Tri-reforming of methane: a novel concept for catalytic production of industrially useful synthesis gas with desired H2/CO ratios
暂无分享,去创建一个
[1] K. Tomishige,et al. Development of active and stable nickel-magnesia solid solution catalysts for CO2 reforming of methane , 1998 .
[2] E. Ruckenstein,et al. Methane partial oxidation over NiO/MgO solid solution catalysts , 1999 .
[3] Julian R.H. Ross,et al. Syngas production from natural gas using ZrO2-supported metals , 1998 .
[4] Michel Boudart,et al. Kinetics of Heterogeneous Catalytic Reactions , 1984 .
[5] P. K. Trojan,et al. Engineering materials and their applications , 1975 .
[6] E. Ruckenstein,et al. Carbon dioxide reforming of methane over nickel alkaline earth metal oxide catalysts , 1995 .
[7] J. Bitter,et al. The state of Zirconia Suported Platinum Catalysts for CO2/CH4 Reforming , 1997 .
[8] V. Choudhary,et al. Simultaneous steam and CO2 reforming of methane to syngas over NiO/MgO/SA-5205 in presence and absence of oxygen , 1998 .
[9] Meyer Steinberg,et al. Greenhouse gas carbon dioxide mitigation: Science and technology , 1998 .
[10] V. Choudhary,et al. Simultaneous Carbon Dioxide and Steam Reforming of Methane to Syngas over NiO−CaO Catalyst , 1996 .
[11] J. Millet. FePO Catalysts for the Selective Oxidative Dehydrogenation of Isobutyric Acid into Methacrylic Acid , 1998 .
[12] V. Choudhary,et al. Energy efficient methane-to-syngas conversion with low H2/CO ratio by simultaneous catalytic reactions of methane with carbon dioxide and oxygen , 1995 .
[13] Kaoru Fujimoto,et al. Development of highly stable nickel catalyst for methane-steam reaction under low steam to carbon ratio , 1996 .
[14] V. Choudhary,et al. NiO/CaO‐Catalyzed Formation of Syngas by Coupled Exothermic Oxidative Conversion and Endothermic CO2 and Steam Reforming of Methane , 1994 .
[15] Malcolm L. H. Green,et al. Partial oxidation of methane to synthesis gas, and carbon dioxide as an oxidising agent for methane conversion , 1992 .
[16] Shaobin Wang,et al. Role of CeO2 in Ni/CeO2–Al2O3 catalysts for carbon dioxide reforming of methane , 1998 .
[17] V. Choudhary,et al. Simultaneous oxidative conversion and CO2 or steam reforming of methane to syngas over CoO–NiO–MgO catalyst , 1998 .
[18] K. Jun,et al. Highly stable Ni catalyst supported on Ce–ZrO2 for oxy-steam reforming of methane , 2001 .
[19] E. Ruckenstein,et al. The characterization of a highly effective NiO/MgO solid solution catalyst in the CO2 reforming of CH4 , 1997 .
[20] Wilhelm F. Maier,et al. Reaction kinetics of the CO2 reforming of methane , 1997 .
[21] T. Horiuchi,et al. An Estimate of Surface Mobility of CO2on γ-Alumina and MgO-Modified γ-Alumina Above 500 K , 1998 .
[22] D. Duprez,et al. Preparation of zirconia–ceria materials by soft chemistry , 1999 .
[23] G. Bond,et al. Catalysis, science and technology , 1983 .
[24] J. Bitter,et al. Deactivation and Coke Accumulation during CO2/CH4 Reforming over Pt Catalysts , 1999 .
[25] Jens R. Rostrup-Nielsen,et al. CO2-Reforming of Methane over Transition Metals , 1993 .
[26] C. Mirodatos,et al. Methane Reforming Reaction with Carbon Dioxide over Ni/SiO2Catalyst: II. A Mechanistic Study , 1996 .
[27] L. Alexander,et al. X-Ray diffraction procedures for polycrystalline and amorphous materials , 1974 .
[28] Yun Hang Hu,et al. Combination of CO2 Reforming and Partial Oxidation of Methane over NiO/MgO Solid Solution Catalysts , 1998 .
[29] M. Bradford,et al. CO2 Reforming of CH4 , 1999 .
[30] K. Fujioka,et al. Catalytic combustion of natural gas as the role of on-site heat supply in rapid catalytic CO2H2O reforming of methane , 1995 .
[31] Julian R.H. Ross,et al. The catalytic conversion of natural gas to useful products , 1996 .
[32] K. Jun,et al. Highly active and stable Ni/Ce-ZrO2 catalyst for H2 production from methane , 2002 .
[33] T. Nonaka,et al. X-ray absorption fine structure analysis of local structure of CeO2–ZrO2 mixed oxides with the same composition ratio (Ce/Zr=1) , 2002 .
[34] Chunshan Song,et al. Tri-reforming of Methane over Ni Catalysts for CO2 Conversion to Syngas With Desired H2/CO Ratios Using Flue Gas of Power Plants Without CO2 Separation , 2004 .
[35] F. Frusteri,et al. Magnesia-Supported Nickel Catalysts: II. Surface Properties and Reactivity in Methane Steam Reforming , 1993 .
[36] Chunshan Song,et al. Environmental challenges and greenhouse gas control for fossil fuel utilization in the 21st century , 2002 .
[37] T. Uchijima,et al. Role of support in reforming of CH4 with CO2 over Rh catalysts , 1994 .
[38] J. H. Edwards,et al. The chemistry of methane reforming with carbon dioxide and its current and potential applications , 1995 .
[39] Young-Soon Baek,et al. Tri-reforming of CH4 using CO2 for production of synthesis gas to dimethyl ether , 2003 .