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Joule Heating and Viscosity-Ratio Effects on Dissipative Ternary Nanofluid Flow over a Permeable Surface

  • Sudha Mahanthesh Sachhin
  • , Kenchappa Nagegowda
  • , Ulavathi Shettar Mahabaleshwar
  • , Laura Milena Pérez
  • , Giulio Lorenzini
  • Davangere University
  • University of Parma

Research output: Contribution to journalArticlepeer-review

Abstract

This study examines the effects of viscous dissipation, Joule heating, and coupled heat transfer on dissipative ternary nanofluid flow over a permeable surface. The ternary nanofluid is composed of Al2O3, SiO2, and TiO2 nanoparticles dispersed in water as the base fluid. By introducing suitable similarity transformations, the governing partial differential equations are reduced to a coupled system of ordinary differential equations. The thermal field is analyzed for both prescribed surface temperature (PST) and prescribed heat flux (PHF) conditions, while a temperature-dependent heat source/sink term is incorporated to maintain energy balance within the fluid domain. The resulting energy equation is treated analytically with the aid of Kummer’s function and Laguerre polynomial techniques. The effects of the main controlling parameters, including the inverse Darcy number, magnetic parameter, viscosity-ratio parameter, and radiation parameter, are discussed with the support of graphical results. It is found that an increase in the magnetic parameter reduces the velocity by about 12% and raises the temperature by nearly 18%. These findings provide useful guidance for the design and thermal optimization of engineering systems involving complex nanofluids in porous media, including polymer extrusion and automotive cooling applications.

Original languageEnglish
Pages (from-to)57-80
Number of pages24
JournalInternational Journal of Computational Methods and Experimental Measurements
Volume14
Issue number1
DOIs
StatePublished - Mar 2026

Keywords

  • Inclined magnetic field
  • Joule heating
  • Porous medium
  • Thermal radiation
  • Viscosity ratio
  • Viscous dissipation

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