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RKF45-BASED NUMERICAL INVESTIGATION OF RADIATIVE SISKO NANOFLUID FLOW WITH MOTILE MICROORGANISMS

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This study investigates the radiative bioconvective flow of gold-blood and silver-blood Sisko nanofluids with motile microorganisms over a non-linear stretching sheet. The governing equations are transformed into nonlinear ordinary differential equations using similarity transformations and solved numerically using the Runge-Kutta-Fehlberg (RKF45) method with the shooting technique. The effects of nanoparticle volume fraction and thermal radiation on the velocity and temperature distributions are presented through surface plots. The results show that increasing nanoparticle volume fraction decreases the velocity profile due to enhanced viscous resistance, while the temperature distribution increases because of improved thermal conductivity. Furthermore, thermal radiation significantly enhances the temperature field and thermal boundary layer thickness.
Title: RKF45-BASED NUMERICAL INVESTIGATION OF RADIATIVE SISKO NANOFLUID FLOW WITH MOTILE MICROORGANISMS
Description:
This study investigates the radiative bioconvective flow of gold-blood and silver-blood Sisko nanofluids with motile microorganisms over a non-linear stretching sheet.
The governing equations are transformed into nonlinear ordinary differential equations using similarity transformations and solved numerically using the Runge-Kutta-Fehlberg (RKF45) method with the shooting technique.
The effects of nanoparticle volume fraction and thermal radiation on the velocity and temperature distributions are presented through surface plots.
The results show that increasing nanoparticle volume fraction decreases the velocity profile due to enhanced viscous resistance, while the temperature distribution increases because of improved thermal conductivity.
Furthermore, thermal radiation significantly enhances the temperature field and thermal boundary layer thickness.

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