4.7 Article

Nanoparticle Aggregation and Thermophoretic Particle Deposition Process in the Flow of Micropolar Nanofluid over a Stretching Sheet

Journal

NANOMATERIALS
Volume 12, Issue 6, Pages -

Publisher

MDPI
DOI: 10.3390/nano12060977

Keywords

micropolar nanofluid; nanoparticle aggregation; heat source; sink; thermophoretic particle deposition; bioconvection

Funding

  1. Research Center for Advanced Materials Science (RCAMS) at King Khalid University, Saudi Arabia [RCAMS/KKU/018-20]
  2. National Natural Science Foundation of China [12071408]
  3. Natural Science Foundation of Jiangsu 419 Province [BK20201149]
  4. Natural Science Foundation of Anhui Province [2008085MA11]

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The purpose of this research is to investigate the consequence of thermophoretic particle deposition (TPD) on the movement of a TiO2/water-based micropolar nanoliquid surface in the existence of a porous medium, a heat source/sink, and bioconvection. Through experimental measurements, it was found that improved values of the porous constraint will decline the velocity profile, while improvement in heat source/sink parameter directly affects the temperature profile. Additionally, changes in thermophoretic parameter, bioconvection Peclet number, and Lewis number also have an impact on the concentration and bioconvection profiles.
The purpose of this research is to investigate the consequence of thermophoretic particle deposition (TPD) on the movement of a TiO2/water-based micropolar nanoliquid surface in the existence of a porous medium, a heat source/sink, and bioconvection. Movement, temperature, and mass transfer measurements are also performed in the attendance and nonappearance of nanoparticle aggregation. The nonlinear partial differential equations are transformed into a system of ordinary differential equations using appropriate similarity factors, and numerical research is carried out using the Runge-Kutta-Felhberg 4th/5th order and shooting technique. The obtained results show that improved values of the porous constraint will decline the velocity profile. Improvement in heat source/sink parameter directly affects the temperature profile. Thermophoretic parameter, bioconvection Peclet number, and Lewis number decrease the concentration and bioconvection profiles. Increases in the heat source/sink constraint and solid volume fraction will advance the rate of thermal dispersion. Nanoparticle with aggregation exhibits less impact in case of velocity profile, but shows a greater impact on temperature, concentration, and bioconvection profiles.

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