268
M. Gleiss and H. Nirschl
14. Lerche, D.: Dispersion stability and particle characterization by sedimentation kinetics in a
centrifugal Field. J. Dispers. Sci. Technol. 23, 37–41 (2007)
15. Detloff, T., Sobisch, T., Lerche, D.: Particle size distribution by space or time dependent
extinction profiles obtained by analytical centrifugation. Powder Technol. 174, 50–55 (2007)
16. Anlauf, H.: Recent developments in centrifuge technology. Sep. Purif. Technol. 58, 242–246
(2007). https://doi.org/10.1016/j.seppur.2007.05.012
17. Beiser, M., Bickert, G., Scharfer, P.: Comparison of sedimentation behavior and structure
analysis with regard to destabilization processes in suspensions. Chem. Eng. Technol. 27,
1084–1088 (2004). https://doi.org/10.1002/ceat.200403252
18. Richardson, J.F., Zaki, W.N.: Sedimentation and fluidisation: Part I. Chem. Eng. Res. Des. 75,
82–100 (1997)
19. Michaels, A., Bolger, J.: Settling rates and sediment volumes of flocculated kaolin suspensions.
Ind. Eng. Chem. Fundam. 1, 24–33 (1962)
20. Gleiß, M.: Dynamische Simulation der Mechanischen Flüssigkeitsabtrennung in Vollmantelzentrifugen, KIT Scientific Publishing (2018)
21. Stickland, A.D.: Solid-liquid separation in the water and wastewater industries. University of
Melbourne (2005)
22. Spelter, L.E., Nirschl, H., Stickland, A.D., Scales, P.J.: Pseudo two-dimensional modeling
of sediment build-up in centrifuges: a compartment approach using compressional rheology.
AIChE J. 59, 3843–3855 (2013)
23. Usher, S.P., Studer, L.J., Wall, R.C., Scales, P.J.: Characterisation of dewaterability from
equilibrium and transient centrifugation test data. Chem. Eng. Sci. 93, 277–291 (2013)
24. Green, M.D., Eberl, M., Landman, K.A.: Compressive yield stress of flocculated suspensions:
determination via experiment. AIChE J. 42, 2308–2318 (1996)
25. Mladenchev, T., Tomas, J.: Modellierung der Filtrations- und Konsoldierungsdynamik von
geflockten und nicht geflockten feindispersen Kalksteinsuspensionen. Chemie Ing. Tech. 76,
1814–1818 (2004)
26. Erk, B., Luda, A.: Beeinflussung der Schlammkompression in Vollmantelzentrifugen. Chemie
Ing. Tech. 75, 1250–1254 (2003). https://doi.org/10.1002/cite.200303260
27. Le Moullec, Y., Potier, O., Gentric, C., Leclerc, J.: Flow field and residence time distribution
simulation of a cross-flow gas-liquid wastewater treatment reactor using CFD. Chem. Eng. Sci.
63, 2436–2449 (2008)
28. Gleiss, M., Nirschl, H.: Modeling separation processes in decanter centrifuges by considering
the sediment build-up. Chem. Eng. Technol. 38, 1873–1882 (2015)
29. Stahl, S., Spelter, L.E., Nirschl, H.: Investigations on the separation efficiency of tubular bowl
centrifuges. Chem. Eng. Technol. 31, 1577–1583 (2008)
M. Gleiss and H. Nirschl
14. Lerche, D.: Dispersion stability and particle characterization by sedimentation kinetics in a
centrifugal Field. J. Dispers. Sci. Technol. 23, 37–41 (2007)
15. Detloff, T., Sobisch, T., Lerche, D.: Particle size distribution by space or time dependent
extinction profiles obtained by analytical centrifugation. Powder Technol. 174, 50–55 (2007)
16. Anlauf, H.: Recent developments in centrifuge technology. Sep. Purif. Technol. 58, 242–246
(2007). https://doi.org/10.1016/j.seppur.2007.05.012
17. Beiser, M., Bickert, G., Scharfer, P.: Comparison of sedimentation behavior and structure
analysis with regard to destabilization processes in suspensions. Chem. Eng. Technol. 27,
1084–1088 (2004). https://doi.org/10.1002/ceat.200403252
18. Richardson, J.F., Zaki, W.N.: Sedimentation and fluidisation: Part I. Chem. Eng. Res. Des. 75,
82–100 (1997)
19. Michaels, A., Bolger, J.: Settling rates and sediment volumes of flocculated kaolin suspensions.
Ind. Eng. Chem. Fundam. 1, 24–33 (1962)
20. Gleiß, M.: Dynamische Simulation der Mechanischen Flüssigkeitsabtrennung in Vollmantelzentrifugen, KIT Scientific Publishing (2018)
21. Stickland, A.D.: Solid-liquid separation in the water and wastewater industries. University of
Melbourne (2005)
22. Spelter, L.E., Nirschl, H., Stickland, A.D., Scales, P.J.: Pseudo two-dimensional modeling
of sediment build-up in centrifuges: a compartment approach using compressional rheology.
AIChE J. 59, 3843–3855 (2013)
23. Usher, S.P., Studer, L.J., Wall, R.C., Scales, P.J.: Characterisation of dewaterability from
equilibrium and transient centrifugation test data. Chem. Eng. Sci. 93, 277–291 (2013)
24. Green, M.D., Eberl, M., Landman, K.A.: Compressive yield stress of flocculated suspensions:
determination via experiment. AIChE J. 42, 2308–2318 (1996)
25. Mladenchev, T., Tomas, J.: Modellierung der Filtrations- und Konsoldierungsdynamik von
geflockten und nicht geflockten feindispersen Kalksteinsuspensionen. Chemie Ing. Tech. 76,
1814–1818 (2004)
26. Erk, B., Luda, A.: Beeinflussung der Schlammkompression in Vollmantelzentrifugen. Chemie
Ing. Tech. 75, 1250–1254 (2003). https://doi.org/10.1002/cite.200303260
27. Le Moullec, Y., Potier, O., Gentric, C., Leclerc, J.: Flow field and residence time distribution
simulation of a cross-flow gas-liquid wastewater treatment reactor using CFD. Chem. Eng. Sci.
63, 2436–2449 (2008)
28. Gleiss, M., Nirschl, H.: Modeling separation processes in decanter centrifuges by considering
the sediment build-up. Chem. Eng. Technol. 38, 1873–1882 (2015)
29. Stahl, S., Spelter, L.E., Nirschl, H.: Investigations on the separation efficiency of tubular bowl
centrifuges. Chem. Eng. Technol. 31, 1577–1583 (2008)
