6 Dynamic Process Models for Fine Grinding and Dispersing
235
6. Hennart, S.L.A., Wildeboer, W.J., van Hee, P., Meesters, G.M.H.: Identification of the grinding
mechanisms and their origin in a stirred ball mill using population balances. Chem. Eng. Sci.
64(19), 4123–4130 (2009)
7. Beinert, S., Fragnière, G., Schilde, C., et al.: Analysis and modelling of bead contacts in wetoperating stirred media and planetary ball mills with CFD–DEM simulations. Chem. Eng. Sci.
134, 648–662 (2015)
8. Beinert, S., Fragnière, G., Schilde, C., et al.: Multiscale simulation of fine grinding and dispersing processes: stressing probability, stressing energy and resultant breakage rate. Adv. Powder
Technol. 29(3), 573–583 (2018)
9. Kwade, A., Schwedes, J.: Wet grinding in stirred media mills. In: Handbook of Powder
Technology, vol. 12, pp. 251–382. Elsevier Science B.V. (2007)
10. Beinert, S., Schilde, C., Kwade, A.: Simulation of stress energy and grinding media movement within a wet-operated annular-gap mill using the discrete-element method. Chem. Eng.
Technol. 35(11), 1911–1921 (2012)
11. Kürten, H., Raasch, J., Rumpf, H.: Beschleunigung eines kugelförmigen Feststoffteilchens im
Strömungsfeld konstanter Geschwindigkeit. Chem. Ing. Tec. 38(9), 941–948 (1966)
12. Beinert, S.: Mehrskalige Simulationen zur Partikelbeanspruchung bei der Zerkleinerung und
Dispergierung, Zugl.: Braunschweig, Techn. Univ., Diss., 2015, 1. Aufl. IPAT-Schriftenreihe,
Sierke Göttingen, ISBN 9783868447231 (2015)
13. Eskin, D., Zhupanska, O., Hamey, R., et al.: Microhydrodynamics of stirred media milling.
Powder Technol. 156(2), 95–102 (2005)
14. Kwade, A.: Determination of the most important grinding mechanism in stirred media mills
by calculating stress intensity and stress number. Powder Technol. 105(1–3), 382–388 (1999)
15. Radziszewski, P.: Shear based stirred mill power model—An adimensional analysis. Miner.
Eng. 73, 16–20 (2015)
16. Afolabi, A., Akinlabi, O., Bilgili, E.: Impact of process parameters on the breakage kinetics of
poorly water-soluble drugs during wet stirred media milling: a microhydrodynamic view. Eur.
J. Pharm. Sci. Official J. Eur. Fed. Pharm. Sci. 51, 75–86 (2014)
17. Jayasundara, C.T., Yang, R.Y., Yu, A.B., et al.: Prediction of the disc wear in a model IsaMill
and its effect on the flow of grinding media. Miner. Eng. 24(14), 1586–1594 (2011)
18. Cleary, P.W., Sinnott, M.D.: Computational prediction of performance for a full scale Isamill:
Part—Wet models of charge and slurry transport. Miner. Eng. 79, 239–260 (2015)
19. Gers, R., Climent, E., Legendre, D., et al.: Numerical modelling of grinding in a stirred media
mill: Hydrodynamics and collision characteristics. Chem. Eng. Sci. 65(6), 2052–2064 (2010)
20. Concas, A., Lai, N., Pisu, M., et al.: Modelling of comminution processes in Spex mixer/mill.
Chem. Eng. Sci. 61(11), 3746–3760 (2006)
21. Tuzcu, E.T., Rajamani, R.K.: Modeling breakage rates in mills with impact energy spectra and
ultra fast load cell data. Miner. Eng. 24(3–4), 252–260 (2011)
22. de Carvalho, R.M., Tavares, L.M.: Predicting the effect of operating and design variables on
breakage rates using the mechanistic ball mill model. Miner. Eng. 43–44, 91–101 (2013)
23. Capece, M., Bilgili, E., Davé, R.N.: Formulation of a physically motivated specific breakage
rate parameter for ball milling via the discrete element method. AIChE J. 60(7), 2404–2415
(2014)
24. Kwade, A., Schwedes, J.: Breaking charakteristics of different materials and their effect on
stress intensity and stress number in stirred media mills. Powder Technol. 122, 109–121 (2002)
25. He, M., Wang, Y., Forssberg, E.: Parameter effects on wet ultrafine grinding of limestone
through slurry rheology in a stirred media mill. Powder Technol. 161(1), 10–21 (2006)
26. Rácz, Á.: Reduction of surface roughness and rounding of limestone particles in a stirred media
mill. Chem. Eng. Technol. 37(5), 865–872 (2014)
27. Fragnière, G., Beinert, S., Overbeck, A., et al.: Predicting effects of operating condition
variations on breakage rates in stirred media mills. Chem. Eng. Res. Des. 138, 433–443 (2018)
28. Kwade, A.: Autogenzerkleinerung von Kalkstein in Rührwerkmühlen, Zugl.: Braunschweig,
Techn. Univ., Diss., 1996. Berichte aus der Verfahrenstechnik, Shaker Aachen, ISBN 3-82652082-3 (1997)
235
6. Hennart, S.L.A., Wildeboer, W.J., van Hee, P., Meesters, G.M.H.: Identification of the grinding
mechanisms and their origin in a stirred ball mill using population balances. Chem. Eng. Sci.
64(19), 4123–4130 (2009)
7. Beinert, S., Fragnière, G., Schilde, C., et al.: Analysis and modelling of bead contacts in wetoperating stirred media and planetary ball mills with CFD–DEM simulations. Chem. Eng. Sci.
134, 648–662 (2015)
8. Beinert, S., Fragnière, G., Schilde, C., et al.: Multiscale simulation of fine grinding and dispersing processes: stressing probability, stressing energy and resultant breakage rate. Adv. Powder
Technol. 29(3), 573–583 (2018)
9. Kwade, A., Schwedes, J.: Wet grinding in stirred media mills. In: Handbook of Powder
Technology, vol. 12, pp. 251–382. Elsevier Science B.V. (2007)
10. Beinert, S., Schilde, C., Kwade, A.: Simulation of stress energy and grinding media movement within a wet-operated annular-gap mill using the discrete-element method. Chem. Eng.
Technol. 35(11), 1911–1921 (2012)
11. Kürten, H., Raasch, J., Rumpf, H.: Beschleunigung eines kugelförmigen Feststoffteilchens im
Strömungsfeld konstanter Geschwindigkeit. Chem. Ing. Tec. 38(9), 941–948 (1966)
12. Beinert, S.: Mehrskalige Simulationen zur Partikelbeanspruchung bei der Zerkleinerung und
Dispergierung, Zugl.: Braunschweig, Techn. Univ., Diss., 2015, 1. Aufl. IPAT-Schriftenreihe,
Sierke Göttingen, ISBN 9783868447231 (2015)
13. Eskin, D., Zhupanska, O., Hamey, R., et al.: Microhydrodynamics of stirred media milling.
Powder Technol. 156(2), 95–102 (2005)
14. Kwade, A.: Determination of the most important grinding mechanism in stirred media mills
by calculating stress intensity and stress number. Powder Technol. 105(1–3), 382–388 (1999)
15. Radziszewski, P.: Shear based stirred mill power model—An adimensional analysis. Miner.
Eng. 73, 16–20 (2015)
16. Afolabi, A., Akinlabi, O., Bilgili, E.: Impact of process parameters on the breakage kinetics of
poorly water-soluble drugs during wet stirred media milling: a microhydrodynamic view. Eur.
J. Pharm. Sci. Official J. Eur. Fed. Pharm. Sci. 51, 75–86 (2014)
17. Jayasundara, C.T., Yang, R.Y., Yu, A.B., et al.: Prediction of the disc wear in a model IsaMill
and its effect on the flow of grinding media. Miner. Eng. 24(14), 1586–1594 (2011)
18. Cleary, P.W., Sinnott, M.D.: Computational prediction of performance for a full scale Isamill:
Part—Wet models of charge and slurry transport. Miner. Eng. 79, 239–260 (2015)
19. Gers, R., Climent, E., Legendre, D., et al.: Numerical modelling of grinding in a stirred media
mill: Hydrodynamics and collision characteristics. Chem. Eng. Sci. 65(6), 2052–2064 (2010)
20. Concas, A., Lai, N., Pisu, M., et al.: Modelling of comminution processes in Spex mixer/mill.
Chem. Eng. Sci. 61(11), 3746–3760 (2006)
21. Tuzcu, E.T., Rajamani, R.K.: Modeling breakage rates in mills with impact energy spectra and
ultra fast load cell data. Miner. Eng. 24(3–4), 252–260 (2011)
22. de Carvalho, R.M., Tavares, L.M.: Predicting the effect of operating and design variables on
breakage rates using the mechanistic ball mill model. Miner. Eng. 43–44, 91–101 (2013)
23. Capece, M., Bilgili, E., Davé, R.N.: Formulation of a physically motivated specific breakage
rate parameter for ball milling via the discrete element method. AIChE J. 60(7), 2404–2415
(2014)
24. Kwade, A., Schwedes, J.: Breaking charakteristics of different materials and their effect on
stress intensity and stress number in stirred media mills. Powder Technol. 122, 109–121 (2002)
25. He, M., Wang, Y., Forssberg, E.: Parameter effects on wet ultrafine grinding of limestone
through slurry rheology in a stirred media mill. Powder Technol. 161(1), 10–21 (2006)
26. Rácz, Á.: Reduction of surface roughness and rounding of limestone particles in a stirred media
mill. Chem. Eng. Technol. 37(5), 865–872 (2014)
27. Fragnière, G., Beinert, S., Overbeck, A., et al.: Predicting effects of operating condition
variations on breakage rates in stirred media mills. Chem. Eng. Res. Des. 138, 433–443 (2018)
28. Kwade, A.: Autogenzerkleinerung von Kalkstein in Rührwerkmühlen, Zugl.: Braunschweig,
Techn. Univ., Diss., 1996. Berichte aus der Verfahrenstechnik, Shaker Aachen, ISBN 3-82652082-3 (1997)
