5 Development of a Dynamic-Physical Process Model for Sieving
193
3. Grozubinsky, V., Sultanovitch, E., Lin, I.J.: Efficiency of solid particle screening as a function
of screen slot size, particle size, and duration of screening—the theoretical approach. Int. J.
Miner. Process. 52(4), 261–272 (1998)
4. Bunge, R.: Mechanische Aufbereitung - Primär- und Sekundärrohstoffe, 1st edn. Wiley-VCH
Verlag, Weinheim (2012)
5. Kruse, R.: Mechanische Verfahrenstechnik - Grundlagen der Flüssigkeitsförderung und der
Partikeltechnologie. Wiley-VCH Verlag, Weinheim (1999)
6. Schmidt, P., Körber, R., Coppers, M.: Sieben und Siebmaschinen - Grundlagen und
Anwendungen. Wiley-VCH Verlag, Weinheim (2003)
7. Yoshida, Y., Ishikawa, S., Shimosaka, A., Shirakawa, Y., Hidaka, J.: Estimation equation for
sieving rate based on the model for undersized particles passing through vibrated particle bed.
J. Chem. Eng. Jpn. 46(2), 116–126 (2013)
8. Cleary, P.W., Sinnott, M.D., Morrison, R.D.: Separation performance of double deck banana
screens—Part 1: flow and separation for different accelerations. Miner. Eng. 22(14), 1218–
1229 (2009)
9. Soldinger, M.: Interrelation of stratification and passage in the screening process. Miner. Eng.
12(5), 497–516 (1999)
10. Soldinger, M.: Influence of particle size and bed thickness on the screening process. Miner.
Eng. 13(3), 297–312 (2000)
11. Cundall, P.A., Strack, O.D.L.: A discrete numerical model for granular assemblies. Géotechnique 29(1), 47–65 (1979)
12. Walton, O.R., Braun, R.L.: Viscosity, granular-temperature, and stress calculations for
shearing assemblies of inelastic, frictional disks. J. Rheol. 30, 949–980 (1986)
13. Zhu, H.P., Zhou, Z.Y., Yang, R.Y., Yu, A.B.: Discrete particle simulation of particulate systems:
theoretical developments. Chem. Eng. Sci. 62(13), 3378–3396 (2007)
14. Zhu, H.P., Zhou, Z.Y., Yang, R.Y., Yu, A.B.: Discrete particle simulation of particulate systems:
a review of major applications and findings. Chem. Eng. Sci. 63(23), 5728–5770 (2008)
15. Cleary, P.W. Large scale industrial DEM modelling. Eng. Computations 21(2/3/4), 169–204
(2004)
16. Lu, G., Third, J.R., Müller, C.R.: Discrete element models for non-spherical particle systems:
from theoretical developments to applications. Chem. Eng. Sci. 127, 425–465 (2015)
17. Höhner, D., Wirtz, S., Kruggel-Emden, H., Scherer, V.: Comparison of the multi-sphere and
polyhedral approach to simulate non-spherical particles within the discrete element method:
influence on temporal force evolution for multiple contacts. Powder Technol. 208(3), 643–656
(2011)
18. Mio, H., Shimosaka, A., Shirakawa, Y., Hidaka, J.: Optimum cell size for contact detection
in the algorithm of the discrete element method. J. Chem. Eng. Jpn. 38(12), 969–975 (2005)
19. Cleary, P.W.: The effect of particle shape on simple shear flows. Powder Technol. 179(3),
144–163 (2008)
20. Mead, S.R., Cleary, P.W., Robinson, G.K. Characterising the failure and repose angles of
irregularly shaped three-dimensional particles using DEM. In: Ninth International Conference
on CFD in the Minerals and Process Industries, Melbourne, Australia, pp. 1–6 (2012)
21. Delaney, G.W., Cleary, P.W. The packing properties of superellipsoids. Europhys. Lett. 89
(3), (2010)
22. Jensen, R.P., Bosscher, P.J., Plesha, M.E., Edil, T.B.: DEM simulation of granular mediastructure interface: effects of surface roughness and particle shape. Int. J. Numer. Anal. Meth.
Geomech. 23(6), 531–547 (1999)
23. Favier, J.F., Abbaspour-Fard, M.H., Kremmer, M., Raji, A.O.: Shape representation of axisymmetrical, non-spherical particles in discrete element simulation using multielement model
particles. Eng. Comput. 16(4), 467–480 (1999)
24. Favier, J.F., Abbaspour-Fard, M.H., Kremmer, M.: Modeling nonspherical particles using
multisphere discrete elements. J. Eng. Mech. 127(10), 971–977 (2001)
25. Vu-Quoc, L., Zhang, X., Walton, O.R.: A 3-D discrete emelent method for dry granular flows
of ellipsoidal particles. Comput. Methods Appl. Mech. Eng. 187, 483–528 (2000)
193
3. Grozubinsky, V., Sultanovitch, E., Lin, I.J.: Efficiency of solid particle screening as a function
of screen slot size, particle size, and duration of screening—the theoretical approach. Int. J.
Miner. Process. 52(4), 261–272 (1998)
4. Bunge, R.: Mechanische Aufbereitung - Primär- und Sekundärrohstoffe, 1st edn. Wiley-VCH
Verlag, Weinheim (2012)
5. Kruse, R.: Mechanische Verfahrenstechnik - Grundlagen der Flüssigkeitsförderung und der
Partikeltechnologie. Wiley-VCH Verlag, Weinheim (1999)
6. Schmidt, P., Körber, R., Coppers, M.: Sieben und Siebmaschinen - Grundlagen und
Anwendungen. Wiley-VCH Verlag, Weinheim (2003)
7. Yoshida, Y., Ishikawa, S., Shimosaka, A., Shirakawa, Y., Hidaka, J.: Estimation equation for
sieving rate based on the model for undersized particles passing through vibrated particle bed.
J. Chem. Eng. Jpn. 46(2), 116–126 (2013)
8. Cleary, P.W., Sinnott, M.D., Morrison, R.D.: Separation performance of double deck banana
screens—Part 1: flow and separation for different accelerations. Miner. Eng. 22(14), 1218–
1229 (2009)
9. Soldinger, M.: Interrelation of stratification and passage in the screening process. Miner. Eng.
12(5), 497–516 (1999)
10. Soldinger, M.: Influence of particle size and bed thickness on the screening process. Miner.
Eng. 13(3), 297–312 (2000)
11. Cundall, P.A., Strack, O.D.L.: A discrete numerical model for granular assemblies. Géotechnique 29(1), 47–65 (1979)
12. Walton, O.R., Braun, R.L.: Viscosity, granular-temperature, and stress calculations for
shearing assemblies of inelastic, frictional disks. J. Rheol. 30, 949–980 (1986)
13. Zhu, H.P., Zhou, Z.Y., Yang, R.Y., Yu, A.B.: Discrete particle simulation of particulate systems:
theoretical developments. Chem. Eng. Sci. 62(13), 3378–3396 (2007)
14. Zhu, H.P., Zhou, Z.Y., Yang, R.Y., Yu, A.B.: Discrete particle simulation of particulate systems:
a review of major applications and findings. Chem. Eng. Sci. 63(23), 5728–5770 (2008)
15. Cleary, P.W. Large scale industrial DEM modelling. Eng. Computations 21(2/3/4), 169–204
(2004)
16. Lu, G., Third, J.R., Müller, C.R.: Discrete element models for non-spherical particle systems:
from theoretical developments to applications. Chem. Eng. Sci. 127, 425–465 (2015)
17. Höhner, D., Wirtz, S., Kruggel-Emden, H., Scherer, V.: Comparison of the multi-sphere and
polyhedral approach to simulate non-spherical particles within the discrete element method:
influence on temporal force evolution for multiple contacts. Powder Technol. 208(3), 643–656
(2011)
18. Mio, H., Shimosaka, A., Shirakawa, Y., Hidaka, J.: Optimum cell size for contact detection
in the algorithm of the discrete element method. J. Chem. Eng. Jpn. 38(12), 969–975 (2005)
19. Cleary, P.W.: The effect of particle shape on simple shear flows. Powder Technol. 179(3),
144–163 (2008)
20. Mead, S.R., Cleary, P.W., Robinson, G.K. Characterising the failure and repose angles of
irregularly shaped three-dimensional particles using DEM. In: Ninth International Conference
on CFD in the Minerals and Process Industries, Melbourne, Australia, pp. 1–6 (2012)
21. Delaney, G.W., Cleary, P.W. The packing properties of superellipsoids. Europhys. Lett. 89
(3), (2010)
22. Jensen, R.P., Bosscher, P.J., Plesha, M.E., Edil, T.B.: DEM simulation of granular mediastructure interface: effects of surface roughness and particle shape. Int. J. Numer. Anal. Meth.
Geomech. 23(6), 531–547 (1999)
23. Favier, J.F., Abbaspour-Fard, M.H., Kremmer, M., Raji, A.O.: Shape representation of axisymmetrical, non-spherical particles in discrete element simulation using multielement model
particles. Eng. Comput. 16(4), 467–480 (1999)
24. Favier, J.F., Abbaspour-Fard, M.H., Kremmer, M.: Modeling nonspherical particles using
multisphere discrete elements. J. Eng. Mech. 127(10), 971–977 (2001)
25. Vu-Quoc, L., Zhang, X., Walton, O.R.: A 3-D discrete emelent method for dry granular flows
of ellipsoidal particles. Comput. Methods Appl. Mech. Eng. 187, 483–528 (2000)
