TY - JOUR
T1 - Comparative study of Rh/MgO modified with Fe, Co or Ni for the catalytic partial oxidation of methane at short contact time. Part II
T2 - Catalytic performance and bed temperature profile
AU - Tanaka, Hisanori
AU - Kaino, Rie
AU - Nakagawa, Yoshinao
AU - Tomishige, Keiichi
N1 - Funding Information:
We sincerely thank Japan Oil, Gas and Metals National Corporation (JOGMEC) and Chiyoda Corporation for financial support. This work was in part supported by a World Premier International Research Center (WPI) Initiative on Materials Nanoarchitectonics, MEXT.
PY - 2010/4/30
Y1 - 2010/4/30
N2 - Modifying effects of Fe, Co or Ni over 1 wt% Rh/MgO on the catalytic performance in the catalytic partial oxidation (CPO) of methane were investigated. The optimization of the additive amount was determined by the results of the activity test in the CPO of methane with N2 dilution. The optimum amount of Co (Co/Rh = 1) or Ni (Ni/Rh = 1.5) addition to Rh/MgO enhanced the CH4 conversion and selectivities to H2 and CO, in contrast, the addition of Fe to Rh/MgO decreased the properties. The results of H2 titration and H2 adsorption on the catalysts quenched from the CPO reaction conditions indicate that the Rh-Co/MgO gave low oxidation degree during the CPO of methane and high resistance to the oxidation was demonstrated. In the CPO of methane without N2 dilution, Rh-Co/MgO (Co/Rh = 1) had much lower catalyst bed temperatures than other catalysts, and it can suppress the hot spot formation. This property is also related to the high resistance to the oxidation. The catalyst surface is maintained in a reduced state even in the presence of oxygen enables the overlap of the exothermic oxidation zone with endothermic reforming zone and can decrease the bed temperature remarkably.
AB - Modifying effects of Fe, Co or Ni over 1 wt% Rh/MgO on the catalytic performance in the catalytic partial oxidation (CPO) of methane were investigated. The optimization of the additive amount was determined by the results of the activity test in the CPO of methane with N2 dilution. The optimum amount of Co (Co/Rh = 1) or Ni (Ni/Rh = 1.5) addition to Rh/MgO enhanced the CH4 conversion and selectivities to H2 and CO, in contrast, the addition of Fe to Rh/MgO decreased the properties. The results of H2 titration and H2 adsorption on the catalysts quenched from the CPO reaction conditions indicate that the Rh-Co/MgO gave low oxidation degree during the CPO of methane and high resistance to the oxidation was demonstrated. In the CPO of methane without N2 dilution, Rh-Co/MgO (Co/Rh = 1) had much lower catalyst bed temperatures than other catalysts, and it can suppress the hot spot formation. This property is also related to the high resistance to the oxidation. The catalyst surface is maintained in a reduced state even in the presence of oxygen enables the overlap of the exothermic oxidation zone with endothermic reforming zone and can decrease the bed temperature remarkably.
KW - Base metal: alloy
KW - Catalytic partial oxidation
KW - Hot spot
KW - Methane
KW - Rhodium
KW - Thermography
UR - http://www.scopus.com/inward/record.url?scp=77950021937&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=77950021937&partnerID=8YFLogxK
U2 - 10.1016/j.apcata.2010.02.018
DO - 10.1016/j.apcata.2010.02.018
M3 - Article
AN - SCOPUS:77950021937
SN - 0926-860X
VL - 378
SP - 187
EP - 194
JO - Applied Catalysis A: General
JF - Applied Catalysis A: General
IS - 2
ER -