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Dependence of Fluid Catalytic Cracking Unit Performance on H-Oil Severity, Catalyst Activity, and Coke Selectivity Stratiev D, Shishkova I, Ivanov M, Chavdarov I, Yordanov D Chemical Engineering & Technology, 43(11), 2266, 2020 |
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Highly active and stable MoWS2 catalysts in slurry phase hydrocracking of vacuum residue Jeong HR, Kim KD, Lee YK Journal of Catalysis, 390, 117, 2020 |
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Comparison of unsupported WS2 and MoS2 catalysts for slurry phase hydrocracking of vacuum residue Jeong HR, Lee YK Applied Catalysis A: General, 572, 90, 2019 |
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Accelerated pre-coking of NiMo/gamma-Al2O3 catalyst: Effect on the hydroprocessing activity of vacuum residue Kohli K, Prajapati R, Maity SK, Sau M, Sharma BK Fuel, 235, 437, 2019 |
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Active phase of dispersed MoS2 catalysts for slurry phase hydrocracking of vacuum residue Kim KD, Lee YK Journal of Catalysis, 369, 111, 2019 |
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Promotional effect of Co on unsupported MoS2 catalysts for slurry phase hydrocracking of vacuum residue: X-ray absorption fine structure studies Kim KD, Lee YK Journal of Catalysis, 380, 278, 2019 |
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Upgrading of vacuum residue in batch type reactor using Ni-Mo supported on goethite catalyst Sahu R, Song BJ, Jeon YP, Lee CW Journal of Industrial and Engineering Chemistry, 35, 115, 2016 |
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Simulating vacuum residue hydroconversion by means of Monte-Carlo techniques de Oliveira LP, Verstraete JJ, Kolb M Catalysis Today, 220, 208, 2014 |
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Hydrocracking of extra-heavy oil using Cs-exchanged phosphotungstic acid (CsxH3-xPW12O40, x=1-3) catalysts Eom HJ, Lee DW, Kim S, Chung SH, Hur YG, Lee KY Fuel, 126, 263, 2014 |
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Hydrocracking of vacuum residue into lighter fuel oils using nanosheet-structured WS2 catalyst Hur YG, Kim MS, Lee DW, Kim S, Eom HJ, Jeong G, No MH, Nho NS, Lee KY Fuel, 137, 237, 2014 |