TY - JOUR
T1 - Kinetic and thermodynamic analyses of mid/low-temperature ammonia decomposition in solar-driven hydrogen permeation membrane reactor
AU - Wang, Bingzheng
AU - Kong, Hui
AU - Wang, Hongsheng
AU - Wang, Yipu
AU - Hu, Xuejiao
N1 - Publisher Copyright:
© 2019 Hydrogen Energy Publications LLC
PY - 2019/10/11
Y1 - 2019/10/11
N2 - It is a promising method for hydrogen generation without carbon emitting by ammonia decomposition in a catalytic palladium membrane reactor driven by solar energy, which could also store and convert solar energy into chemical energy. In this study, kinetic and thermodynamic analyses of mid/low-temperature solar thermochemical ammonia decomposition for hydrogen generation in membrane reactor are conducted. Hydrogen permeation membrane reactor can separate the product and shift the reaction equilibrium forward for high conversion rate in a single step. The variation of conversion rate and thermodynamic efficiency with different characteristic parameters, such as reaction temperature (100–300 °C), tube length, and separation pressure (0.01–0.25 bar), are studied and analyzed. A near-complete conversion of ammonia decomposition is theoretically researched. The first-law thermodynamic efficiency, net solar-to-fuel efficiency, and exergy efficiency can reach as high as 86.86%, 40.08%, and 72.07%, respectively. The results of this study show the feasibility of integrating ammonia decomposition for hydrogen generation with mid/low-temperature solar thermal technologies.
AB - It is a promising method for hydrogen generation without carbon emitting by ammonia decomposition in a catalytic palladium membrane reactor driven by solar energy, which could also store and convert solar energy into chemical energy. In this study, kinetic and thermodynamic analyses of mid/low-temperature solar thermochemical ammonia decomposition for hydrogen generation in membrane reactor are conducted. Hydrogen permeation membrane reactor can separate the product and shift the reaction equilibrium forward for high conversion rate in a single step. The variation of conversion rate and thermodynamic efficiency with different characteristic parameters, such as reaction temperature (100–300 °C), tube length, and separation pressure (0.01–0.25 bar), are studied and analyzed. A near-complete conversion of ammonia decomposition is theoretically researched. The first-law thermodynamic efficiency, net solar-to-fuel efficiency, and exergy efficiency can reach as high as 86.86%, 40.08%, and 72.07%, respectively. The results of this study show the feasibility of integrating ammonia decomposition for hydrogen generation with mid/low-temperature solar thermal technologies.
KW - Ammonia decomposition
KW - Hydrogen generation
KW - Kinetic and thermodynamic study
KW - Membrane reactor
KW - Mid/low-temperature thermal energy
KW - Solar thermochemistry
UR - http://www.scopus.com/inward/record.url?scp=85072193617&partnerID=8YFLogxK
U2 - 10.1016/j.ijhydene.2019.08.175
DO - 10.1016/j.ijhydene.2019.08.175
M3 - Article
AN - SCOPUS:85072193617
SN - 0360-3199
VL - 44
SP - 26874
EP - 26887
JO - International Journal of Hydrogen Energy
JF - International Journal of Hydrogen Energy
IS - 49
ER -