EBSCO Logo
Connecting you to content on EBSCOhost
Results
Title

Natural convection of water-based nanofluid in a chamber with a solid body of periodic volumetric heat generation.

Authors

Astanina, Marina S.; Pop, Ioan; Sheremet, Mikhail A.

Abstract

A computational analysis of convective energy transport of water-based nanosuspension having variable thermal properties has been performed using finite difference method. The considered square cavity includes cold vertical walls and adiabatic horizontal boundaries. The local heater of periodic thermal production is placed on the lower border of the domain. The working fluid is water with copper oxide nanoparticles of low concentration. Control differential equations with initial and boundary conditions have been written using non-dimensional stream function, vorticity and temperature. The resulting nonlinear partial differential equations with associated boundary conditions are solved using the finite difference methodology on a uniform calculation mesh. The analyzed control parameters including volumetric heat generation frequency, initial fraction of nanoparticles, heater location and time have been studied. The physics of the problem is well-explored for the embedded material parameters through tables and graphs. The obtained data have shown that the volumetric thermal production frequency of the source and the initial concentration of nanoparticles have the greatest influence on the heat transfer performance. The energy source temperature can be reduced by up to 20% by varying the characteristics of the source and nanosuspension.

Subjects

NANOFLUIDS; NATURAL heat convection; BOUNDARY value problems; FINITE differences; NONLINEAR differential equations; FINITE difference method

Publication

Journal of Thermal Analysis & Calorimetry, 2023, Vol 148, Issue 3, p1011

ISSN

1388-6150

Publication type

Academic Journal

DOI

10.1007/s10973-022-11735-4

EBSCO Connect | Privacy policy | Terms of use | Copyright | Manage my cookies
Journals | Subjects | Sitemap
© 2025 EBSCO Industries, Inc. All rights reserved