[1] G.P. Towler, R. Mann, A.J.L. Serriere, C.M.D. Gabaude, Refinery hydrogen management:Cost analysis of chemically-integrated facilities, Ind. Eng. Chem. Res. 35(7) (1996) 2378-2388. [2] G. Liu, H. Li, X. Feng, C. Deng, Pinch location of the hydrogen network with purification reuse, Chin. J. Chem. Eng. 21(12) (2013) 1332-1340. [3] S. Wu, Y. Wang, X. Feng, Unified model of purification units in hydrogen networks, Chin. J. Chem. Eng. 22(6) (2014) 730-733. [4] X. Liang, L. Kang, Y. Liu, The flexible design for optimization and debottlenecking of multiperiod hydrogen networks, Ind. Eng. Chem. Res. 55(9) (2016) 2574-2583. [5] X. Wang, Z. Wang, H. Zhao, Z. Liu, A procedure for design of hydrogen networks with multiple contaminants, Chin. J. Chem. Eng. 23(9) (2015) 1536-1541. [6] L. Zhou, Z. Liao, J. Wang, B. Jiang, Y. Yang, Hydrogen sulfide removal process embedded optimization of hydrogen network, Int. J. Hydrog. Energy 37(23) (2012) 18163-18174. [7] X. Jia, G. Liu, Optimization of hydrogen networks with multiple impurities and impurity removal, Chin. J. Chem. Eng. 24(9) (2016) 1236-1242. [8] J. Mao, G. Liu, Y. Wang, D. Zhang, Integration of a hydrogen network with the vacuum gas oil hydrocracking reaction, Chem. Eng. Trans. 45(2015) 85-91. [9] B. Umana, A. Shoaib, N. Zhang, R. Smith, Integrating hydroprocessors in refinery hydrogen network optimisation, Appl. Energy 133(0) (2014) 169-182. [10] B. Umana, N. Zhang, R. Smith, Development of vacuum residue hydrodesulphurization-hydrocracking models and their integration with refinery hydrogen networks, Ind. Eng. Chem. Res. 55(8) (2016) 2391-2406. [11] H. Korsten, U. Hoffmann, Three-phase reactor model for hydrotreating in pilot trickle-bed reactors, AIChE J. 42(5) (1996) 1350-1360. [12] M.A. Rodríguez, J. Ancheyta, Modeling of hydrodesulfurization (HDS), hydrodenitrogenation (HDN), and the hydrogenation of aromatics (HDA) in a vacuum gas oil Hydrotreater, Energy Fuel 18(3) (2004) 789-794. [13] S.K. Bej, A.K. Dalai, J. Adjaye, Comparison of hydrodenitrogenation of basic and nonbasic nitrogen compounds present in Oil Sands derived heavy gas oil, Energy Fuel 15(2) (2001) 377-383. [14] F. Jiménez, V. Kafarov, M. Nuñez, Modeling of industrial reactor for hydrotreating of vacuum gas oils:simultaneous hydrodesulfurization, hydrodenitrogenation and hydrodearomatization reactions, Chem. Eng. J. 134(3) (2007) 200-208. [15] L.C. Castañeda, J.A.D. Muñoz, J. Ancheyta, Comparison of approaches to determine hydrogen consumption during catalytic hydrotreating of oil fractions, Fuel 90(12) (2011) 3593-3601. [16] D. Li, Hydrotreating Technology and Engineering, China Petrochemical Press, Beijing, 2004(In Chinese). [17] X. Liang, Y. Liu, Simulation of a wax oil hydrotreating unit and calculations of hydrogen consumption at off-design conditions, J. ECUST. 38(6) (2012) 718-723(In Chinese). [18] L. Wu, Y. Liu, Environmental impacts of hydrotreating processes for the production of clean fuels based on life cycle assessment, Fuel 164(2016) 352-360. [19] T.V. Choudhary, S. Parrott, B. Johnson, Unraveling heavy oil desulfurization chemistry:Targeting clean fuels, Environ. Sci. Technol. 42(6) (2008) 1944-1947. [20] R.M. Cotta, M.R. Wolf-Maciel, R.M. Filho, A cape of HDT industrial reactor for middle distillates, Comput. Chem. Eng. 24(2) (2000) 1731-1735. [21] S.M. Yui, E.C. Sanford, Kinetics of aromatics hydrogenation of bitumen-derived gas oils, Can. J. Chem. Eng. 69(5) (1991) 1087-1095. |