A numerical investigation of the effects of metal foam characteristics and heating/cooling conditions on the phase change kinetic of phase change materials embedded in metal foam
被引:44
作者:
论文数: 引用数:
h-index:
机构:
Moussa, El Idi Mohamed
[1
]
Karkri, Mustapha
论文数: 0引用数: 0
h-index: 0
机构:
Univ Paris Est, CERTES, 61 Av Gen Gaulle, F-94010 Creteil, FranceUniv Paris Est, CERTES, 61 Av Gen Gaulle, F-94010 Creteil, France
Karkri, Mustapha
[1
]
机构:
[1] Univ Paris Est, CERTES, 61 Av Gen Gaulle, F-94010 Creteil, France
Thermal energy storage;
Numerical simulation;
Phase change material;
Metal foam;
THERMAL-ENERGY STORAGE;
CHANGE HEAT-TRANSFER;
PRESSURE-DROP;
POROSITY;
CONDUCTIVITY;
PARAFFIN;
SIZE;
PCM;
D O I:
10.1016/j.est.2019.100985
中图分类号:
TE [石油、天然气工业];
TK [能源与动力工程];
学科分类号:
0807 ;
0820 ;
摘要:
In the last decade, the use of Phase change materials (PCM) as passive thermal energy storage has been widely studied both numerically and experimentally. Despite their advantages, their thermal conductivity is very low, with a large change in volume during the melting and solidification process. One way to increase their poor thermal conductivity is to embed them into open cells metallic foams. In this paper, a numerical study is conducted on the effects of metal foam properties and heating/cooling conditions (cyclic heating and cooling) on the phase change kinetic of PCM embedded in metal foam. Two types of heating condition were studied: constant and sinusoidal heat flux. The mathematical model is based on the volume-averaging technique. The Brinkman-Forchheimer-extended Darcy equation and the local thermal non-equilibrium model that applies a two-energy equation are used. The phase change of PCM is modeled by an enthalpy-porosity method. The numerical results are validated by comparing with experimental data. It is observed from the numerical results that the foam morphology and materials have a significant influence on the melting and solidification of phase change materials. The results also show that the melting time is reduced with sinusoidal heating.