TY - JOUR
T1 - Influence of motile gyrotactic microorganisms over cylindrical geometry attached Cross fluid flow mathematical model
AU - Darvesh, Adil
AU - Sánchez-Chero, Manuel
AU - Sánchez-Chero, José Antonio
AU - Hernández, Víctor Daniel Hijar
AU - Guachilema, Milton Doroteo Cayambe
AU - Reyna-Gonzalez, Julissa Elizabeth
N1 - Publisher Copyright:
© 2023 Wiley Periodicals LLC.
PY - 2023/9
Y1 - 2023/9
N2 - The aim of this study is to examine the impact of motile gyrotactic microorganisms on three-dimensional (3D) cylindrical geometry attached to a Cross-fluid flow mathematical model. The motion of the microorganisms is assumed to be governed by gyrotaxis, which is the tendency of the organisms to orient and swim perpendicular to fluid flow gradients. The study will incorporate the effects of the Cross fluid flow model with infinite shear rate viscosity, 3D cylinder geometry, and microorganism behavior on the resulting distribution and concentration of the organisms. For the inspection of the velocity profile of the Cross nanofluid, the inclined magnetic field is scrutinized. The temperature of Cross nanofluid and its concentration is also studied with several facts. Mass flux and heat flux values for motile microorganisms and nanoparticles are calculated through statistical graphs. Brownian motion parameter gives a lower concentration of nanoparticles, about 81.19% and 77.53% reduction is found in the concentration of motile microorganisms. These results will provide insights into the behavior of these microorganisms in natural and engineered environments, as well as their potential applications in fields such as biotechnology, environmental science, and medicine.
AB - The aim of this study is to examine the impact of motile gyrotactic microorganisms on three-dimensional (3D) cylindrical geometry attached to a Cross-fluid flow mathematical model. The motion of the microorganisms is assumed to be governed by gyrotaxis, which is the tendency of the organisms to orient and swim perpendicular to fluid flow gradients. The study will incorporate the effects of the Cross fluid flow model with infinite shear rate viscosity, 3D cylinder geometry, and microorganism behavior on the resulting distribution and concentration of the organisms. For the inspection of the velocity profile of the Cross nanofluid, the inclined magnetic field is scrutinized. The temperature of Cross nanofluid and its concentration is also studied with several facts. Mass flux and heat flux values for motile microorganisms and nanoparticles are calculated through statistical graphs. Brownian motion parameter gives a lower concentration of nanoparticles, about 81.19% and 77.53% reduction is found in the concentration of motile microorganisms. These results will provide insights into the behavior of these microorganisms in natural and engineered environments, as well as their potential applications in fields such as biotechnology, environmental science, and medicine.
KW - convection
KW - fluid dynamics
KW - heat convection
KW - heat transfer enhancement
KW - non-Newtonian fluids
KW - shear flow
UR - https://www.scopus.com/pages/publications/85158062603
U2 - 10.1002/htj.22870
DO - 10.1002/htj.22870
M3 - Artículo
AN - SCOPUS:85158062603
SN - 2688-4534
VL - 52
SP - 4293
EP - 4316
JO - Heat Transfer
JF - Heat Transfer
IS - 6
ER -