[1] J. Cheng, Q. Li, C. Yang, Y. Zhang, Z.-S. Mao, CFD-PBE simulation of a bubble column in OpenFOAM, Chin. J. Chem. Eng. 26(9) (2018) 1773-1784. [2] T. Zhang, T. Wang, J. Wang, Analysis and measurement of mass transfer in airlift loop reactors, Chin. J. Chem. Eng. 14(5) (2006) 604-610. [3] R. Guettel, U. Kunz, T. Turek, Reactors for Fischer-Tropsch synthesis, Chem. Eng. Technol. 31(5) (2008) 746-754. [4] A. Bakopoulos, Fluid dynamics and mixing in three-phase coal and oil residue hydrogenation sieve cascade reactors, Chem. Eng. Sci. 56(17) (2001) 5131-5145. [5] Z. Al-Qodah, W. Lafi, Modeling of antibiotics production in magneto three-phase airlift fermenter, Biochem. Eng. J. 7(1) (2001) 7-16. [6] Q. Huang, T. Liu, J. Yang, L. Yao, L. Gao, Evaluation of radiative transfer using the finite volume method in cylindrical photoreactors, Chem. Eng. Sci. 66(17) (2011) 3930-3940. [7] Q. Huang, L. Yao, T. Liu, J. Yang, Simulation of the light evolution in an annular photobioreactor for the cultivation of Porphyridium cruentum, Chem. Eng. Sci. 84(2012) 718-726. [8] Q. Huang, F. Jiang, L. Wang, C. Yang, Design of photobioreactors for mass cultivation of photosynthetic organisms, Engineering 3(3) (2017) 318-329. [9] J. Wen, P.L.H. Wei, L.P. Du, G.Z. Mao, The denitrification of nitrate contained wastewater in a gas-liquid-solidthree-phase flow airlift loop bioreactor, Biochem. Eng. J. 15(2) (2003) 153-157. [10] A. Pashkova, K. Svajda, R. Dittmeyer, Direct synthesis of hydrogen peroxide in a catalytic membrane contactor, Chem. Eng. J. 139(1) (2008) 165-171. [11] Y. Qi, M. Chen, S. Liang, W. Yang, J. Zhao, Micro-patterns of Au@SiO2 core-shell nanoparticles formed by electrostatic interactions, Appl. Surf. Sci. 254(6) (2008) 1684-1690. [12] J. Zhang, Z. Feng, X. Jia, M. Liang, Z. Men, Y. Zhang, Y. Bu, W. Li, High gradient magnetic separation of catalyst/wax mixture in Fischer-Tropsch synthesis:Modeling and experimental study, Chem. Eng. Sci. 99(2013) 28-37. [13] V.I. Savchenko, V.G. Dorokhov, I.A. Makaryan, I.V. Sedov, V.S. Arutyunov, Slurry reactor system with inertial separation for Fischer-Tropsch synthesis and other threephase hydrogenation processes, Can. J. Chem. Eng. 94(3) (2016) 518-523. [14] J.H. Anderson, Internal filter for Fischer-Tropsch catalyst/wax separation, USA Pat., US6652760(2003). [15] L. Hu, X. Tang, Z. Zhang, Z. Zhu, A slurry airlift loop reactor and continuous separation equipment, CN Pat., CN203018065(2013). [16] C.M. White, K.L. Jensen, P.C. Rohar, J.P. Tamilia, L.J. Shaw, R.F. Hickey, Separation of Fischer-Tropsch catalyst/wax mixtures using dense-gas and liquid extraction, Energy Fuels 10(5) (1996) 1067-1073. [17] H.R. Khakdaman, K. Sadaghiani, Separation of catalyst particles and wax from effluent of a Fischer-Tropsch slurry reactor using supercritical hexane, Chem. Eng. Res. Des. 85(2) (2007) 263-268. [18] C.M. White, M.S. Quiring, K.L. Jensen, R.F. Hickey, L.D. Gillham, Separation of catalyst from Fischer-Tropsch slurry, USA Pat. US5827903(1998). [19] S. Geng, Z. Li, H. Liu, C. Yang, F. Gao, T. He, Q. Huang, Hydrodynamics and mass transfer in a slurry external airlift loop reactor integrating mixing and separation, Chem. Eng. Sci. 211(2020) 115294. [20] C.B. Benham, D.L. Yakobson, M.S. Bohn, Catalyst/wax separation device for slurry Fischer-Tropsch reactor, USA Pat., US6068760(2000). [21] Y. Cheng, J. Zhu, Hydrodynamics and scale-up of liquid-solid circulating fluidized beds:Similitude method vs. CFD, Chem. Eng. Sci. 63(12) (2008) 3201-3211. [22] T. Yang, S. Geng, C. Yang, Q. Huang, Hydrodynamics and mass transfer in an internal airlift slurry reactor for process intensification, Chem. Eng. Sci. 184(2018) 126-133. [23] Q. Huang, C. Yang, G. Yu, Z.-S. Mao, 3-D simulations of an internal airlift loop reactor using a steady two-fluid model, Chem. Eng. Technol. 30(7) (2007) 870-879. [24] Q. Huang, C. Yang, G. Yu, Z.-S. Mao, Sensitivity study on modeling an internal airlift loop reactor using a steady 2D two-fluid model, Chem. Eng. Technol. 31(2008) 1790-1798. [25] Q. Huang, C. Yang, G. Yu, Z.-S. Mao, CFD simulation of hydrodynamics and mass transfer in an internal airlift loop reactor using a steady two-fluid model, Chem. Eng. Sci. 65(20) (2010) 5527-5536. [26] C. Bentifraouine, C. Xuereb, J.-P. Riba, Effect of gas liquid separator and liquid height on the global hydrodynamic parameters of an external loop airlift contactor, Chem. Eng. J. 66(2) (1997) 91-95. [27] W.A. Al-Masry, Effect of liquid volume in the gas-separator on the hydrodynamics of airlift reactors, J. Chem. Technol. Biotechnol. 74(10) (1999) 931-936. [28] W.A. Al-Masry, Influence of gas separator and scale-up on the hydrodynamics of external loop circulating bubble columns, Chem. Eng. Res. Des. 82(3) (2004) 381-389. [29] K.H. Choi, Effect of unaerated liquid height on hydrodynamic characteristics of an external-loop airlift reactor, Chem. Eng. Commun. 189(1) (2002) 23-39. [30] M. Gavrilescu, R.Z. Tudose, Effects of geometry on hydrodynamics in external-loop airlift reactors, Chem. Eng. Commun. 156(1) (1997) 89-113. [31] M. Liu, T. Zhang, T. Wang, W. Yu, J. Wang, Experimental study and modeling on liquid dispersion in external-loop airlift slurry reactors, Chem. Eng. J. 139(3) (2008) 523-531. [32] S. Sasaki, K. Uchida, K. Hayashi, A. Tomiyama, Effects of column diameter and liquid height on gas holdup in air-water bubble columns, Exp. Therm. Fluid Sci. 82(2017) 359-366. [33] X. Guo, L. Yao, Q. Huang, Aeration and mass transfer optimization in a rectangular airlift loop photobioreactor for the production of microalgae, Bioresour. Technol. 190(2015) 189-195. [34] Q. Huang, W. Zhang, C. Yang, Modeling transport phenomena and reactions in a pilot slurry airlift loop reactor for direct coal liquefaction, Chem. Eng. Sci. 135(2015) 441-451. [35] T. Han, H. Liu, H. Xiao, A. Chen, Q. Huang, Experimental study of the effects of apex section internals and conical section length on the performance of solid-liquid hydrocyclone, Chem. Eng. Res. Des. 145(2019) 12-18. [36] H. Liu, T. Han, Y. Wang, Q. Huang, Influence of new outlet configurations with baffle on hydrocyclone separation performance, CIESC J. 69(5) (2018) 2081-2088(in Chinese). [37] J. Tao, J. Huang, H. Xiao, C. Yang, Q. Huang, Influences of interstage height and superficial gas velocity in multistage internal airlift loop reactor on performance of mixing and mass transfer, CIESC J. 69(7) (2018) 2878-2889(in Chinese). [38] G.B. Wallis, One-dimensionalTwo-phase Flow, McGraw-Hill, New York, USA, 1969. [39] N. Bendjaballah, H. Dhaouadi, S. Poncin, N. Midoux, J.M. Hornut, G. Wild, Hydrodynamics and flow regimes in external loop airlift reactors, Chem. Eng. Sci. 54(21) (1999) 5211-5221. [40] H. Dhaouadi, S. Poncin, J.M. Hornut, G. Wild, Solid effects on hydrodynamics and heat transfer in an external loop airlift reactor, Chem. Eng. Sci. 61(4) (2006) 1300-1311. [41] M.H. Siegel, J.C. Merchuk, K. Schugerl, Airlift reactor analysis:Interrelationships between riser, downcomer, and gas-liquid separator behavior, including gas recirculation effects, AIChE J. 32(10) (1986) 1585-1596. [42] P.M. Wilkinson, A.P. Spek, L.L. Vandierendonck, Design parameters estimation for scale-up of high-pressure bubble columns, AIChE J. 38(4) (1992) 544-554. [43] C. Yang, Z.-S. Mao, Numerical Simulation of Multiphase Reactors with Continuous Liquid Phase, Academic Press, USA, 2014. [44] Q. Huang, W. Zhang, C. Yang, Z.-S. Mao, Characteristics of multiphase flow, mixing and transport phenomena in airlift loop reactor, CIESC J. 65(7) (2014) 2465-2473(in Chinese). [45] S. Orvalho, M. Hashida, M. Zednikova, P. Stanovsky, M.C. Ruzicka, S. Sasaki, A. Tomiyama, Flow regimes in slurry bubble column:Effect of column height and particle concentration, Chem. Eng. J. 351(2018) 799-815. [46] P.C. Mena, M.C. Ruzicka, F.A. Rocha, J.A. Teixeira, J. Drahos, Effect of solids on homogeneous-heterogeneous flow regime transition in bubble columns, Chem. Eng. Sci. 60(22) (2005) 6013-6026. [47] L. Luo, F. Liu, Y. Xu, J. Yuan, Hydrodynamics and mass transfer characteristics in an internal loop airlift reactor with different spargers, Chem. Eng. J. 175(2011) 494-504. [48] J. Tao, J. Huang, S. Geng, F. Gao, T. He, Q. Huang, Experimental investigation of hydrodynamics and mass transfer in a slurry multistage internal airlift loop reactor, Chem. Eng. J. 122769(2019). [49] M. Juraščík, M. Blažej, J. Annus, J. Markoš, Experimental measurements of volumetric mass transfer coefficient by the dynamic pressure-step method in internal loop airlift reactors of different scale, Chem. Eng. J. 125(2) (2006) 81-87. [50] H. Chaumat, A.M. Billet-Duquenne, F. Augier, C. Mathieu, H. Delmas, Mass transfer in bubble column for industrial conditions-Effects of organic medium, gas and liquid flow rates and column design, Chem. Eng. Sci. 60(22) (2005) 5930-5936. [51] D. Pjontek, V. Parisien, A. Macchi, Bubble characteristics measured using a monofibre optical probe in a bubble column and freeboard region under high gas holdup conditions, Chem. Eng. Sci. 111(2014) 153-169. [52] S. Rabha, M. Schubert, F. Grugel, M. Banowski, U. Hampel, Visualization and quantitative analysis of dispersive mixing by a helical static mixer in upward cocurrentgas-liquid flow, Chem. Eng. J. 262(2015) 527-540. [53] M. Simonnet, C. Gentric, E. Olmos, N. Midoux, Experimental determination of the drag coefficient in a swarm of bubbles, Chem. Eng. Sci. 62(3) (2007) 858-866. [54] C. Cao, Experimental Investigation and Numerical Simulation on Hydrodynamic Characteristics in Gas-Liquid-Solid Fluidized Beds, Ph. D. thesis, Tianjin University, 2005(in Chinese). |