TY - JOUR
T1 - Optimizing the performance of stefan blowing and nanomaterial's for ternary hybrid nanofluid with gyrotactic microbes and convective boundary conditions
AU - Abbas, Munawar
AU - Okasha, Mostafa Mohamed
AU - Akgül, Ali
AU - Abbas, Ansar
AU - Abduvalieva, Dilsora
AU - Al-Mdallal, Qasem
AU - Garalleh, Hakim AL
AU - Jastaneyah, Zuhair
N1 - Publisher Copyright:
© 2025
PY - 2025/9
Y1 - 2025/9
N2 - The effects of Stefan blowing on the Marangoni convective flow of a ternary hybrid nanofluid on a rotating disk with gyrotactic microbes and a non-uniform heat source are examined in this work using numerical modelling. Examined are the mass and heat phenomena in relation to Stefan blowing impacts. We modify the energy equations and momentum to adjust for the effects of Darcy-Forchheimer flow. The ternary hybrid nanofluid having aluminum oxide (Al2O3), titanium dioxide(TiO2), and Cobalt iron oxide (COFe2O4),based fluid water and nanoparticles is used. It is especially helpful for cooling technologies, bio-microsystems, and biomedical equipment where improved heat transfer and microbial control are essential. The ternary hybrid nanofluid guarantees better thermal conductivity, while the incorporation of gyrotactic microorganisms facilitates bioconvection, enhancing fluid mixing and stability. The model is also applicable to industrial operations that require precise control across heat and mass transmission, such as coating, drying, and material synthesis. The subsequent equations are mathematically resolved using the Bvp4c. It has also been found that increasing the Stefan blowing parameter outcomes in a reduce in the thermal profile and heat transmission rate while increasing the skin friction and velocity profile.
AB - The effects of Stefan blowing on the Marangoni convective flow of a ternary hybrid nanofluid on a rotating disk with gyrotactic microbes and a non-uniform heat source are examined in this work using numerical modelling. Examined are the mass and heat phenomena in relation to Stefan blowing impacts. We modify the energy equations and momentum to adjust for the effects of Darcy-Forchheimer flow. The ternary hybrid nanofluid having aluminum oxide (Al2O3), titanium dioxide(TiO2), and Cobalt iron oxide (COFe2O4),based fluid water and nanoparticles is used. It is especially helpful for cooling technologies, bio-microsystems, and biomedical equipment where improved heat transfer and microbial control are essential. The ternary hybrid nanofluid guarantees better thermal conductivity, while the incorporation of gyrotactic microorganisms facilitates bioconvection, enhancing fluid mixing and stability. The model is also applicable to industrial operations that require precise control across heat and mass transmission, such as coating, drying, and material synthesis. The subsequent equations are mathematically resolved using the Bvp4c. It has also been found that increasing the Stefan blowing parameter outcomes in a reduce in the thermal profile and heat transmission rate while increasing the skin friction and velocity profile.
KW - Darcy-Forchheimer flow
KW - Gyrotactic microbes: ternary hybrid nanofluid
KW - Heat generation
KW - Stefan blowing
UR - https://www.scopus.com/pages/publications/105013782329
UR - https://www.scopus.com/pages/publications/105013782329#tab=citedBy
U2 - 10.1016/j.ijft.2025.101375
DO - 10.1016/j.ijft.2025.101375
M3 - Article
AN - SCOPUS:105013782329
SN - 2666-2027
VL - 29
JO - International Journal of Thermofluids
JF - International Journal of Thermofluids
M1 - 101375
ER -