Investigation of temperature jump, first and second-order velocity slip effects on blood-based ternary nanofluid flow in convergent/divergent channels

Tunahan Gunay*, Duygu Erdem, Ahmet Ziyaettin Sahin

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

1 Citation (Scopus)

Abstract

Purpose: High surface area-to-volume ratios make nanoparticles ideal for cancer heat therapy and targeted medication delivery. Moreover, ternary nanofluids (TNFs) may possess superior thermophysical properties compared to mono- and hybrid nanofluids due to their synergistic effects. In light of this information, the objective of this article is to examine the blood-based TNF flow within convergent/divergent channels under velocity slip and temperature jump. Design/methodology/approach: Leading partial differential equations corresponding to the problem are transformed into a system of nonlinear ordinary differential equations by using similarity variables. The bvp4c code that uses the finite difference method is used to obtain a numerical solution. Findings: The effect of nanoparticles may change depending on the characteristics of flow near the wall. The properties and proportions of the used nanoparticles become important to control the flow. When TNF was used, an increase in the Nusselt number between 4.75% and 6.10% was observed at low Reynolds numbers. At high Reynolds numbers, nanoparticles reduce the Nusselt number and skin friction coefficient values under some special flow conditions. Importantly, the effects of second-order slip on engineering parameters were also investigated. Furthermore, the Nusselt number increases with increasing shape factor. Research limitations/implications: Obtained results of the study can be beneficial in both nature and engineering, especially blood flow in veins. Originality/value: The main innovations of this study are the usage of blood-based TNF and the examination of the effect of shape factor in convergent/divergent channels with second-order velocity slip.

Original languageEnglish
Pages (from-to)648-682
Number of pages35
JournalInternational Journal of Numerical Methods for Heat and Fluid Flow
Volume35
Issue number2
DOIs
Publication statusPublished - 18 Feb 2025

Bibliographical note

Publisher Copyright:
© 2025, Emerald Publishing Limited.

Keywords

  • Blood flow
  • Convergent/divergent channels
  • Magnetic field
  • Shape factor
  • Slip conditions
  • Ternary nanofluid

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