TY - JOUR
T1 - Simulation and Optimization of Catalytic Partial Oxidation Reforming of Butane
AU - Yao, Yue
AU - Shi, Jixin
AU - Liu, Zerui
AU - Huang, Xin
AU - Wang, Yuqing
AU - Shi, Yixiang
N1 - Publisher Copyright:
© 2026, Tianjin University. All rights reserved.
PY - 2026
Y1 - 2026
N2 - Butane, a high-energy-density easily liquefied gaseous fuel, is suitable for portable solid oxide fuel cell (SOFC) power generation systems when combined with catalytic partial oxidation (CPOx) reforming technology. However, the long carbon chain and high carbon content of butane molecules tend to cause carbon deposition during reactions, affecting the long-term stability of catalysts. By establishing a multiphysics-coupled two-dimensional axisymmetric model, this study investigated the characteristics of partial oxidation reforming of butane at different temperatures (600–800 °C) and carbon-to-oxygen ratios (C/O = 0.6–0.9), and quantitatively analyzed the carbon deposition tendencies at various locations within the reactor. Numerical simulation results show that the system achieves optimal reaction conditions at 800 °C with C/O = 0.9, where the butane conversion efficiency and CO selectivity reach maximum values. The model reveals that carbon deposition originates primarily from methane cracking reactions, with the x = 0.5 cm position in the reactor exhibiting a minimal carbon deposition tendency. Other regions demonstrate significant carbon deposition risks under low-temperature and high C/O ratio conditions.
AB - Butane, a high-energy-density easily liquefied gaseous fuel, is suitable for portable solid oxide fuel cell (SOFC) power generation systems when combined with catalytic partial oxidation (CPOx) reforming technology. However, the long carbon chain and high carbon content of butane molecules tend to cause carbon deposition during reactions, affecting the long-term stability of catalysts. By establishing a multiphysics-coupled two-dimensional axisymmetric model, this study investigated the characteristics of partial oxidation reforming of butane at different temperatures (600–800 °C) and carbon-to-oxygen ratios (C/O = 0.6–0.9), and quantitatively analyzed the carbon deposition tendencies at various locations within the reactor. Numerical simulation results show that the system achieves optimal reaction conditions at 800 °C with C/O = 0.9, where the butane conversion efficiency and CO selectivity reach maximum values. The model reveals that carbon deposition originates primarily from methane cracking reactions, with the x = 0.5 cm position in the reactor exhibiting a minimal carbon deposition tendency. Other regions demonstrate significant carbon deposition risks under low-temperature and high C/O ratio conditions.
KW - butane
KW - carbon deposition tendency
KW - catalytic partial oxidation
KW - multiphysics coupled simulation
UR - https://www.scopus.com/pages/publications/105042655996
U2 - 10.11715/rskxjs.R202604009
DO - 10.11715/rskxjs.R202604009
M3 - Article
AN - SCOPUS:105042655996
SN - 1006-8740
VL - 32
SP - 239
EP - 248
JO - Ranshao Kexue Yu Jishu/Journal of Combustion Science and Technology
JF - Ranshao Kexue Yu Jishu/Journal of Combustion Science and Technology
IS - 3
ER -