Maximizing production of high-quality tar from catalytic upgrading of lignite pyrolysis volatiles over Ni-xCe/Y under CH4/CO2 atmosphere
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M. Zhong | He Yang | Haoquan Hu | Lijun Jin | Yang Li | Jiaofei Wang | Baoyong Wei
[1] X. Shu,et al. Catalytic reforming of volatiles from co-pyrolysis of lignite blended with corn straw over three iron ores: Effect of iron ore types on the product distribution, carbon-deposited iron ore reactivity and its mechanism , 2021 .
[2] C. H. Kim,et al. Roles of noble metals (M = Ag, Au, Pd, Pt and Rh) on CeO2 in enhancing activity toward soot oxidation: Active oxygen species and DFT calculations. , 2021, Journal of hazardous materials.
[3] Jie Wang,et al. The evolution of catalytically active calcium catalyst during steam gasification of lignite char , 2021 .
[4] Shiqiu Gao,et al. High-quality tar production from coal in an integrated reactor: Rapid pyrolysis in a drop tube and downstream volatiles upgrading over char in a moving bed , 2021 .
[5] Ming Liu,et al. Thermodynamic study of a novel lignite poly-generation system driven by solar energy , 2021 .
[6] P. Costa,et al. Understanding of tri-reforming of methane over Ni/Mg/Al hydrotalcite-derived catalyst for CO2 utilization from flue gases from natural gas-fired power plants , 2020 .
[7] Haoquan Hu,et al. In-situ catalytic cracking of coal pyrolysis tar coupled with steam reforming of ethane over carbon based catalyst , 2020, Fuel Processing Technology.
[8] Zhennan Han,et al. Gentle hydrotreatment of shale oil in fixed bed over Ni-Mo/Al2O3 for upgrading , 2020 .
[9] Yongli Yan,et al. Combined Process of Hydrocracking and Hydrofining of Coal Tar , 2020 .
[10] He Yang,et al. Enhanced production of light tar from integrated process of in-situ catalytic upgrading lignite tar and methane dry reforming over Ni/mesoporous Y , 2020 .
[11] A. Ishihara,et al. Catalytic cracking of C12-C32 hydrocarbons by hierarchical β- and Y-zeolite-containing mesoporous silica and silica-alumina using Curie point pyrolyzer , 2020 .
[12] H. Shui,et al. Production of phenolic chemicals from hydrolysis lignin via catalytic fast pyrolysis , 2020 .
[13] A. A. Jalil,et al. Dry reforming of methane to hydrogen-rich syngas over robust fibrous KCC-1 stabilized nickel catalyst with high activity and coke resistance , 2020 .
[14] Hao Yu,et al. Low Temperature CO2 Reforming with Methane Reaction over CeO2-Modified Ni@SiO2 Catalysts. , 2020, ACS applied materials & interfaces.
[15] Jing-Pei Cao,et al. Catalytic Conversion of Coal and Biomass Volatiles: A Review , 2020, Energy & Fuels.
[16] Hideki Yamamoto,et al. Decomposition of tetrafluoromethane by reaction with CaO-enhanced zeolite , 2020, Journal of Environmental Chemical Engineering.
[17] En-chen Jiang,et al. Gas-phase hydrodeoxygenation of guaiacol over Ni-based HUSY zeolite catalysts under atmospheric H2 pressure , 2020 .
[18] Jing-Pei Cao,et al. Catalytic Fast Pyrolysis of Sewage Sludge over HZSM-5: A Study of Light Aromatics, Coke, and Nitrogen Migration under Different Atmospheres , 2020 .
[19] L. Pino,et al. CO and CO2 methanation over Ni catalysts supported on CeO2, Al2O3 and Y2O3 oxides , 2020 .
[20] D. Anggoro,et al. Enhancing Brønsted and Lewis Acid Sites of the Utilized Spent RFCC Catalyst Waste for the Continuous Cracking Process of Palm Oil to Biofuels , 2020 .
[21] Changhai Liang,et al. Promotional effect of Co and Ni on MoO3 catalysts for hydrogenolysis of dibenzofuran to biphenyl under atmospheric hydrogen pressure , 2020 .
[22] A. Gurlo,et al. Improving the physicochemical properties of Y zeolite for catalytic cracking of heavy oil via sequential steam-alkali-acid treatments , 2020 .
[23] Qingqing Hao,et al. Ni-based catalysts prepared for CO2 reforming and decomposition of methane , 2020 .
[24] Jing-Pei Cao,et al. In Situ Upgrading of Cellulose Pyrolysis Volatiles Using Hydrofluorinated and Platinum-Loaded HZSM-5 for High Selectivity Production of Light Aromatics , 2019, Industrial & Engineering Chemistry Research.
[25] Haoquan Hu,et al. In-situ catalytic upgrading of coal pyrolysis tar over activated carbon supported nickel in CO2 reforming of methane , 2019, Fuel.
[26] Jun Zhou,et al. Temperature-rising characteristics and product analysis of low-rank coal microwave pyrolysis under CH4 atmosphere , 2019, Journal of Analytical and Applied Pyrolysis.
[27] H. Yarranton,et al. Applicability of Simulated Distillation for Heavy Oils , 2019, Energy & Fuels.
[28] Hongbo Zeng,et al. Mechanistic Investigation on Catalytic Deoxygenation of Phenol as a Model Compound of Biocrude Under Methane , 2018, ACS Sustainable Chemistry & Engineering.
[29] Qingqing Hao,et al. Methane decomposition over Ni/carbon catalysts prepared by selective gasification of coal char , 2018, Energy Conversion and Management.
[30] K. Góra-Marek,et al. Nickel loaded zeolites FAU and MFI: Characterization and activity in water-phase hydrodehalogenation of TCE , 2018, Applied Catalysis A: General.
[31] Haoquan Hu,et al. In-situ catalytic upgrading of coal pyrolysis tar coupled with CO2 reforming of methane over Ni-based catalysts , 2018, Fuel Processing Technology.
[32] Jing-Pei Cao,et al. Catalytic upgrading of pyrolysis vapors from lignite over mono/bimetal-loaded mesoporous HZSM-5 , 2018 .
[33] Bo Xiao,et al. Catalytic cracking of biomass tar over char supported nickel catalyst , 2018 .
[34] Haoquan Hu,et al. In Situ Catalytic Upgrading of Coal Pyrolysis Tar over Carbon-Based Catalysts Coupled with CO2 Reforming of Methane , 2017 .
[35] L. García,et al. Catalytic steam reforming of the aqueous fraction of bio-oil using Ni-Ce/Mg-Al catalysts , 2017 .
[36] Haoquan Hu,et al. Integrated process of coal pyrolysis with CO2 reforming of methane by spark discharge plasma , 2017 .
[37] Jing-Pei Cao,et al. In situ upgrading of Shengli lignite pyrolysis vapors over metal-loaded HZSM-5 catalyst , 2017 .
[38] Hongbo Zeng,et al. Methane Upgrading of Acetic Acid as a Model Compound for a Biomass-Derived Liquid over a Modified Zeolite Catalyst , 2017 .
[39] Chunyan Tu,et al. Hierarchical Zeolite Y with Full Crystallinity: Formation Mechanism and Catalytic Cracking Performance , 2017 .
[40] K. Xie,et al. The catalytic methanation of coke oven gas over Ni-Ce/Al2O3 catalysts prepared by microwave heating: Effect of amorphous NiO formation , 2015 .
[41] Lu Yao,et al. Synthesis gas production from CO2 reforming of methane over Ni–Ce/SiO2 catalyst: The effect of calcination ambience , 2013 .
[42] C. Daza,et al. Co-precipitated Ni–Mg–Al catalysts containing Ce for CO2 reforming of methane , 2011 .
[43] Chenglin Sun,et al. Characterization of coke deposited on spent catalysts for long-chain-paraffin dehydrogenation , 2010 .
[44] J. Zhao,et al. Aqueous hydrogenolysis of glycerol over Ni–Ce/AC catalyst: Promoting effect of Ce on catalytic performance , 2010 .
[45] Jianwei Wang,et al. Catalytic performance and characterization of Ni-doped HZSM-5 catalysts for selective trimerization of n-butene , 2009 .
[46] W. Maier,et al. Mechanistic study of the unusual catalytic properties of a new NiCe mixed oxide for the CO2 reforming of methane , 2007 .