8 Flowsheet Simulation of Integrated Precipitation Processes
303
References
1. Segets, D., Hartig, M.A.J., Gradl, J., Peukert, W.: A population balance model of quantum dot
formation: oriented growth and ripening of ZnO. Chem. Eng. Sci. 70, 4–13 (2012)
2. Voigt, M., Klaumünzer, M., Thiem, H., Peukert, W.: Detailed analysis of the growth kinetics
of ZnO nanorods in methanol. J. Phys. Chem. C 114, 6243–6249 (2010)
3. Encina, E.R., Distaso, M., Klupp Taylor, R.N., Peukert, W.: Synthesis of goethite α-FeOOH
particles by air oxidation of ferrous hydroxide Fe(OH) 2 suspensions: insight on the formation
mechanism. Crystal Growth Des. 15, 194–203 (2015)
4. Haderlein, M., Güldenpfennig, A., Segets, D., Peukert, W.: A widely applicable tool for
modeling precipitation processes. Comput. Chem. Eng. 98, 197–208 (2017)
5. Hartig, M.A.J., Jacobsen, N., Peukert, W.: Multi-component and multi-phase population balance model: the case of georgeite formation as methanol catalyst precursor phase. Chem. Eng.
Sci. 109, 158–170 (2014)
6. Gradl, J., Peukert, W.: Simultaneous 3D observation of different kinetic subprocesses for
precipitation in a T-mixer. Chem. Eng. Sci. 64, 709–720 (2009)
7. Schikarski, T., Trzenschiok, H., Avila, M., Peukert, W.: Influence of mixing on the precipitation of organic nanoparticles: a lagrangian perspective on scale-up based on self-similar
distributions. Chem. Eng. Technol. 23, 1635–1642 (2019)
8. Rollié, S., Briesen, H., Sundmacher, K.: Discrete bivariate population balance modelling of
heteroaggregation processes. J. Colloid Interface Sci. 336, 551–564 (2009)
9. Haderlein, M., Segets, D., Gröschel, M., Pflug, L., Leugering, G., Peukert, W.: FIMOR: an
efficient simulation for ZnO quantum dot ripening applied to the optimization of nanoparticle
synthesis. Chem. Eng. J. 260, 706–715 (2015)
10. Skorych, V., Dosta, M., Hartge, E.-U., Heinrich, S.: Novel system for dynamic flowsheet
simulation of solids processes. Powder Technol. 314, 665–679 (2017)
11. Bogacki, P., Shampine, L.F.: A 3(2) pair of Runge—Kutta formulas. Appl. Math. Lett. 2,
321–325 (1989)
12. Marchisio, D.L., Fox, R.O.: Solution of population balance equations using the direct
quadrature method of moments. J. Aerosol Sci. 36, 43–73 (2005)
13. Bourne, J.R.: Mixing and the selectivity of chemical reactions. Org. Process Res. Dev. 7,
471–508 (2003)
14. Schwarzer, H.-C., Peukert, W.: Combined experimental/numerical study on the precipitation
of nanoparticles. AIChE J. 50, 3234–3247 (2004)
15. Gradl, J., Schwarzer, H.-C., Schwertfirm, F., Manhart, M., Peukert, W.: Precipitation of
nanoparticles in a T-mixer: coupling the particle population dynamics with hydrodynamics
through direct numerical simulation. Chem. Eng. Process. 45, 908–916 (2006)
16. Baldyga, J., Bourne, J.R.: Simplification of micromixing calculations. I. Derivation and
application of new model. Chem. Eng. J. 42, 83–92 (1989)
17. Bałdyga, J., Bourne, J.R.: Turbulent Mixing and Chemical Reactions. Wiley, Chichester (1999)
18. Schwarzer, H.-C.: Nanoparticle Precipitation: An Experimental and Numerical Investigation
Including Mixing. Logos-Verl, Berlin (2005)
19. Guichardon, P., Falk, L., Villermaux, J.: Characterisation of micromixing efficiency by the
iodide–iodate reaction system. Part II: kinetic study. Chem. Eng. Sci. 55, 4245–4253 (2000)
20. Commenge, J.-M., Falk, L.: Villermaux-Dushman protocol for experimental characterization
of micromixers. Chem. Eng. Process. 50, 979–990 (2011)
21. Davies, C.W.: 397. The extent of dissociation of salts in water. Part VIII. An equation for the
mean ionic activity coefficient of an electrolyte in water, and a revision of the dissociation
constants of some sulphates. J. Chem. Soc. 2093–2098 (1938)
22. Lifshitz, I.M., Slyozov, V.V.: The kinetics of precipitation from supersaturated solid solutions.
J. Phys. Chem. Solids 19, 35–50 (1961)
23. Zur, Fuchs N., der Koagulation, Theorie: Z. Phys. Chem. 171A, 199–208 (1934)
24. Monnin, C.: A thermodynamic model for the solubility of barite and celestite in electrolyte
solutions and seawater to 200 °C and to 1 kbar. Chem. Geol. 153, 187–209 (1999)
303
References
1. Segets, D., Hartig, M.A.J., Gradl, J., Peukert, W.: A population balance model of quantum dot
formation: oriented growth and ripening of ZnO. Chem. Eng. Sci. 70, 4–13 (2012)
2. Voigt, M., Klaumünzer, M., Thiem, H., Peukert, W.: Detailed analysis of the growth kinetics
of ZnO nanorods in methanol. J. Phys. Chem. C 114, 6243–6249 (2010)
3. Encina, E.R., Distaso, M., Klupp Taylor, R.N., Peukert, W.: Synthesis of goethite α-FeOOH
particles by air oxidation of ferrous hydroxide Fe(OH) 2 suspensions: insight on the formation
mechanism. Crystal Growth Des. 15, 194–203 (2015)
4. Haderlein, M., Güldenpfennig, A., Segets, D., Peukert, W.: A widely applicable tool for
modeling precipitation processes. Comput. Chem. Eng. 98, 197–208 (2017)
5. Hartig, M.A.J., Jacobsen, N., Peukert, W.: Multi-component and multi-phase population balance model: the case of georgeite formation as methanol catalyst precursor phase. Chem. Eng.
Sci. 109, 158–170 (2014)
6. Gradl, J., Peukert, W.: Simultaneous 3D observation of different kinetic subprocesses for
precipitation in a T-mixer. Chem. Eng. Sci. 64, 709–720 (2009)
7. Schikarski, T., Trzenschiok, H., Avila, M., Peukert, W.: Influence of mixing on the precipitation of organic nanoparticles: a lagrangian perspective on scale-up based on self-similar
distributions. Chem. Eng. Technol. 23, 1635–1642 (2019)
8. Rollié, S., Briesen, H., Sundmacher, K.: Discrete bivariate population balance modelling of
heteroaggregation processes. J. Colloid Interface Sci. 336, 551–564 (2009)
9. Haderlein, M., Segets, D., Gröschel, M., Pflug, L., Leugering, G., Peukert, W.: FIMOR: an
efficient simulation for ZnO quantum dot ripening applied to the optimization of nanoparticle
synthesis. Chem. Eng. J. 260, 706–715 (2015)
10. Skorych, V., Dosta, M., Hartge, E.-U., Heinrich, S.: Novel system for dynamic flowsheet
simulation of solids processes. Powder Technol. 314, 665–679 (2017)
11. Bogacki, P., Shampine, L.F.: A 3(2) pair of Runge—Kutta formulas. Appl. Math. Lett. 2,
321–325 (1989)
12. Marchisio, D.L., Fox, R.O.: Solution of population balance equations using the direct
quadrature method of moments. J. Aerosol Sci. 36, 43–73 (2005)
13. Bourne, J.R.: Mixing and the selectivity of chemical reactions. Org. Process Res. Dev. 7,
471–508 (2003)
14. Schwarzer, H.-C., Peukert, W.: Combined experimental/numerical study on the precipitation
of nanoparticles. AIChE J. 50, 3234–3247 (2004)
15. Gradl, J., Schwarzer, H.-C., Schwertfirm, F., Manhart, M., Peukert, W.: Precipitation of
nanoparticles in a T-mixer: coupling the particle population dynamics with hydrodynamics
through direct numerical simulation. Chem. Eng. Process. 45, 908–916 (2006)
16. Baldyga, J., Bourne, J.R.: Simplification of micromixing calculations. I. Derivation and
application of new model. Chem. Eng. J. 42, 83–92 (1989)
17. Bałdyga, J., Bourne, J.R.: Turbulent Mixing and Chemical Reactions. Wiley, Chichester (1999)
18. Schwarzer, H.-C.: Nanoparticle Precipitation: An Experimental and Numerical Investigation
Including Mixing. Logos-Verl, Berlin (2005)
19. Guichardon, P., Falk, L., Villermaux, J.: Characterisation of micromixing efficiency by the
iodide–iodate reaction system. Part II: kinetic study. Chem. Eng. Sci. 55, 4245–4253 (2000)
20. Commenge, J.-M., Falk, L.: Villermaux-Dushman protocol for experimental characterization
of micromixers. Chem. Eng. Process. 50, 979–990 (2011)
21. Davies, C.W.: 397. The extent of dissociation of salts in water. Part VIII. An equation for the
mean ionic activity coefficient of an electrolyte in water, and a revision of the dissociation
constants of some sulphates. J. Chem. Soc. 2093–2098 (1938)
22. Lifshitz, I.M., Slyozov, V.V.: The kinetics of precipitation from supersaturated solid solutions.
J. Phys. Chem. Solids 19, 35–50 (1961)
23. Zur, Fuchs N., der Koagulation, Theorie: Z. Phys. Chem. 171A, 199–208 (1934)
24. Monnin, C.: A thermodynamic model for the solubility of barite and celestite in electrolyte
solutions and seawater to 200 °C and to 1 kbar. Chem. Geol. 153, 187–209 (1999)
