Thermodynamic Performance of Boehmite Alumina Nanoparticle Shapes in the Counterflow Double Pipe Heat Exchanger

This work compares a theoretical model with a consolidated numerical model related to the thermodynamic performance of boehmite alumina nanoparticles in different formats in a counterflow double pipe heat exchanger. The shapes of the non-spherical nanoparticles under analysis are platelets, blades,...

Full description

Bibliographic Details
Main Author: Nogueira E.
Format: Article
Language:English
Published: Sumy State University 2022-06-01
Series:Журнал інженерних наук
Subjects:
Online Access:http://jes.sumdu.edu.ua/wp-content/uploads/2022/03/jes_9_1_2022_F1-F10.pdf
_version_ 1798004400504963072
author Nogueira E.
author_facet Nogueira E.
author_sort Nogueira E.
collection DOAJ
description This work compares a theoretical model with a consolidated numerical model related to the thermodynamic performance of boehmite alumina nanoparticles in different formats in a counterflow double pipe heat exchanger. The shapes of the non-spherical nanoparticles under analysis are platelets, blades, cylindrical, and bricks. The second law of thermodynamics is applied to determine Nusselt number, pressure drop, thermal efficiency, thermal and viscous irreversibilities, Bejan number, and the out temperature of the hot fluid. The entropy generation rates associated with the temperature field and the viscous flow are graphical determined. The numerical model uses the k-ε turbulence model, which requires empirical factors to simulate turbulent viscosity and rate of generation of turbulent kinetic energy. Compatibility between the models was demonstrated. It was shown that the maximum absolute numerical error between the quantities Nusselt number, heat transfer rate, and pressure drop for established and specific conditions is less than 12.5 %.
first_indexed 2024-04-11T12:23:04Z
format Article
id doaj.art-e8222bc1beff4b8bb848f3c5239c28f9
institution Directory Open Access Journal
issn 2312-2498
2414-9381
language English
last_indexed 2024-04-11T12:23:04Z
publishDate 2022-06-01
publisher Sumy State University
record_format Article
series Журнал інженерних наук
spelling doaj.art-e8222bc1beff4b8bb848f3c5239c28f92022-12-22T04:24:03ZengSumy State UniversityЖурнал інженерних наук2312-24982414-93812022-06-0191F1F1010.21272/jes.2022.9(1).f1Thermodynamic Performance of Boehmite Alumina Nanoparticle Shapes in the Counterflow Double Pipe Heat ExchangerNogueira E.0Department of Mechanic and Energy, State University of Rio de Janeiro, R. São Francisco Xavier, 524, Maracanã St., 20550-013, Rio de Janeiro, BrazilThis work compares a theoretical model with a consolidated numerical model related to the thermodynamic performance of boehmite alumina nanoparticles in different formats in a counterflow double pipe heat exchanger. The shapes of the non-spherical nanoparticles under analysis are platelets, blades, cylindrical, and bricks. The second law of thermodynamics is applied to determine Nusselt number, pressure drop, thermal efficiency, thermal and viscous irreversibilities, Bejan number, and the out temperature of the hot fluid. The entropy generation rates associated with the temperature field and the viscous flow are graphical determined. The numerical model uses the k-ε turbulence model, which requires empirical factors to simulate turbulent viscosity and rate of generation of turbulent kinetic energy. Compatibility between the models was demonstrated. It was shown that the maximum absolute numerical error between the quantities Nusselt number, heat transfer rate, and pressure drop for established and specific conditions is less than 12.5 %.http://jes.sumdu.edu.ua/wp-content/uploads/2022/03/jes_9_1_2022_F1-F10.pdfenergy efficiencythermal efficiencyreynolds numbernusselt numberprocess innovation
spellingShingle Nogueira E.
Thermodynamic Performance of Boehmite Alumina Nanoparticle Shapes in the Counterflow Double Pipe Heat Exchanger
Журнал інженерних наук
energy efficiency
thermal efficiency
reynolds number
nusselt number
process innovation
title Thermodynamic Performance of Boehmite Alumina Nanoparticle Shapes in the Counterflow Double Pipe Heat Exchanger
title_full Thermodynamic Performance of Boehmite Alumina Nanoparticle Shapes in the Counterflow Double Pipe Heat Exchanger
title_fullStr Thermodynamic Performance of Boehmite Alumina Nanoparticle Shapes in the Counterflow Double Pipe Heat Exchanger
title_full_unstemmed Thermodynamic Performance of Boehmite Alumina Nanoparticle Shapes in the Counterflow Double Pipe Heat Exchanger
title_short Thermodynamic Performance of Boehmite Alumina Nanoparticle Shapes in the Counterflow Double Pipe Heat Exchanger
title_sort thermodynamic performance of boehmite alumina nanoparticle shapes in the counterflow double pipe heat exchanger
topic energy efficiency
thermal efficiency
reynolds number
nusselt number
process innovation
url http://jes.sumdu.edu.ua/wp-content/uploads/2022/03/jes_9_1_2022_F1-F10.pdf
work_keys_str_mv AT nogueirae thermodynamicperformanceofboehmitealuminananoparticleshapesinthecounterflowdoublepipeheatexchanger