Unsteady nano-bioconvective channel flow with effect of nth order chemical reaction

  • Md Faisal Md Basir
  • , Kohilavani Naganthran
  • , Ehtsham Azhar
  • , Zaffar Mehmood
  • , Swati Mukhopadhyay
  • , Roslinda Nazar
  • , Anuar Jamaludin
  • , Dumitru Baleanu
  • , Kottakkaran Sooppy Nisar
  • , Ilyas Khan

Research output: Contribution to journalArticlepeer-review

13 Scopus citations

Abstract

Nanofluid bioconvective channel flow is an essential aspect of the recent healthcare industry applications, such as biomedical processing systems. Thus, the present work examined the influence of nth order chemical reaction in an unsteady nanofluid bioconvective channel flow in a horizontal microchannel with expanding/contracting walls. The suitable form of the similarity transformation is exercised to transform the governing boundary layer equations into a more straightforward form of system to ease the computation process. The Runge-Kutta method of fifth-order integration technique solved the reduced boundary layer system and generated the numerical results as the governing parameters vary. It is found that the destructive second-order chemical reaction enhances the mass transfer rate at the lower wall but deteriorates the mass transfer rate at the upper wall. The upper channel wall has a better heat transfer rate than the lower wall when the Reynolds number increases.

Original languageEnglish
Pages (from-to)1011-1024
Number of pages14
JournalOpen Physics
Volume18
Issue number1
DOIs
StatePublished - 1 Jan 2021

Keywords

  • bioconvection
  • boundary layer
  • channel flow
  • chemical reaction
  • nanofluid

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