Optimization of reactive simulated moving bed systems with modulation of feed concentration for production of glycol ether ester.

[1]  K. Hashimoto,et al.  A new process combining adsorption and enzyme reaction for producing higher‐fructose syrup , 1983, Biotechnology and bioengineering.

[2]  Brian W. Kernighan,et al.  AMPL: A Modeling Language for Mathematical Programming , 1993 .

[3]  Anita M. Katti,et al.  Fundamentals of Preparative and Nonlinear Chromatography , 1994 .

[4]  Ajay K. Ray,et al.  Experimental study of a laboratory-scale simulated countercurrent moving bed chromatographic reactor , 1995 .

[5]  A. Tikhonov,et al.  Numerical Methods for the Solution of Ill-Posed Problems , 1995 .

[6]  Kenji Yoshimoto,et al.  Increased esterification conversion by application of the simulated moving-bed reactor , 1996 .

[7]  Massimo Morbidelli,et al.  A continuous chromatographic reactor: SMBR , 1996 .

[8]  Mark C. Bjorklund,et al.  Optimization of the simulated countercurrent moving-bed chromatographic reactor for the oxidative coupling of methane , 1996 .

[9]  P. E. Barker,et al.  Combined bioreaction and separation in a simulated counter-current chromatographic bioreactor-separator for the hydrolysis of lactose , 1996 .

[10]  Massimo Morbidelli,et al.  Dynamics of a Chromatographic Reactor: Esterification Catalyzed by Acidic Resins , 1997 .

[11]  D. Cherrak,et al.  Viscous fingering: a systematic study of viscosity effects in methanol-isopropanol systems , 1997 .

[12]  R. Herman,et al.  Catalytic synthesis of methanol, higher alcohols and ethers , 1997 .

[13]  G. Guiochon,et al.  Visualization of viscous fingering in chromatographic columns , 1998 .

[14]  Massimo Morbidelli,et al.  Analysis of simulated moving-bed reactors , 1999 .

[15]  Yasunobu Inoue,et al.  The simulated moving-bed reactor for production of bisphenol A , 1999 .

[16]  Ernst Dieter Gilles,et al.  A new concept for operating simulated moving-bed processes , 1999 .

[17]  Jörg Schmidt,et al.  Kinetik der Umesterung von Ethanol und Butylacetat – Ein Modellsystem für die Reaktivrektifikation , 1999 .

[18]  G. Dünnebier,et al.  Optimal Design and Operation of Simulated Moving Bed Chromatographic Reactors , 2000 .

[19]  Jürgen Gmehling,et al.  Reaction Kinetics and Chemical Equilibrium of Homogeneously and Heterogeneously Catalyzed Acetic Acid Esterification with Methanol and Methyl Acetate Hydrolysis , 2000 .

[20]  Massimo Morbidelli,et al.  Continuous reactive chromatography , 2001 .

[21]  Kus Hidajat,et al.  Application of Simulated Countercurrent Moving-Bed Chromatographic Reactor for MTBE Synthesis , 2001 .

[22]  S. RobertoFrias Design methodology and operation of a simulated moving bed reactor for the inversion of sucrose and glucose-fructose separation , 2001 .

[23]  Kus Hidajat,et al.  Multiobjective Optimization of Simulated Countercurrent Moving Bed Chromatographic Reactor (SCMCR) for MTBE Synthesis , 2002 .

[24]  Achim Kienle,et al.  Improving Simulated Moving Bed Processes by Cyclic Modulation of the Feed Concentration , 2002 .

[25]  Achim Kienle,et al.  Esterification of acetic acid with butanol in the presence of ion-exchange resins as catalysts , 2003 .

[26]  Massimo Morbidelli,et al.  Synthesis of methylacetate in a simulated moving-bed reactor: Experiments and modeling , 2003 .

[27]  Achim Kienle,et al.  Simulated moving bed process with cyclic modulation of the feed concentration. , 2003, Journal of chromatography. A.

[28]  Weifang Yu,et al.  Determination of adsorption and kinetic parameters for methyl acetate esterification and hydrolysis reaction catalyzed by Amberlyst 15 , 2004 .

[29]  Sebastian Engell,et al.  Optimization-based control of a reactive simulated moving bed process for glucose isomerization , 2004 .

[30]  Massimo Morbidelli,et al.  Continuous chromatographic processes with a small number of columns: Comparison of simulated moving bed with Varicol, PowerFeed, and ModiCon , 2004 .

[31]  A. Seidel-Morgenstern,et al.  Analysis of Heterogeneously Catalyzed Ester Hydrolysis Performed in a Chromatographic Reactor and in a Reaction Calorimeter , 2004 .

[32]  Kus Hidajat,et al.  Optimal design and operation of SMB bioreactor for sucrose inversion , 2005 .

[33]  A. Rodrigues,et al.  Novel Process for Diethylacetal Synthesis , 2005 .

[34]  M. Morbidelli,et al.  Optimal operation of simulated-moving-bed reactors for nonlinear adsorption isotherms and equilibrium reactions , 2005 .

[35]  Weifang Yu,et al.  Optimization of reactive simulated moving bed and Varicol systems for hydrolysis of methyl acetate , 2005 .

[36]  L. Biegler,et al.  Nonlinear Programming Superstructure for Optimal Dynamic Operations of Simulated Moving Bed Processes , 2006 .

[37]  M. Morbidelli,et al.  Esterification of acrylic acid with methanol by reactive chromatography: Experiments and simulations , 2006 .

[38]  Lorenz T. Biegler,et al.  On the implementation of an interior-point filter line-search algorithm for large-scale nonlinear programming , 2006, Math. Program..

[39]  L. Biegler,et al.  Optimization strategies for simulated moving bed and PowerFeed processes , 2006 .

[40]  L. Biegler,et al.  Large scale nonlinear optimization for asymmetric operation and design of Simulated Moving Beds. , 2006, Journal of chromatography. A.

[41]  S. Mahajani,et al.  Reactive Chromatography for the Synthesis of 2-Ethylhexyl Acetate , 2008 .

[42]  Kus Hidajat,et al.  Multiobjective Optimization of Simulated Moving Bed Reactor and its Modification — Varicol Process , 2008 .

[43]  A. Rodrigues,et al.  Simulated moving bed reactor for isomerization and separation of p-xylene , 2008 .

[44]  Achim Kienle,et al.  Conceptual Design of Integrated Chromatographic Processes for the Production of Single (Stereo-)Isomers , 2009 .

[45]  Ajay K. Ray,et al.  Multi-objective optimization of simulated countercurrent moving bed chromatographic reactor for oxidative coupling of methane , 2009 .

[46]  Alírio E. Rodrigues,et al.  A novel process for the ethyl lactate synthesis in a simulated moving bed reactor (SMBR) , 2009 .

[47]  J. Raisch,et al.  Optimization of simulated moving bed chromatography with fractionation and feedback: part I. Fractionation of one outlet. , 2010, Journal of chromatography. A.

[48]  Lorenz T. Biegler,et al.  Nonlinear Waves in Integrable and Nonintegrable Systems , 2018 .

[49]  Jörg Raisch,et al.  Optimization of simulated moving bed chromatography with fractionation and feedback: part II. Fractionation of both outlets. , 2010, Journal of chromatography. A.

[50]  A. Seidel-Morgenstern,et al.  Quantifying temperature and flow rate effects on the performance of a fixed-bed chromatographic reactor. , 2011, Journal of chromatography. A.

[51]  A. Rodrigues,et al.  Analysis of the synthesis of 1,1-dibutoxyethane in a simulated moving-bed adsorptive reactor , 2011 .

[52]  Yoshiaki Kawajiri,et al.  Comparison of various ternary simulated moving bed separation schemes by multi-objective optimization. , 2012, Journal of chromatography. A.

[53]  S. Mahajani,et al.  Feasibility of Reactive Chromatography for the Synthesis of n-Propyl Acetate , 2014 .

[54]  Conversion improvement for catalytic synthesis of propylene glycol methyl ether acetate by reactive chromatography: Experiments and parameter estimation , 2015 .