Phase Change Materials with Enhanced Thermal Conductivity and Heat Propagation in Them

The review contains information o; n the properties of phase-change materials (PCM) and the possibilities of their use as the basis of thermal energy storage. Special attention is given to PCMs with a phase transition temperature ranging between 20 and 80 °C since such materials can be effectively u...

Full description

Bibliographic Details
Main Author: Alexander V. Eletskii
Format: Article
Language:English
Published: MDPI AG 2022-02-01
Series:Physchem
Subjects:
Online Access:https://www.mdpi.com/2673-7167/2/1/3
_version_ 1797443450313900032
author Alexander V. Eletskii
author_facet Alexander V. Eletskii
author_sort Alexander V. Eletskii
collection DOAJ
description The review contains information o; n the properties of phase-change materials (PCM) and the possibilities of their use as the basis of thermal energy storage. Special attention is given to PCMs with a phase transition temperature ranging between 20 and 80 °C since such materials can be effectively used to reduce temperature variations in residential and industrial rooms. Thus, the application of PCMs in the construction industry enables one to considerably reduce the power consumption and reduce the negative environmental impact of industrial facilities. Thermophysical characteristics of the main types of PCMs are presented. The heat balance for a room with walls made of PCM-added materials is estimated. The calculations demonstrate that such structures can stabilize the temperature in practical applications as a result of the usage of such materials. The construction of a thermal accumulator on the basis of PCM is proposed and analyzed. This facility uses water as a working fluid and paraffin as a PCM. The thermal accumulator has a modular structure so that the number of similar modules is determined by the quantity of energy to be stored. The potential of wide application of PCMs as a basis for thermal energy storage is rather limited due to a very low conductivity (less than 1 W/(m K)) inherent to these materials. This drawback can be overcome by adding carbon nanoparticles whose thermal conductivity is four to five orders of magnitude greater than that of the matrix material. The problem of fabrication of polymer composites with enhanced thermal conductivity due to nanocarbon particles doping is discussed in detail.
first_indexed 2024-03-09T12:57:13Z
format Article
id doaj.art-be20292c6370403ea274058e2af696a9
institution Directory Open Access Journal
issn 2673-7167
language English
last_indexed 2024-03-09T12:57:13Z
publishDate 2022-02-01
publisher MDPI AG
record_format Article
series Physchem
spelling doaj.art-be20292c6370403ea274058e2af696a92023-11-30T21:59:41ZengMDPI AGPhyschem2673-71672022-02-0121184210.3390/physchem2010003Phase Change Materials with Enhanced Thermal Conductivity and Heat Propagation in ThemAlexander V. Eletskii0Department of Thermal and Atomic Energy, Moscow Power Engineering Institute, National Research University, 14 Krasnokazarmennaya, 111250 Moscow, RussiaThe review contains information o; n the properties of phase-change materials (PCM) and the possibilities of their use as the basis of thermal energy storage. Special attention is given to PCMs with a phase transition temperature ranging between 20 and 80 °C since such materials can be effectively used to reduce temperature variations in residential and industrial rooms. Thus, the application of PCMs in the construction industry enables one to considerably reduce the power consumption and reduce the negative environmental impact of industrial facilities. Thermophysical characteristics of the main types of PCMs are presented. The heat balance for a room with walls made of PCM-added materials is estimated. The calculations demonstrate that such structures can stabilize the temperature in practical applications as a result of the usage of such materials. The construction of a thermal accumulator on the basis of PCM is proposed and analyzed. This facility uses water as a working fluid and paraffin as a PCM. The thermal accumulator has a modular structure so that the number of similar modules is determined by the quantity of energy to be stored. The potential of wide application of PCMs as a basis for thermal energy storage is rather limited due to a very low conductivity (less than 1 W/(m K)) inherent to these materials. This drawback can be overcome by adding carbon nanoparticles whose thermal conductivity is four to five orders of magnitude greater than that of the matrix material. The problem of fabrication of polymer composites with enhanced thermal conductivity due to nanocarbon particles doping is discussed in detail.https://www.mdpi.com/2673-7167/2/1/3phase change materialsthermal conductivitycarbon nanoparticles
spellingShingle Alexander V. Eletskii
Phase Change Materials with Enhanced Thermal Conductivity and Heat Propagation in Them
Physchem
phase change materials
thermal conductivity
carbon nanoparticles
title Phase Change Materials with Enhanced Thermal Conductivity and Heat Propagation in Them
title_full Phase Change Materials with Enhanced Thermal Conductivity and Heat Propagation in Them
title_fullStr Phase Change Materials with Enhanced Thermal Conductivity and Heat Propagation in Them
title_full_unstemmed Phase Change Materials with Enhanced Thermal Conductivity and Heat Propagation in Them
title_short Phase Change Materials with Enhanced Thermal Conductivity and Heat Propagation in Them
title_sort phase change materials with enhanced thermal conductivity and heat propagation in them
topic phase change materials
thermal conductivity
carbon nanoparticles
url https://www.mdpi.com/2673-7167/2/1/3
work_keys_str_mv AT alexanderveletskii phasechangematerialswithenhancedthermalconductivityandheatpropagationinthem