Phase change materials and carbon nanostructures for thermal energy storage: A literature review
Abstract
The high thermal conductivity of carbon based nanostructures (CNs) has been recognized appropriate to be integrated into phase change materials (PCMs) to enhance the overall thermal properties of the obtained nanocomposites. The equilibrium of the possibility to enhance the thermal conductivity of the PCMs and the latent heat capcity are the key for their ability to store or dissipate a large amount of energy in a short period of time. This paper gives an update overview summarizing the state-of-the-art concerning nanocomposites prepared using PCMs and CNs with emphasis on the improvement of the latent heat capacity and of the thermal conductivity. Focus is directed towards experimental research studies regarding the enhancement of the thermal properties (thermal conductivity and the latent heat capacity) of PCMs obtained by the addition of the CNs by means of the encapsulation method. The majority of the reported research studies focus mainly on the thermal characterization of PCMs nanocomposites, however there is scarce information about the mechanisms explaining why/how the thermal properties are enhanced. This review outlines the results of the thermal conductivity and the latent heat capacity of PCMs/CNs nanocomposites, trying to identify the features that lead to the improvement of their thermal properties.
- Publication:
-
Renewable and Sustainable Energy Reviews
- Pub Date:
- November 2017
- DOI:
- 10.1016/j.rser.2017.05.093
- Bibcode:
- 2017RSERv..79.1212A
- Keywords:
-
- AC;
- acetamide;
- CA;
- capric acid;
- CNFs;
- carbon nanofibers;
- CNs;
- carbon nanostructures;
- CNTs;
- carbon nanotubes;
- MWCNTs;
- multi-wall carbon nanotubes;
- EG;
- expanded graphite;
- EU;
- European Union;
- GNPs;
- graphene nanoplatelets;
- GNs;
- graphite nanosheets;
- GO;
- graphene oxide;
- HD;
- hexadecane;
- HP;
- heptadecane;
- HVAC;
- heating;
- ventilation and air conditioning;
- LA;
- lauric acid;
- LHTES;
- latent heat thermal energy storage;
- L-MWCNTs;
- long multi-wall carbon nanotubes;
- MF;
- melamine- formaldehyde;
- MWCNTs;
- multi-wall carbon nanotubes;
- NDG;
- nitrogen doped graphene;
- NG;
- nano graphite;
- O-GNs;
- oriented graphite nanosheets;
- PA;
- palmitic acid;
- PA6;
- polyamide 6;
- PCMs;
- phase change materials;
- PD;
- pentadecane;
- PEG;
- polyethylene glycol;
- PMMA;
- poly(methyl metracrylate);
- PU;
- polyurethane;
- PVP;
- dispersing agent;
- R-GNs;
- randomly distributed graphite nanosheets;
- SA;
- stearic acid;
- S-MWCNTs;
- short multi-wall carbon nanotubes;
- SSPCMs;
- shape-stabilized phase change materials;
- SWCNTs;
- single-wall carbon nanotubes;
- TD;
- tetradecane;
- TES;
- thermal energy storage;
- UF;
- urea-formaldehyde;
- UMF;
- urea-melamine- formaldehyde;
- xGNPs;
- exfoliated graphite nanoplatelets;
- Phase change materials (PCMs);
- Carbon nanostructures (CNs);
- Latent heat capacity;
- Thermal conductivity;
- Thermal energy storage (TES)