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Modeling and analysis of peristalsis of hybrid nanofluid with entropy generation

  • Quaid-I-Azam University
  • Faculty of Sciences, King Abdulaziz University

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

This investigation intends to explore the peristaltic transport of rotating fluid in a channel. The channel is considered symmetric with flexible walls, and porous medium fills the saturated space. In this analysis, hybrid nanofluid consisting of titanium oxides and copper particles is taken. Water is used as the base fluid. MHD and Hall effects are employed in this problem. Formulation of energy equation is based on radiation and non-uniform heat source or sink parameter. Convection conditions are utilized for the boundary. Thermodynamics second relation is employed for entropy generation. Maxwell–Garnetts model of thermal conductivity is employed. Numerical analysis is carried out using NDSolve of Mathematica. The effect of nanoparticle volume fraction, Taylor number, Hartman number, porosity and Hall parameters is analyzed for axial and secondary velocities, temperature, entropy generation and heat transfer rate.This study divulges that an enhancement in rotation parameter caused an increase in secondary velocity. Moreover, as volume fraction of nanoparticles enhances from 0.01 to 0.04, decay is noticed in fluid’s axial and secondary velocities. In this case, entropy also decreases. This study further disclosed that heat transfer rate gradually increases as we exceed the volume fraction of nanoparticles from 0.02 to 0.08. More pores also lead to an enhancement in fluid velocity, temperature and entropy.

Original languageEnglish
Pages (from-to)1231-1249
Number of pages19
JournalJournal of Thermal Analysis and Calorimetry
Volume143
Issue number2
DOIs
StatePublished - Jan 2021
Externally publishedYes

Keywords

  • Compliant walls
  • Convective boundary conditions
  • Entropy generation
  • Hall effects
  • Hybrid nanofluid
  • Joule heating
  • Non-uniform heat source or sink parameter
  • Peristalsis
  • Porous medium
  • Thermal radiation

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