CO2/H2 methanation over M*/Mn/Fe-Al2O3 (M*: Pd, Rh, and Ru) catalysts in natural gas; optimization by response surface methodology-central composite design
Tóm tắt
Từ khóa
Tài liệu tham khảo
Abass AO (2013) Valorization Of Greenhouse Carbon Dioxide Emissions Into Value-Added Products By Catalytic Processes. J CO2 Util 3:74–92
Bakar WAWA, Zamani AH (2012) Sustainability: Green Chemistry. In: Titanium And Copper Oxide Based Catalysts For Simultaneous Reactions Of Methanation And Desulfurization In The Removal Of Sour Gases From Simulated Natural Gas. Universiti Teknologi Malaysia Press, Skudai, pp 225–243
Bakar WAWA, Ali R, Sulaiman N, Rahim HA (2010) Manganese oxide doped noble metals supported catalyst for carbon dioxide methanation reaction. J Sciantia Iranica Trans C Chem Chem Eng 17:115–123
Daniela CD, Da S, Sonia L, Luiz EP, Borges LE, Lucia GA (2012) The Ni/Zro2 Catalyst And The Methanation Of CO And CO2. Int J Hydrog Energy 37:8923–8928
Didi DA, Istadi I (2008) Optimization of methane conversion to liquid fuels over W-Cu/ZSM-5 catalysts by response surface methodology. J Nat Gas Chem 13:39–44
Dietert J, Kessier R, Morris M (2005) outlook for natural gas. Simmons and Company International
Gabriele C, Elsje AQ, Siglinda P (2013) Catalysis for CO2 conversion: a key technology for rapid introduction of renewable energy in the value chain of chemical industries. Energy Environ Sci 6:1711–1731
Haaland DP (1989) Experimental design in biotechnology. Marcel Dekker Inc, New York
Hasaneen R, Elsayed NA, Barrufet MA (2014) Analysis of the technical, microeconomic, and political impact of a carbon tax on carbon dioxide sequestration resulting from liquefied natural gas production. Clean Techn Environ Policy. doi: 10.1007/s10098-014-0735-6
Khuri AI, Cornell J (1987) A Response Surface: Design And Analysis. Dekker, New York
Kowalczyk Z, Stołecki K, Rarog-Pilecka W, Miskiewicz E, Wilczkowska E, Karpinski Z (2008) Supported ruthenium catalysts for selective methanation of Carbon oxides At very low Cox/H2 ratios. Appl Catal A 342:35–39
Myers RH, Montgometry DC (2002) Response surface methodology: process and product optimization using designed experiments. John Wiley & Sons, USA
Oh SW, Bang HY, Bae YC, Sun YK (2007) Effect of calcinations temperature on morphology, crystallinity and electrochemical properties of nanocrystalline metal oxides (Co3O4, Cuo and Nio) prepared via ultrasonic spray pyrolysis. J Power Sources 173:502–509
Panagiotopoulou P, Kondarides D, Verykios X (2008) Selective methanation of CO over supported noble metal catalysts: effects of the nature of the metallic phase on catalytic performance. Appl Catal A 344:45–54
Ratchprapa S, Naoto K, Chunshan S, Pattarapan P (2013) Bimetallic Fe–Co catalysts for CO2 hydrogenation to higher hydrocarbons. Journal of CO2 Utilization 2(3):102–106
Rosid MSJ, Bakar WAWA, Ali R (2014) Physicochemical Study Of Supported Cobalt-Lanthanum Oxide-Based Catalysts For Co2/H2 Methanation Reaction. Clean Techn Environ Policy. doi: 10.1007/s10098-014-0766-z
Sabatier P, Senderens JB (1902) New Synthesis of Methane. Compt. Rend 134:514–516
Sudhanshu S, Zhenpeng H, Peng Z, Eric WM, Horia M (2011) CO2 methanation on Ru-doped ceria. J Catal 278:297–309
Thouchprasitchai N, Luengnaruemitchai A, Pongstabodee S (2011) Statistical optimization by response surface methodology for water-gas shift reaction in a H2-rich stream over Cu–Zn–Fe composite-oxide catalysts. J Taiwan Inst Chem Eng 42:632–639
Tom ZJ (2011) Studies Say Natural Gas Has Its Own Environmental Problems. New York Edition
Zamani AH, Ali R, Bakar WAWA (2014) The investigation of Ru/Mn/Cu–Al2O3 oxide catalysts for CO2/H2 methanation in natural gas. J Taiwan Inst Chem Eng 4:143–12