By S. Sastry, M. Bodson
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Additional resources for Adaptive Control -Stability, Convergence, and Robustness
Solvatochromic characterization of near- and supercritical ethane, propane and dimethyl ether. J. Supercritical Fluids 1991, 4, 186–193. Copyright © 2004 by Marcel Dekker, Inc. SCF Solvents in the Pharmaceutical Industry 4. 5. 6. 7. 8. 9. 10. 11. 12. 13. 14. 15. 16. 17. 18. 19. 20. 21. 22. 23. 24. 25. T. Molecular modeling of reverse micelles in supercritical carbon dioxide. ; 2002; 15–21. D. The carbon dioxide technology platform: from surfactants to microelectronics. ; 2002; 1–14. J. Surfactants in supercritical fluids.
32 Perrut 57. J. Finely divided solid crystalline powders via precipitation into an antisolvent. US patent 5,707,634, 1998. ; York, P. Method and apparatus for the formation of particles. World patent WO 95/01221, 1994. Reverchon, E. Supercritical antisolvent precipitation of micro- and nano-particles. J. Supercritical Fluids, 1999, 15, 1–21. ; York, P. Particle engineering for pharmaceutical applications. A process scale-up. Proceedings of the 5th International Symposium on Supercritical Fluids, Atlanta, GA, 2000.
Reextraction is then either by shift of temperature, aqueous ionic strength or acidity/basicity. (5) The selection of the right reactive solvent phase is the key to a successful separation process. Below is a list of the various solvent-selection criteria. Some of these are essential for the separation while others are desirable properties which will improve the separation and/or make it more economical. The solvent selectivity, recoverability, and a large density difference with the raffinate are essential.
Adaptive Control -Stability, Convergence, and Robustness by S. Sastry, M. Bodson