Effects of Temperature-Dependent Conductivity and Magnetic Field on the Radiated Carreau Nanofluid Flow and Entropy Generation

Sami Ullah Khan, Imen Safra, Kaouther Ghachem, Hind Albalawi, Taher Labidi, Lioua Kolsi

Research output: Contribution to journalArticlepeer-review

3 Scopus citations

Abstract

This investigation is related to this study of entropy generation during Carreau nanofluid flow under variable thermal conductivity conditions. The heat and mass transfer phenomena are observed in the presence of thermal radiation and activation energy. The flow is induced by a porous stretching surface. Appropriate variables are used in order to simplify the problem into dimensionless form. The numerical simulations are performed by using the shooting technique. The physical aspects of the problem in view of different flow parameters are reported. It is observed that consideration of variable fluid thermal conductivity enhances heat transfer. An enhancement in heat and mass transfer phenomena is observed with increasing the Weissenberg number. Moreover, entropy generation increases with Weissenberg and Brinkman numbers. Current results present applications in thermal processes, heat exchangers, energy systems, combustion and engine design, chemical processes, refrigeration systems, etc.

Original languageEnglish
Article number1847
JournalSymmetry
Volume15
Issue number10
DOIs
StatePublished - Oct 2023

Keywords

  • Carreau nanofluid
  • activation energy
  • entropy generation
  • porous surface
  • variable thermal conductivity

Fingerprint

Dive into the research topics of 'Effects of Temperature-Dependent Conductivity and Magnetic Field on the Radiated Carreau Nanofluid Flow and Entropy Generation'. Together they form a unique fingerprint.

Cite this