1 Chen, Y.S., Liu, H.S., “Absorption of VOCs in a rotating packed bed”, Ind. Eng. Chem. Res., 41 (6), 1583-1588 (2002).
2 Lin, C.C., Liu, W.T., Tan, C.S., “Removal of carbon dioxide by absorption in a rotating packed bed”, Ind. Eng. Chem. Res., 42 (11), 2381-2386 (2003).
3 Cheng, H.H., Tan, C.S., “Reduction of CO2 concentration in a zinc/air battery by absorption in a rotating packed bed”, J. Power Sources, 160 (2), 1431-1436 (2006).
4 Tan, C.S., Chen, J.E., “Absorption of carbon dioxide with piperazine and its mixtures in a rotating packed bed”, Sep. Purif. Technol., 49 (2), 174-180 (2006).
5 Jassim, M.S., Rochelle, G., Eimer, D., Ramshaw, C., “Carbon dioxide absorption and desorption in aqueous monoethanolamine solutions in a rotating packed bed”, Ind. Eng. Chem. Res., 46 (9), 2823-2833 (2007).
6 Chen, Y.S., Hsu, Y.C., Lin, C.C., Tai, C.Y., Liu, H.S., “Volatile organic compounds absorption in a cross-flow rotating packed bed”, Environ. Sci. Technol., 42 (7), 2631-2636 (2008).
7 Singh, S.P., “Stripping of volatile organic compounds from groundwater:An evaluation of a centrifugal vapor-liquid contactor”, Ph. D. Thesis, the University of Tennessee, USA (1989).
8 Liu, H.S., Lin, C.C., Wu, S.C., Hsu, H.W., “Characteristics of a rotating packed bed”, Ind. Eng. Chem. Res., 35 (10), 3590-3586 (1996).
9 Lin, C.C., Chen, B.C., Chen, Y.S., Hsu, S.K., “Feasibility of a cross-flow rotating packed bed in removing carbon dioxide from gaseous streams”, Sep. Purif. Technol., 62 (3), 507-512 (2008).
10 Ramshaw, C., “Higee distillations-An example of process intensification”, Chem. Eng., 389, 13-14 (1983).
11 Kelleher, Y., Fair, J.R., “Distillation studies in a high-gravity contactor”, Ind. Eng. Chem. Res., 35 (12), 4646-4655 (1996).
12 Li, X.P., Liu, Y.Z., Li, Z.Q., Wang, X.L., “Continuous distillation experiment with rotating packed bed”, Chin. J. Chem. Eng., 16 (5), 656-662 (2008).
13 Chen, J.F., Wang, Y.H., Guo, F., Zheng, C., “Synthesis of nanoparticles with novel technology:High-gravity reactive precipitation”, Ind. Eng. Chem. Res., 39 (4), 948-951 (2000).
14 Chen, J.F., Shao, L., “Mass production of nanoparticles by high gravity reactive precipitation technology with low cost”, Chin. Particuol., 1 (2), 64-69 (2003).
15 Wang, M., Zou, H.K., Shao, L., Chen, J.F., “Controlling factors and mechanism of preparing needlelike CaCO3 under high-gravity environment”, Powder Technol., 142 (3), 166-174 (2004).
16 Shen, Z.G., Chen, J.F., Yun, J., “Preparation and characterizations of uniform nanosized BaTiO3 crystallites by the high-gravity reactive precipitation method”, J. Crystal Growth, 267 (2), 325-335 (2004).
17 Shao, L., Chen, J.F., “Synthesis and application of nanoparticles by a high gravity method”, Chin. Particuol., 3 (3), 134-135 (2005).
18 Wang, D.G., Guo, F., Chen, J.F., Liu, H., Zhang, Z.T., “Preparation of nano aluminium trihydroxide by high gravity reactive precipitation”, Chem. Eng. J., 121 (2), 109-114 (2006).
19 Tai, C.Y., Tai, C.T., Liu, H.S., “Synthesis of submicron barium carbonate using a high-gravity technique”, Chem. Eng. Sci., 61 (22), 7479-7486 (2006).
20 Chen, J.F., Zhou, M.Y., Shao, L., Wang, Y.Y., Yun, J., “Feasibility of preparing nanodrugs by high-gravity reactive precipitation”, International J. Pharm., 269 (1), 267-274 (2004).
21 Chen, J.F., Zhang, J.Y., Shen, Z.G., Zhong, J., Yun, J., “Preparation and characterization of amorphous cefuroxime axetil drug nanoparticles with novel technology:High-gravity antisolvent precipitation”, Ind. Eng. Chem. Res., 45 (25), 8723-8727 (2006).
22 Chiou, H., Li, L., Hu, T.T., Chan, H.K., Chen, J.F., Yun, J., “Production of salbutamol sulfate for inhalation by high-gravity controlled antisolvent precipitation”, Int. J. Pharm., 331 (1), 93-98 (2007).
23 Hu, T.T., Wang, J.X., Shen, Z.G., Chen, J.F., “Engineering of drug nanoparticles by HGCP for pharmaceutical applications”, Particuol., 6 (4), 239-251 (2008).
24 Munjal, S., Dudukovic, M.P., Ramachandran, P.A., “Mass transfer in rotating packed beds (II) Development of gas-liquid and liquid-solid mass-transfer coefficients”, Chem. Eng. Sci., 44 (14), 2256-2257 (1989).
25 Zhang, J., “Experiment and modeling of liquid flow and mass transfer in rotating packed bed”, Ph.D. Thesis, Beijing University of Chemical Technology, Beijing, 1996. (in Chinese)
26 Guo, K., Guo, F., Feng, Y.D., Chen, J.F., Zheng, C., Gardner, N.C., “Synchronous visual and RTD study on liquid flow in rotating packed bed contactor”, Chem. Eng. Sci., 55 (9), 1699-1706 (2000).
27 Danckwerts, P.V., “The effect of incomplete mixing on homogeneous reactions”, Chem. Eng. Sci., 8 (2), 93-101 (1958).
28 Garside, J., Tavare, N.S., “Mixing, reaction and precipitation:Limits of micromixing in an MSMPR crystallizer”, Chem. Eng. Sci., 40 (8), 1485-1493 (1985).
29 Baldyga, J., Podgorska, W., Pohorecki, R., “Mixing-precipitation model with application to double feed semibatch precipitation”, Chem. Eng. Sci., 50 (8), 1281-1300 (1995).
30 Chen, J.F., Zheng, C., Chen, G.T., “Interaction of macroand micromixing on particle size distribution in reactive precipitation”, Chem. Eng. Sci., 51 (10), 1957-1966 (1996).
31 Falk, L., Schaer, E., “A PDF modeling of precipitation reactors”, Chem. Eng. Sci., 56 (7), 2445-2457 (2001).
32 Yang, H.J., Chu, G.W., Zhang, J.W., Shen, Z.G., Chen, J.F., “Micromixing efficiency in a rotating packed bed:Experiments and simulation”, Ind. Eng. Chem. Res., 44 (20), 7730-7737 (2005).
33 Curl, R.L., “Disperse phase mixing (I) Theory and effects in simple reactors”, AIChE J., 9 (2), 175-181 (1963).
34 Dirksen, J.A., Ring, T.A., “Fundamentals of crystallization:Kinetic effects on particle size distributions and morphology”, Chem. Eng. Sci., 46 (10), 2389-2427 (1991).
35 Nielsen, A.E., Kinetics of Precipitation, Macmillan Co., New York (1964).
36 Randolph, A.D., Larson, M.A., Theory of Particulate Processes, Academic Press, New York (1988).
37 Schaer, E., Guichardon, P., Falk, L., Plasari E., “Determination of local energy dissipation rates in impinging jets by a chemical reaction method”, Chem. Eng. J., 72 (2), 125-138 (1999). |