Cargando…

A Theoretical Comparative Study of Vapor-Compression Refrigeration Cycle using Al(2)O(3) Nanoparticle with Low-GWP Refrigerants

Nanorefrigerant is a mixture of nanoparticles and pure refrigerant, which can increase heat transfer characteristics in refrigeration and air conditioning equipment. The performance of four different Al(2)O(3) nanorefrigerants and their pure fluids (R600a, R134a, R1234yf, and R1233zd(E)) is analyzed...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Shengyu, Lu, Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9777844/
https://www.ncbi.nlm.nih.gov/pubmed/36554225
http://dx.doi.org/10.3390/e24121820
_version_ 1784856206973599744
author Li, Shengyu
Lu, Jun
author_facet Li, Shengyu
Lu, Jun
author_sort Li, Shengyu
collection PubMed
description Nanorefrigerant is a mixture of nanoparticles and pure refrigerant, which can increase heat transfer characteristics in refrigeration and air conditioning equipment. The performance of four different Al(2)O(3) nanorefrigerants and their pure fluids (R600a, R134a, R1234yf, and R1233zd(E)) is analyzed in a vapor-compression refrigeration cycle. The enthalpy of a nanorefrigerant in the refrigeration cycle is calculated by using the prediction method based on the density of nanorefrigerant. A numerical model is established for the thermodynamic analysis, and the results show that adding nanoparticles to the pure refrigerant enhances heat transfer in heat exchangers, increases cooling capacity, reduces compressor power consumption, and finally improves the performance of the refrigeration system. The COP improvement of R1233zd(E) + Al(2)O(3) nanorefrigerant is the highest, and the COP improvement of R134a + Al(2)O(3) and R1234yf + Al(2)O(3) are close to each other. When the mass fraction of Al(2)O(3) nanoparticles increases to 0.30%, the COP of R1233zd(E) and R600a increases by more than 20%; the maximum exergy efficiency is 38.46% for R1233zd(E) + Al(2)O(3), and the minimum exergy efficiency is 27.06% for pure R1234yf. The results provide a basis for the application of nanorefrigerants in the vapor compression refrigeration cycle.
format Online
Article
Text
id pubmed-9777844
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-97778442022-12-23 A Theoretical Comparative Study of Vapor-Compression Refrigeration Cycle using Al(2)O(3) Nanoparticle with Low-GWP Refrigerants Li, Shengyu Lu, Jun Entropy (Basel) Article Nanorefrigerant is a mixture of nanoparticles and pure refrigerant, which can increase heat transfer characteristics in refrigeration and air conditioning equipment. The performance of four different Al(2)O(3) nanorefrigerants and their pure fluids (R600a, R134a, R1234yf, and R1233zd(E)) is analyzed in a vapor-compression refrigeration cycle. The enthalpy of a nanorefrigerant in the refrigeration cycle is calculated by using the prediction method based on the density of nanorefrigerant. A numerical model is established for the thermodynamic analysis, and the results show that adding nanoparticles to the pure refrigerant enhances heat transfer in heat exchangers, increases cooling capacity, reduces compressor power consumption, and finally improves the performance of the refrigeration system. The COP improvement of R1233zd(E) + Al(2)O(3) nanorefrigerant is the highest, and the COP improvement of R134a + Al(2)O(3) and R1234yf + Al(2)O(3) are close to each other. When the mass fraction of Al(2)O(3) nanoparticles increases to 0.30%, the COP of R1233zd(E) and R600a increases by more than 20%; the maximum exergy efficiency is 38.46% for R1233zd(E) + Al(2)O(3), and the minimum exergy efficiency is 27.06% for pure R1234yf. The results provide a basis for the application of nanorefrigerants in the vapor compression refrigeration cycle. MDPI 2022-12-13 /pmc/articles/PMC9777844/ /pubmed/36554225 http://dx.doi.org/10.3390/e24121820 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Shengyu
Lu, Jun
A Theoretical Comparative Study of Vapor-Compression Refrigeration Cycle using Al(2)O(3) Nanoparticle with Low-GWP Refrigerants
title A Theoretical Comparative Study of Vapor-Compression Refrigeration Cycle using Al(2)O(3) Nanoparticle with Low-GWP Refrigerants
title_full A Theoretical Comparative Study of Vapor-Compression Refrigeration Cycle using Al(2)O(3) Nanoparticle with Low-GWP Refrigerants
title_fullStr A Theoretical Comparative Study of Vapor-Compression Refrigeration Cycle using Al(2)O(3) Nanoparticle with Low-GWP Refrigerants
title_full_unstemmed A Theoretical Comparative Study of Vapor-Compression Refrigeration Cycle using Al(2)O(3) Nanoparticle with Low-GWP Refrigerants
title_short A Theoretical Comparative Study of Vapor-Compression Refrigeration Cycle using Al(2)O(3) Nanoparticle with Low-GWP Refrigerants
title_sort theoretical comparative study of vapor-compression refrigeration cycle using al(2)o(3) nanoparticle with low-gwp refrigerants
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9777844/
https://www.ncbi.nlm.nih.gov/pubmed/36554225
http://dx.doi.org/10.3390/e24121820
work_keys_str_mv AT lishengyu atheoreticalcomparativestudyofvaporcompressionrefrigerationcycleusingal2o3nanoparticlewithlowgwprefrigerants
AT lujun atheoreticalcomparativestudyofvaporcompressionrefrigerationcycleusingal2o3nanoparticlewithlowgwprefrigerants
AT lishengyu theoreticalcomparativestudyofvaporcompressionrefrigerationcycleusingal2o3nanoparticlewithlowgwprefrigerants
AT lujun theoreticalcomparativestudyofvaporcompressionrefrigerationcycleusingal2o3nanoparticlewithlowgwprefrigerants