TY - JOUR
T1 - Entropy optimized analysis for the radiative flow of a nanofluid
T2 - the Darcy-Forchheimer model
AU - Guo, Bing
AU - Khan, Sohail A.
AU - Khan, M. Ijaz
AU - El-Zahar, Essam Roshdy
AU - Malik, M. Y.
AU - Alqahtani, A. S.
AU - Chu, Yu Ming
N1 - Publisher Copyright:
© 2022 Informa UK Limited, trading as Taylor & Francis Group.
PY - 2025
Y1 - 2025
N2 - Nanofluids have higher motivation to develop innovative thermal transport, and significant attempts have been made in this area during the last decades. Currently various researchers have concentrated their effort on the study of nanofluidy. Nanomaterials’ innovative behaviors make them significant in various applications such as hybrid-power engines, refrigerators, regenerative medicines, heat exchangers, engine cooling pharmaceutical processes, electronics cooling and vehicle thermal management, etc. Here entropy generation in the hydromagnetic flow of the timedependent Darcy-Forchheimer nanoliquid over a stretched porous surface is scrutinized. Magnetic force and dissipation are addressed in heat equation. Here copper ((Formula presented.)) oxide and aluminum ((Formula presented.)) oxide are considered nanoparticles and water ((Formula presented.)) is used as the base liquid. Nonlinear dimensionless equations are developed through the implementation of similarity variables. To get the numerical solution here, we employed the bvp4c technique. The influences of sundry variables on temperature, fluid flow, and entropy rate are discussed. The performance of fluid friction and heat transport rate against flow variables are studied. Higher porosity variable reduces the velocity profile. An opposite effect is noted for entropy rate and velocity. The Larger Brinkman number corresponds to augments’ entropy rate and temperature. Drag force and the Nusselt number have decaying trends for the magnetic field. An opposite of thermal transport rate and drag force for unsteadiness parameter is noticed.
AB - Nanofluids have higher motivation to develop innovative thermal transport, and significant attempts have been made in this area during the last decades. Currently various researchers have concentrated their effort on the study of nanofluidy. Nanomaterials’ innovative behaviors make them significant in various applications such as hybrid-power engines, refrigerators, regenerative medicines, heat exchangers, engine cooling pharmaceutical processes, electronics cooling and vehicle thermal management, etc. Here entropy generation in the hydromagnetic flow of the timedependent Darcy-Forchheimer nanoliquid over a stretched porous surface is scrutinized. Magnetic force and dissipation are addressed in heat equation. Here copper ((Formula presented.)) oxide and aluminum ((Formula presented.)) oxide are considered nanoparticles and water ((Formula presented.)) is used as the base liquid. Nonlinear dimensionless equations are developed through the implementation of similarity variables. To get the numerical solution here, we employed the bvp4c technique. The influences of sundry variables on temperature, fluid flow, and entropy rate are discussed. The performance of fluid friction and heat transport rate against flow variables are studied. Higher porosity variable reduces the velocity profile. An opposite effect is noted for entropy rate and velocity. The Larger Brinkman number corresponds to augments’ entropy rate and temperature. Drag force and the Nusselt number have decaying trends for the magnetic field. An opposite of thermal transport rate and drag force for unsteadiness parameter is noticed.
KW - Darcy-Forchheimer model
KW - Unsteady flow
KW - entropy generation and viscous dissipation
KW - joule heating
UR - http://www.scopus.com/inward/record.url?scp=85129262139&partnerID=8YFLogxK
U2 - 10.1080/17455030.2022.2061082
DO - 10.1080/17455030.2022.2061082
M3 - Article
AN - SCOPUS:85129262139
SN - 1745-5030
VL - 35
SP - 4321
EP - 4338
JO - Waves in Random and Complex Media
JF - Waves in Random and Complex Media
IS - 3
ER -