Second Law Analysis of Dissipative Nanofluid Flow over a Curved Surface in the Presence of Lorentz Force: Utilization of the Chebyshev⁻Gauss⁻Lobatto Spectral Method.
Chebyshev–Gauss–Lobatto spectral method
curved surface
frictional and Ohmic dissipation
heat transfer
nanofluid
second law analysis
variable thermal conductivity
Journal
Nanomaterials (Basel, Switzerland)
ISSN: 2079-4991
Titre abrégé: Nanomaterials (Basel)
Pays: Switzerland
ID NLM: 101610216
Informations de publication
Date de publication:
02 Feb 2019
02 Feb 2019
Historique:
received:
03
01
2019
revised:
21
01
2019
accepted:
26
01
2019
entrez:
6
2
2019
pubmed:
6
2
2019
medline:
6
2
2019
Statut:
epublish
Résumé
The primary objective of the present work is to study the effects of heat transfer and entropy production in a nanofluid flow over a curved surface. The influences of Lorentz force and magnetic heating caused by the applied uniform magnetic field and energy dissipation by virtue of frictional heating are considered in the problem formulation. The effects of variable thermal conductivity are also encountered in the present model. The dimensional governing equations are reduced to dimensionless form by introducing the similarity transformations. The dimensionless equations are solved numerically by using the Chebyshev⁻Gauss⁻Lobatto spectral method (CGLSM). The rate of increase/increase in the local Nusselt number and skin friction coefficient are estimated by using a linear regression model. The expression for dimensionless entropy production is computed by employing the solutions obtained from dimensionless momentum and energy equations. Various graphs are plotted in order to examine the effects of physical flow parameters on velocity, temperature, and entropy production. The increase in skin friction coefficient with magnetic parameter is high for nanofluid containing copper nanoparticles as compared to silver nanoparticles. The analysis reveals that velocity, temperature, and entropy generation decrease with the rising value of dimensionless radius of curvature. Comparative analysis also reveals that the entropy generation during the flow of nanofluid containing copper nanoparticles is greater than that of containing silver nanoparticles.
Identifiants
pubmed: 30717432
pii: nano9020195
doi: 10.3390/nano9020195
pmc: PMC6409704
pii:
doi:
Types de publication
Journal Article
Langues
eng
Références
Entropy (Basel). 2018 Aug 18;20(8):
pubmed: 33265704
Entropy (Basel). 2018 Sep 04;20(9):
pubmed: 33265757
Entropy (Basel). 2018 Dec 07;20(12):
pubmed: 33266667