PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 25, 2026Proceedings of the Institution of Mechanical Engineers Part N Journal of Nanomaterials Nanoengineering and Nanosystems6 citations

Carreau hybrid nanofluid flow over a moving wedge with convective heating and zero-flux reactive nanoparticle boundary conditions under MHD and radiative effects

View Full Paper
MKMumtaz KhanMAMuhammad Shoaib AnwarTMTaseer Muhammad

Key Points

  • To investigate the effects of radiative magnetohydrodynamic flow of Carreau hybrid nanofluids over a moving wedge.
  • Numerical modeling of momentum, heat, and mass transfer
  • Incorporation of chemical reactions at the wedge surface
  • Application of convective boundary conditions
  • Shooting method with RKF-45 integrator for solving nonlinear equations
  • Parametric analysis of magnetic damping and viscosity effects
  • Magnetic fields enhance near-wall velocity for low magnetic numbers
  • Higher Weissenberg number and Carreau index reduce momentum due to elastic effects
  • Temperature increases with radiation and Joule heating
  • Chemical reaction rates depend on activation energy
  • Results provide insights for applications in heat management and catalytic processes

Abstract

This study presents a numerical investigation of radiative magnetohydrodynamic (MHD) flow of a Carreau hybrid nanofluid over a moving wedge, incorporating coupled momentum, heat, and mass transfer with homogeneous–heterogeneous chemical reactions. The hybrid suspension consists of multi-walled carbon nanotubes (MWCNT) and aluminum oxide ( Al 2 O 3 ) dispersed in ethylene glycol, and its shear-dependent behavior is modeled through the Carreau rheological framework to capture elasticity-driven effects. The energy transport equation accounts for Rosseland thermal radiation, Joule heating induced by the applied magnetic field, and internal heat generation/absorption representing endothermic and exothermic processes. A convective boundary condition models finite surface heating, while zero-nanoparticle-flux conditions ensure physically realistic coupling of Brownian motion and thermophoresis. Reactive transport is described through first-order homogeneous reactions in the bulk and heterogeneous catalytic reactions at the wedge surface, with Arrhenius activation energy governing reaction sensitivity. The governing similarity-reduced system of nonlinear ordinary differential equations is solved using the shooting method with a Runge–Kutta Fehlberg (RKF-45) integrator. Validation through benchmark comparisons confirms the accuracy of the numerical strategy. Parametric analysis highlights the interplay between magnetic damping, shear-dependent viscosity, hybrid nanoparticle loading, radiative transport, and surface reactivity. Results reveal that the magnetic field enhances near-wall velocity for γ 1 , whereas higher Weissenberg number and Carreau index suppress momentum due to elastic and thickening effects. Temperature rises with increasing radiation, Joule heating, and exothermic heat sources, while activation energy and reaction rate significantly influence species concentrations. The findings offer a unified understanding of electrically conducting Carreau hybrid nanofluids, providing valuable insights for heat management, catalytic processing, and advanced thermal-fluid engineering applications.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Khan et al. (2026) studied this question.

synapsesocial.com/papers/69c37b41b34aaaeb1a67d8b8https://doi.org/10.1177/23977914261429832
Ask AI
Helpful
Bookmark
Share
View Full Paper