Scientia Iranica

Scientia Iranica

Thermal and mass transport enhancements in Casson ternary hybrid nanofluid flow through an exponentially stretching cylinder: Accounting for Darcy–Forchheimer and Arrhenius effects

Document Type : Research Note

Authors
1 Department of Mathematics, Mangaldai College, Mangaldai, India.
2 Faculty of Engineering, Kuwait College of Science and Technology, Doha District, Kuwait.
3 Department of Mathematics, Cotton University, Guwahati, India.
4 Department of Mathematics, Dudhnoi College, Dudhnoi, Assam, India.
10.24200/sci.2024.63995.8699
Abstract
The primary goal of this study is to investigate the shear-thinning ternary hybrid magnetohydrodynamic nanofluid flow through an exponentially stretched cylinder incorporating Arrhenius energy and varying thermal conductivity. Darcy–Forchheimer impact and a magnetic field are also employed in this flow model. The Casson ternary hybrid nanofluid mechanism is utilized in conjunction with Molybdenum disulfide, silver, and copper nanoparticles. The assortment of Partial Differential Equations (PDEs) in the mathematical framework is simplified to Ordinary Differential Equations (ODEs) by implementing the similarity transformation. MATLAB computing approach Bvp4c is used to obtain numerical solutions for the governing ODEs and plot the graphs for numerous emerging variables. The core findings indicate that the non-Newtonian ternary hybrid nanofluid highlights a more noticeable thermal and mass transport enrichment than the hybrid nanofluid. The thermal transmission rate for the polymer-based trihybrid nanofluid is almost 3% superior in contrast to the hybrid nanofluid. Also, the absolute shear rate for the ternary hybrid nanofluid is nearly 5.02% better than that of the hybrid nanofluid. Additionally, the research significantly advances the prediction of the significance of shear-thinning ternary hybrid nanofluid in thermal transport processes. The findings reflect strong consistency with earlier published studies.
Keywords
Subjects

References
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Volume 32, Issue 18
Transactions on Nanotechnology
November and December 2025 Article ID:8699

  • Receive Date 25 January 2024
  • Revise Date 09 June 2024
  • Accept Date 17 September 2024