Woo B, Choi K Y, Song K H. Melt polycondensation of bisphenol a polycarbonate by forced gas sweeping process (Ⅱ): Continuous rotating-disk reactor [J]. Industrial & Engineering Chemistry Research, 2001, 40 (16): 3459-3466
[2]
Sakurai A, Imai H, Takenaka Y, et al. Simulation of citric acid production by rotating disk contactor [J]. Biotechnol.Bioeng., 1997, 56 (6): 689-696
[3]
Li K, Yang C, Xu Y, et al. Effect of inorganic anions on Rhodamine B removal under visible light irradiation using Bi2O3/Ti rotating disk reactor [J]. Chemical Engineering Journal, 2012, 211/212: 208-215
[4]
Vasiliadou I A, Molina R, Martínez F, et al. Experimental and modeling study on removal of pharmaceutically active compounds in rotating biological contactors [J]. Journal of Hazardous Materials, 2014, 274: 473-482
[5]
Afanasiev K, Münch A, Wagner B. Thin film dynamics on a vertically rotating disk partially immersed in a liquid bath [J].Applied Mathematical Modelling, 2008, 32 (9): 1894-1911
[6]
Suor D, Ma J, Wang Z, et al. Enhanced power production from waste activated sludge in rotating-cathode microbial fuel cells: the effects of aquatic worm predation [J]. Chemical Engineering Journal, 2014, 248: 415-421
[7]
Bintanja H H J, van der Erve J J V M, Boelhouwer C. Oxygen transfer in a rotating disc treatment plant [J]. Water Research, 1975, 9 (12):1147-1153
[8]
Zeevalkink J A, Kelderman P, Boelhouwer C. Liquid film thickness in a rotating disc gas-liquid contactor [J]. Water Research, 1978, 12 (8): 577-581
[9]
Zeevalkink J A, Kelderman P, Visser D C, et al. Physical mass transfer in a rotating disc gas-liquid contactor [J]. Water Research, 1979, 13 (9): 913-919
[10]
Kubsad V, Chaudhari S, Gupta S K. Model for oxygen transfer in rotating biological contactor [J]. Water Research, 2004, 38 (20): 4297-4304
[11]
Wang Liangsheng (王良生). The liquid moment and mass transfer on the rotating disc-ring [D]. Shanghai: East China University of Science and Technology, 1999
[12]
Zhou Xianjue (周贤爵). Flow behavior of high viscosity fluid in a cage-like reactor [D]. Shanghai: East China University of Science and Technology, 2001
[13]
Danckwerts P V. Significance of liquid-film coefficients in gas absorption [J].Industrial & Engineering Chemistry, 1951, 43 (6): 1460-1467
[14]
Perlmutter D D. Surface-renewal models in mass transfer [J]. Chemical Engineering Science, 1961, 16 (3/4): 287-296
[15]
Harriott P. A random eddy modification of the penetration theory [J]. Chemical Engineering Science, 1962, 17 (3): 149-154
[16]
Koppel L B P R. Statistical models for surface renewal in heat and mass transfer (Ⅳ): Wall to fluidized bed heat transfer coefficients [J]. AIChE J.,1970, 16 (3): 464-471
[17]
Benjamin T F, Chung L T F A. General mathematical models of transport processes with and without chemical reactions [J]. Canadian Journal of Chemical Engineering, 1971, 3 (49): 340-345
[18]
Murakami Y, Fujimoto K, Kakimoto S, et al. On a high viscosity polymer finisher apparatus with two agitator axes having multidisks [J].Journal of Chemical Engineering of Japan, 1972, 5 (3): 257-263
[19]
Biesenberger J A, Sebastian D H. Principles of Polymerization Engineering [M]. New York: Wiley, 1983
[20]
Pan Qinmin (潘勤敏). The gas-liquid mass transfer and devolatilization during the process of polymerization [D]. Hangzhou: Zhejiang University, 1987
[21]
Dai Gance (戴干策), Zhou Xianjue (周贤爵). The liquid film moment on rotating disc-ring PET finishers [J].Chemical Engineering (China) (化学工程), 2002, 30 (S): 211-216
[22]
Banerjee S, Scott D S, Rhodes E. Mass transfer to falling wavy liquid films in turbulent flow [J].Industrial & Engineering Chemistry Fundamentals, 1968, 7 (1): 22-27
[23]
Jajuee B, Margaritis A, Karamanev D, et al. Application of surface-renewal-stretch model for interface mass transfer [J]. Chemical Engineering Science, 2006, 61 (12): 3917-3929
[24]
Hirt C W, Nichols B D. Volume of fluid (VOF) method for the dynamics of free boundaries [J]. Journal of Computational Physics, 1981, 39 (1): 201-225
[25]
Stewartson K. On the flow between two rotating coaxial disks [J].Mathematical Proceedings of the Cambridge Philosophical Society, 1953, 49 (2): 333-341
[26]
James O Wilkes. Fluid Mechanics for Chemical Engineers [M]. USA: Prentice Hall PTR, 1999: 280-285