameters like the Rayleigh number, Casson parameter, buoyancy ratio, Hartmann number, and Darcy number on entropy generation, fluid velocity, and temperature/concentration gradients. The findings illustrate that increasing the Rayleigh number enhances convection and entropy, while a higher Casson parameter leads to reduced mixing due to the fluid's more solid-like behavior. Enhancing the buoyancy ratio improves heat and mass transfer, and a greater Darcy number boosts convection efficiency. Additionally, a higher Hartmann number reduces fluid friction but increases mass diffusion and magnetic disorder, subtly improving thermodynamic efficiency. This research offers valuable insights for optimizing heat transfer and energy efficiency in high-temperature industrial processes, contributing to advancements in sustainability and energy utilization. •Double-diffusive natural convection in an asymmetrical cavity filled with Casson fluid is studied.•The relationship between magnetic fields and entropy accumulation and their impacts are examined.•The study provides insights into the impact of the Casson parameter on local Nusselt and Sherwood numbers.•The results, providing essential perspectives for fluid dynamics, heat transport, and mass transfer.
ISSN:2590-1230
2590-1230
DOI:10.1016/j.rineng.2024.101925