Evaluation of heat transfer for unsteady thin film flow of mono and hybrid nanomaterials with five different shape features

  • K. Sreelakshmi
  • , G. Leena Rosalind Mary
  • , Umar F. Alqsair
  • , Ismail M.M. Elsemary
  • , Rajab Alsayegh
  • , Sami Ullah Khan
  • , Lioua Kolsi

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

Recent advancement in nanotechnology brings the idea of hybrid nanomaterials which offer distinguish applications in thermal reservoirs, cooling systems, energy applications, chemical engineering, vehicle engines etc. The understating of shape features for hybrid nanomaterials is quite essential as such consequences highly influenced various thermal properties like viscosity, thermal conductivity, optical properties, stability etc. The objective of current work is to examine heat transfer analysis due to thin film unsteady flow of hybrid nanofluid. The properties of hybrid nanofluid are justified for entertaining the copper (Cu), aluminium oxide (Al2O3) nanoparticles with water (H2O) base fluid. Additionally, applications of viscous dissipation, heat source and nonlinear radiated effects are attributed to current flow problem. The thermal properties of nanoparticles are examined in presence of five shape features consisting of blades, platelets, cylinders, bricks and spheres. Numerical simulations of problem are performed via Runge-Kutta-Fehlberg method. Comparative heat transfer is performed for mono nanofluid (Cu/H2O) and hybrid nanofluid (Cu−Al2O3)//H2O. It has been observed that heat transfer enhancement is more stable for cylindrical particles as compared to spherical nanoparticles. The skin friction enhances due to Hartmann number for both mono nanofluid (MNF) and hybrid nanofluid (HNF). Current results claim applications in coating thin films, lubrication systems, improving the thermal efficiency in thermal and industrial systems, heat exchangers, cooling systems etc.

Original languageEnglish
Article number105168
JournalCase Studies in Thermal Engineering
Volume62
DOIs
StatePublished - Oct 2024

Keywords

  • Hybrid nanofluid
  • Nonlinear radiated effects
  • Parallel plates
  • Runge-Kutta-fehlberg method
  • Shape features
  • Viscous dissipation

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