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Numerical Analysis of Heat Transfer and Flow Characteristics of Jeffrey Nanofluid Over Stretched Surfaces With MHD and Slip Effects

  • Mumtaz Khan
  • , Mudassar Imran
  • , M. Riaz Khan
  • , Sid Ahmed Ould Beinane
  • , Ali Alzahrani
  • Jiangsu University
  • Shanghai Jiao Tong University
  • Al Jouf University
  • Umm Al-Qura University

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

This study employs the Jeffrey fluid model to investigate stress relaxation in non-Newtonian fluids, offering a more precise representation than conventional viscous models. It explores the influence of multiple slip conditions and magnetohydrodynamics (MHD) on Jeffrey fluid flow and heat transfer across irregular surfaces. Additionally, the impact of thermal radiation and internal heat sources on heat transfer is examined, essential for a comprehensive understanding of the system's thermal dynamics. Using the Buongiorno model, the diffusion and thermophoresis of nanoparticles within the flow are analyzed. Nonlinear coupled governing equations covering flow dynamics, heat transfer, and nanoparticle transport are transformed into ordinary differential equations (ODEs) through similarity transformations and solved numerically using the Runge–Kutta fourth-order (RK4) method combined with shooting techniques. Results indicate significant effects of physical parameters on temperature, velocity, and mass profiles: a 20% decrease in temperature profiles with an increase in the dimensionless thermal slip coefficient (Formula presented.) from 0.1 to 0.5 and a 15% reduction in velocity profiles from a 0.1 unit increase in the magnetic parameter (Formula presented.). The study also quantifies mass and heat transfer rates to elucidate their impacts. These findings have profound implications for engineering applications involving non-Newtonian and nanofluids in complex geometrical configurations.

Original languageEnglish
Pages (from-to)8641-8653
Number of pages13
JournalMathematical Methods in the Applied Sciences
Volume48
Issue number8
DOIs
StatePublished - 30 May 2025

Keywords

  • Buongiorno model
  • heat transfer analysis
  • irregular surface interaction
  • numerical simulation
  • stress relaxation behavior

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