TY - JOUR
T1 - Numerical study of a metal hydride heat transformer for low-grade heat recovery
T2 - Simulation of a MH heat transformer
AU - Yang, F. S.
AU - Zhang, Z. X.
AU - Wang, G. X.
AU - Bao, Z. W.
AU - Diniz Da Costa, J. C.
AU - Rudolph, V.
PY - 2011/10
Y1 - 2011/10
N2 - Due to the increasing demand for clean energy and improved energy utilization, the metal hydride heat transformer for low-grade heat recovery has attracted wide attentions recently. In this paper, such a system with LaNi 5-LaNi4.7Al0.3 pair, which is used for upgrading waste heat to a higher temperature, was investigated in detail by numerical simulation. Different from existing studies, in this investigation only ambient and waste heat sources are involved during operation of the heat transformer, which could be advantageous in many aspects. A rigorous 2-D unsteady model was developed and numerically solved by the fully implicit finite volume method (FVM). It was shown that the proposed system can achieve steady heat upgrading operation, resulting in an average temperature boost of 6.8 K using a 358 K waste heat source. The dynamic behavior of the heat transformer in three subsequent cycles was analyzed, and the measures aiming at continuous output were further discussed.
AB - Due to the increasing demand for clean energy and improved energy utilization, the metal hydride heat transformer for low-grade heat recovery has attracted wide attentions recently. In this paper, such a system with LaNi 5-LaNi4.7Al0.3 pair, which is used for upgrading waste heat to a higher temperature, was investigated in detail by numerical simulation. Different from existing studies, in this investigation only ambient and waste heat sources are involved during operation of the heat transformer, which could be advantageous in many aspects. A rigorous 2-D unsteady model was developed and numerically solved by the fully implicit finite volume method (FVM). It was shown that the proposed system can achieve steady heat upgrading operation, resulting in an average temperature boost of 6.8 K using a 358 K waste heat source. The dynamic behavior of the heat transformer in three subsequent cycles was analyzed, and the measures aiming at continuous output were further discussed.
KW - Metal hydride
KW - Numerical simulation
KW - Specific heating power
KW - Waste heat recovery
UR - https://www.scopus.com/pages/publications/79960923453
U2 - 10.1016/j.applthermaleng.2011.04.047
DO - 10.1016/j.applthermaleng.2011.04.047
M3 - 文章
AN - SCOPUS:79960923453
SN - 1359-4311
VL - 31
SP - 2749
EP - 2756
JO - Applied Thermal Engineering
JF - Applied Thermal Engineering
IS - 14-15
ER -