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References

1 Baldi, S., & Yianneskis, M. (2004). On the quantification of energy dissipation in the impeller stream of a stirred vessel from fluctuating velocity gradient measurements.

Chemical Engineering Science, 59, pp. 2659-2671.

2 Brucato, A., Grisafi, F., & Montante, G. (1998). Particle drag coefficients in turbulent fluids. Chemical Engineering Science, 53, pp. 3295-3314.

3 Chen, R. C., & Fan, L.-S. (1992). Particle image velocimetry for characterizing the flow structure in three-dimensional gas-liquid-solid fluidized beds. Chemical Engineering Science, 47, pp. 3615-3622.

4 Chen, R. C., Reese, J., & Fan, L. S. (1994). Flow Structure in A 3-Dimensional Bubble-Column and 3-Phase Fluidized-Bed. Aiche Journal, 40, pp. 1093-1104.

5 Chen, R. C., & Kadambi, J. R. (1995). Discrimination between solid and liquid velocities in slurry flow using laser Doppler velocimeter. Powder Technology, 85, pp. 127-134.

6 Derksen, J. J., Doelman, M. S., & Van den Akker, H. E. A. (1999). Three-

dimensional LDA measurements in the impeller region of a turbulently stirred tank.

Experiments in Fluids, 27, pp. 522-532.

7 Escudie, R., & Line, A. (2003). Experimental Analysis of Hydrodynamics in a Radially Agitated Tank. Aiche Journal, 49, pp. 585-603.

8 Escudie, R., Bouyer, D., & Line, A. (2004). Characterization of trailing vortices generated by a Rushton turbine. Aiche Journal, 50, pp. 75-86.

9 Galletti, C., Brunazzi, E., Pintus, S., Paglianti, A., & Yianneskis, M. (2004). A study of Reynolds stresses, triple products and turbulence states in a radially stirred tank with 3-D laser anemometry. Chemical Engineering Research & Design, 82, pp.

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10 Gore, R. A., & Crowe, C. T. (1989). Effect of particle size on modulating turbulent intensity. International Journal of Multiphase Flow, 15, pp. 279-285.

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11 Guiraud, P., Costes, J., & Bertrand, J. (1997). Local measurements of fluid and particle velocities in a stirred suspension. Chemical Engineering Journal, 68, pp. 75- 86.

12 Hagiwara, Y., Murata, T., Tanaka, M., & Fukawa, T. (11-6-2002). Turbulence modification by the clusters of settling particles in turbulent water flow in a horizontal duct. Powder Technology, 125, pp. 158-167.

13 Hasan, O. S., Alvarez, M. M., Muzzio, F. J., & Buettner, H. M. (1999).

Characterization of suspension flows using particle image velocimetry (PIV).

Advanced Technologies for Fluid-Particle Systems, 95, pp. 90-94.

14 Hockey, R. M., & Nouri, J. M. (1996). Turbulent flow in a baffled vessel stirred by a 60[deg] pitched blade impeller. Chemical Engineering Science, 51, pp. 4405-4421.

15 Jaworski, Z., Nienow, A. W., Koutsakos, E., Dyster, K., & Bujalski, W. (1991). An Lda Study of Turbulent-Flow in A Baffled Vessel Agitated by A Pitched Blade Turbine.

Chemical Engineering Research & Design, 69, pp. 313-320.

16 Kresta, S. M., & Wood, P. E. (1993). The flow field produced by a pitched blade turbine: Characterization of the turbulence and estimation of the dissipation rate.

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17 Kresta, S. M., & Wood, P. E. (1993). The Mean Flow Field Produced by A 45- Degrees Pitched Blade Turbine - Changes in the Circulation Pattern Due to Off Bottom Clearance. Canadian Journal of Chemical Engineering, 71, pp. 42-53.

18 Lee, K. C., & Yianneskis, M. (1998). Turbulence properties of the impeller stream of a Rushton turbine. Aiche Journal, 44, pp. 13-24.

19 Levins, D. M., & Glastonbury, J. R. (1972). Application of Kolmogorofff's theory to particle--liquid mass transfer in agitated vessels. Chemical Engineering Science, 27, pp. 537-543.

20 Magelli, F., Fajner, D., Nocentini, M., & Pasquali, G. (1990). Solid distribution in vessels stirred with multiple impellers. Chemical Engineering Science, 45, pp. 615- 625.

21 Mazzi, F., & Bernardini, G. P. (1988). Fondamenti di cristallografia e ottica cristallografica, 4th,

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22 Nienow, A. W. (1968). Suspension of solid particles in turbine agitated baffled vessels. Chemical Engineering Science, 23, pp. 1453-1459.

23 Nienow, A. W. (1969). Dissolution Mass Transfer in a Turbine Agitated Baffled Vessel. The Canadian Journal of Chemical Engineering, 47, pp. 248-258.

24 Nienow, A. W., Bujac, P. D. B., & Mullin, J. W. (1972). Slip velocities in agitated vessel crystallisers. Journal of Crystal Growth, 13-14, pp. 488-492.

25 Nienow, A. W., & Bartlett, R. (1974). The Measurement and Prediction of Particle- Fluid Slip Velocities in Agitated Vessel.

26 Nienow, A. W. (1975). Agitated vessel particle-liquid mass transfer: A comparison between theories and data. The Chemical Engineering Journal, 9, pp. 153-160.

27 Northrup, M. A., Kulp, T. J., Angel, S. M., & Pinder, G. F. (1993). Direct measurement of interstitial velocity field variations in a porous medium using fluorescent-particle image velocimetry. Chemical Engineering Science, 48, pp. 13- 21.

28 Perry, R. H., & Green, D. W. (1997). Fluid and Particle Dynamics. In: McGraw-Hill, Perry's Chemical Engineers' Handbook (7th Edition) 7th, Chapter 6, pp. 6-50-6-51.

29 Perry, R. H., & Green, D. W. (1997). Liquid-Solid Operations and Equipment. In:

McGraw-Hill, Perry's Chemical Engineers' Handbook (7th Edition) 7th, Chapter 18, pp. 18-10-18-11.

30 Peurrung, L. M., Rashidi, M., & Kulp, T. J. (1995). Measurement of porous medium velocity fields and their volumetric averaging characteristics using particle tracking velocimetry. Chemical Engineering Science, 50, pp. 2243-2253.

31 Schaefer, M., Yianneskis, M., Waechter, P., & Durst, F. (1998). Trailing vortices around a 45° pitched-blade impeller. Aiche Journal, 44, pp. 1233-1246.

32 Sharp, K. V., & Adrian, R. J. (2001). PIV Study of Small-Scale Flow Structure around a Rushton Turbine. Aiche Journal, 47, pp. 766-778.

33 Stoots, C. M., & Calabrese, R. V. (1995). Mean velocity field relative to a rushton turbine blade. Aiche Journal, 41, pp. 1-11.

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35 Tasic, A. Z., Djordjevic, B. D., Grozdanic, D. K., & Radojkovic, N. (1992). Use of Mixing Rules in Predicting Refractive-Indexes and Specific Refractivities for Some Binary-Liquid Mixtures. Journal of Chemical and Engineering Data, 37, pp. 310-313.

36 Tatterson, G. B., Yuan, H. H. S., & Brodkey, R. S. (1980). Stereoscopic visualization of the flows for pitched blade turbines. Chemical Engineering Science, 35, pp. 1369- 1375.

37 van't Riet, K., & Smith, J. M. (1973). The behaviour of gas--liquid mixtures near Rushton turbine blades. Chemical Engineering Science, 28, pp. 1031-1037.

38 van't Riet, K., & Smith, J. M. (1975). The trailing vortex system produced by Rushton turbine agitators. Chemical Engineering Science, 30, pp. 1093-1105.

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40 Van Der Molen, K., & Van Maanen, H. R. E. (1978). Laser-Doppler measurements of the turbulent flow in stirred vessels to establish scaling rules. Chemical Engineering Science, 33, pp. 1161-1168.

41 Virdung, T., & Rasmuson, A. (2004). PIV Measurements of Solid-Liquid Mixing at Elevated Concentrations.

42 Wang, D. C., & Khalili, A. (2002). Flow Visualization and Quantitative Measurements inside Porous Media by Particle Image Velocimetry.

43 Yianneskis, M., & Whitelaw, J. H. (1993). On the structure of the trailing vortices around Rushton turbine blades. Chemical Engineering Research & Design, 71, pp.

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45 Zwietering, T. (1958). Suspending of solid particles in liquid by agitators.Chemical Engineering Science, 8, pp. 244-253.

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