[1] Z.M. Gao, Y.C.Wang, L.T. Shi, J.F. Fu, Theoretical and experimental studies on bubble diameter and gas holdup in aerated stirred tanks, Chin. J. Chem. Eng. 4 (1996) 283-289.
[2] D. Birch, N. Ahmed, Gas sparging in vessels agitated by mixed flow impellers, Powder Technol. 88 (1996) 33-38.
[3] M. Cooke, P.J. Heggs, Advantages of the hollow (concave) turbine for multi-phase agitation under intense operating conditions, Chem. Eng. Sci. 60 (2005) 5529-5543.
[4] Y.Y. Bao, L. Chen, Z.M. Gao, J.F. Chen, Local void fraction and bubble size distributions in cold-gassed and hot-sparged stirred reactors, Chem. Eng. Sci. 65 (2010) 976-984.
[5] S.D. Shewale, A.B. Pandit, Studies inmultiple impeller agitated gas-liquid contactors, Chem. Eng. Sci. 61 (2006) 489-504.
[6] P. Davide, M. Franco, Analysis of the fluid dynamic behavior of the liquid and gas phases in reactors stirred with multiple hydrofoil impellers, Ind. Eng. Chem. Res. 39 (2000) 3202-3211.
[7] Y.Y. Bao, L. Chen, Z.M. Gao, X.N. Zhang, J.M. Smith, N.F. Kirkby, Temperature effects on gas dispersion and solid suspension in a three-phase stirred reactor, Ind. Eng. Chem. Res. 47 (2008) 4270-4277.
[8] Y.Y. Bao, X.N. Zhang, Z.M. Gao, L. Chen, J.F. Chen, J.M. Smith, N.F. Kirkby, Gas dispersion and solid suspension in a hot sparged multi-impeller stirred tank, Ind. Eng. Chem. Res. 47 (2008) 2049-2055.
[9] Z.M. Gao, L.T. Shi, Effect of temperature on gas hold-up in aerated stirred tanks, Chin. J. Chem. Eng. 11 (2003) 204-207.
[10] A.D. Harvey, S.P. Wood, D.E. Leng, Experimental and computational study of multiple impeller flows, Chem. Eng. Sci. 52 (1997) 1479-1491.
[11] W.J. Wang, Z.S.Mao, Numerical simulation of gas-liquid flow in a stirred tankwith a Rushton impeller, Chin. J. Chem. Eng. 10 (2002) 385-395.
[12] G.L. Lane, M.P. Schwarz, G.M. Evans, Numerical modeling of gas-liquid flow in stirred tanks, Chem. Eng. Sci. 60 (2005) 2203-2214.
[13] A. Bakker, H.A. Akker, A computational model for the gas-liquid flow in a stirred vessel, Chem. Eng. Res. Des. 72 (1994) 594-606.
[14] Q.H. Zhang, Y.M. Yong, Z.S. Mao, C. Yang, C.J. Zhao, Experimental determination and numerical simulation of mixing time in a gas-liquid stirred tank, Chem. Eng. Sci. 64 (2009) 2926-2933.
[15] A.R. Khopkar, P.A. Tanguy, CFD simulation of gas-liquid flows in stirred vessel equipped with dual Rushton turbines: Influence of parallel, merging and diverging flow configurations, Chem. Eng. Sci. 63 (2008) 3810-3820.
[16] J. Min, Y.Y. Bao, L. Chen, Z.M. Gao, J.M. Smith, Numerical simulation of gas dispersion in an aerated stirred reactor with multiple impellers, Ind. Eng. Chem. Res. 47 (2008) 7112-7117.
[17] Y. Sato, K. Sekoguchi, Liquid velocity distribution in two-phase bubble flow, Int. J. Multiphase Flow 2 (1975) 79-95.
[18] A.R. Khopkar, A.R. Rammohan, V.V. Ranade, M.P. Dudukovic, Gas-liquid flow generated by a Rushton turbine in stirred vessel: CARPT/CT measurements and CFD simulations, Chem. Eng. Sci. 60 (2005) 2215-2229.
[19] R. Clift, J.R. Grace, M.E. Weber, Bubbles, Drops, and Particles, Dover Publications, 2005.
[20] M. Lopez de Bertodano, R.T. Lahey Jr., O.C. Jones, Phase distribution in bubbly twophase flows in vertical ducts, Int. J. Multiphase Flow 20 (1994) 805-818.
[21] H. Luo, H.F. Svendsen, Theoretical model for drop and bubble breakup in turbulent dispersions, AIChE J. 42 (1996) 1225-1233.
[22] M.J. Prince, H.W. Blanch, Bubble coalescence and break-up in air-sparged bubble columns, AIChE J. 36 (1990) 1485-1499.
[23] W.B. Li, Experimental Investigation of Micromixing and Macromixing in a Multiphase Stirred Tank(Ph.D. Thesis) Beijing University of Chemical Technology, Beijing, 2013. (in Chinese).
[24] W.B. Li, X.Y. Geng, Y.Y. Bao, Z.M. Gao, Micromixing characteristics in a gas-liquid- solid stirred tank with settling particles, Chin. J. Chem. Eng. 23 (2015) 461-470. |