TY - JOUR
T1 - Effect of natural convection on charging of phase change materials in graded metal foam
T2 - Pore-scale simulation
AU - Xiao, Tian
AU - Du, Zhao
AU - Song, Xinyi
AU - Peng, Wenhao
AU - Yang, Xiaohu
AU - Sundén, Bengt
N1 - Publisher Copyright:
© 2023 Elsevier Ltd
PY - 2023/12
Y1 - 2023/12
N2 - Open-cell metal foams (MFs) possess exceptional thermal conductivity and are often utilized to enhance the phase transition efficiency of phase change materials (PCMs) that have insufficient thermal conductivity. The movement of energy within MFs during phase transition is influenced by natural convection and heat conduction. In this study, pore-scale numerical simulation (PNS) was employed to study the effect of natural convection on the phase transition of graded MFs (positive gradient foam-PGF, homogenous foam-HF, and negative gradient foam-NGF). Simplified tetrakaidecahedron cells were used for PNS to capture the primary geometric features of MFs. Results have shown that natural convection significantly influences the phase transition process of PCMs. Compared to pure thermal conductivity, the full melting times (FMTs) of PCMs in PGF, HF, and NGF were reduced by 85.2% - 88.3% when natural convection was considered. Furthermore, the integrated average temperature response rates of PCMs in PGF, HF, and NGF, considering natural convection, were improved by 378.4%, 301.9%, and 342.5%, respectively. The presence of natural convection resulted in a gradient in the phase interface distribution and temperature field. The PNS method proved useful in illustrating the influence of metallic ligaments on phase interface and temperature distributions.
AB - Open-cell metal foams (MFs) possess exceptional thermal conductivity and are often utilized to enhance the phase transition efficiency of phase change materials (PCMs) that have insufficient thermal conductivity. The movement of energy within MFs during phase transition is influenced by natural convection and heat conduction. In this study, pore-scale numerical simulation (PNS) was employed to study the effect of natural convection on the phase transition of graded MFs (positive gradient foam-PGF, homogenous foam-HF, and negative gradient foam-NGF). Simplified tetrakaidecahedron cells were used for PNS to capture the primary geometric features of MFs. Results have shown that natural convection significantly influences the phase transition process of PCMs. Compared to pure thermal conductivity, the full melting times (FMTs) of PCMs in PGF, HF, and NGF were reduced by 85.2% - 88.3% when natural convection was considered. Furthermore, the integrated average temperature response rates of PCMs in PGF, HF, and NGF, considering natural convection, were improved by 378.4%, 301.9%, and 342.5%, respectively. The presence of natural convection resulted in a gradient in the phase interface distribution and temperature field. The PNS method proved useful in illustrating the influence of metallic ligaments on phase interface and temperature distributions.
KW - Graded metal foam
KW - Natural convection
KW - Phase change material
KW - Pore-scale numerical simulation
UR - https://www.scopus.com/pages/publications/85174354290
U2 - 10.1016/j.icheatmasstransfer.2023.107080
DO - 10.1016/j.icheatmasstransfer.2023.107080
M3 - 文章
AN - SCOPUS:85174354290
SN - 0735-1933
VL - 149
JO - International Communications in Heat and Mass Transfer
JF - International Communications in Heat and Mass Transfer
M1 - 107080
ER -