4.7 Article

Mixed convection stagnation point flow of the blood based hybrid nanofluid around a rotating sphere

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SCIENTIFIC REPORTS
卷 11, 期 1, 页码 -

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NATURE RESEARCH
DOI: 10.1038/s41598-021-86868-x

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  1. Center of Excellence in Theoretical and Computational Science (TaCS-CoE), KMUTT
  2. Thailand Science Research and Innovation (TSRI) Basic Research Fund: Fiscal year 2021 [64A306000005]

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In this study, the effects of a magnetic field on the flow characteristics of couple stress hybrid nanofluid around a rotating sphere were investigated, showing that an increase in the magnetic factor slows down flow velocity and improves temperature profile, while an increase in the Brownian motion factor can significantly enhance concentration field. Additionally, increasing the nanoparticle volume fraction enhances thermal conductivity in hybrid nanofluid, with potential applications in heat transfer.
In this new world of fluid technologies, hybrid nanofluid has become a productive subject of research among scientists for its potential thermal features and abilities, which provides an excellent result as compared to nanofluids in growing the rate of heat transport. Our purpose here is to introduce the substantial influences of magnetic field on 2D, time-dependent and stagnation point inviscid flow of couple stress hybrid nanofluid around a rotating sphere with base fluid is pure blood, TiO 2 and Ag as the nanoparticles. To translate the governing system of partial differential equations and the boundary conditions relevant for computation, some suitable transformations are implemented. To obtain the analytical estimations for the corresponding system of differential expression, the innovative Optimal Homotopy Analysis Method is used. The characteristics of hybrid nanofluid flow patterns, including temperature, velocity and concentration profiles are simulated and analyzed in detail due to the variation in the evolving variables. Detailed research is also performed to investigate the influences of relevant constraints on the rates, momentum and heat transport for both TiO 2 + Ag + Blood and TiO 2 + Blood. One of the many outcomes of this analysis, it is observed that increasing the magnetic factor will decelerate the hybrid nanofluid flow velocity and improve the temperature profile. It may also be demonstrated that by increasing the Brownian motion factor, significant improvement can be made in the concentration field of hybrid nanofluid. The increase in the nanoparticle volume fraction from 0.01 to 0.02 in the case of the hybrid nanofluid enhances the thermal conductivity from 5.8 to 11.947% and for the same value of the nanoparticle volume fraction in the case of nanofluid enhance the thermal conductivity from 2.576 to 5.197%.

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