Published November 2021 | Version v1
Journal article

Applications of Darcy-Forchheimer 3D reactive rotating flow of rate type nanoparticles with non-uniform heat source and sink and activation energy

  • 1. Department of Mathematics and Statistics, Riphah International University, I-14, Islamabad 44000 (Pakistan)
  • 2. Nonlinear Analysis and Applied Mathematics (NAAM)-Research Group, Department of Mathematics, Faculty of Sciences, King Abdulaziz University, P.O. Box 80203, Jeddah 21589 (Saudi Arabia)

Description

Highlights: • Here three-dimensional radiative Maxwell nanoparticles is addressed. • Bio-convection is considered. • Non-uniform heat source and sink is inspected for heat transfer phenomenon improvement. • Porous impact and inertial forces are encountered via Darcy-Forchheimer law. The three-dimensional analysis for radiative Maxwell nanoparticles in presence of microorganisms due to rotating frame in numerically addressed numerically. The novel impact of non-uniform heat source and sink is inspected for heat transfer phenomenon improvement. The porous impact and inertial forces are also encountered via Darcy-Forchheimer law. The convective boundary conditions are utilized for the simulated problem. The modified version of Buongiorno nano-model is followed for inspecting the thermophoretic behavior and Brownian movement of nanoparticles. The shooting numerical technique is employed for simulation procedure. The fluctuated pattern of velocity, heat transfer rate, concentration change and microorganism profile is noticed. The results claimed that the presence of inertial parameter declined the velocity but enhanced the nanofluid temperature and concentration profiles. The non-uniform heat source parameters significantly improve the heat transfer rate. The change in rotation parameter reduces the velocity while reverse observations are noted for temperature and concentration profiles.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.cplett.2021.139054

Additional details

Identifiers

DOI
10.1016/j.cplett.2021.139054;
PII
S0009261421007375;

Publishing Information

Journal Title
Chemical Physics Letters
Journal Volume
783
Journal Page Range
vp.
ISSN
0009-2614
CODEN
CHPLBC

Optional Information

Copyright
Copyright (c) 2021 Elsevier B.V. All rights reserved.