TY - JOUR
T1 - Entropy and energy analysis of MHD nanofluid thermal transport in a non-uniformly heated annulus
AU - Kumara Swamy, H. A.
AU - Sankar, M.
AU - Do, Younghae
N1 - Publisher Copyright:
© 2022 Informa UK Limited, trading as Taylor & Francis Group.
PY - 2022
Y1 - 2022
N2 - In this analysis, nanoliquid motion and thermal dissipation rate along with the associated entropy production of water-based nanoliquid have been numerically investigated in an annular geometry. The vertical boundaries are imposed with sinusoidal thermal profiles with different phase deviations, while the top and bottom are retained as insulators, and an inclined external magnetic force has also been considered. The numerical experiments reveal that the change in phase deviation produces severe nanoliquid movement due to the shifting of hot and cold regions along with the outer cylinder. The enhancement of phase deviation produces higher thermal transport rates with minimal entropy production. The influence of magnetic field angle strongly depends on the magnitude of (Formula presented.) and also the thermal performance could be improved with a proper choice of magnetic tilt angle. Further, the entropy production in the annulus greatly depends on the intensity of the applied magnetic field. An increase in the nanoparticle concentration induces the thermal conductivity of nanoliquid and in turn improves the thermal transport. Through the present analysis, we identified a set of parameters to increase the thermal transport with minimum entropy production.
AB - In this analysis, nanoliquid motion and thermal dissipation rate along with the associated entropy production of water-based nanoliquid have been numerically investigated in an annular geometry. The vertical boundaries are imposed with sinusoidal thermal profiles with different phase deviations, while the top and bottom are retained as insulators, and an inclined external magnetic force has also been considered. The numerical experiments reveal that the change in phase deviation produces severe nanoliquid movement due to the shifting of hot and cold regions along with the outer cylinder. The enhancement of phase deviation produces higher thermal transport rates with minimal entropy production. The influence of magnetic field angle strongly depends on the magnitude of (Formula presented.) and also the thermal performance could be improved with a proper choice of magnetic tilt angle. Further, the entropy production in the annulus greatly depends on the intensity of the applied magnetic field. An increase in the nanoparticle concentration induces the thermal conductivity of nanoliquid and in turn improves the thermal transport. Through the present analysis, we identified a set of parameters to increase the thermal transport with minimum entropy production.
UR - http://www.scopus.com/inward/record.url?scp=85142291607&partnerID=8YFLogxK
U2 - 10.1080/17455030.2022.2145522
DO - 10.1080/17455030.2022.2145522
M3 - Article
AN - SCOPUS:85142291607
SN - 1745-5030
JO - Waves in Random and Complex Media
JF - Waves in Random and Complex Media
ER -