Preparative Fixed-Bed Chromatographic Reactor

Author(s):  
Michel Sardin ◽  
Daniel Schweich ◽  
Jacques Villermaux
Processes ◽  
2021 ◽  
Vol 9 (9) ◽  
pp. 1684
Author(s):  
Carmelina Rossano ◽  
Claudio Luigi Pizzo ◽  
Riccardo Tesser ◽  
Martino Di Serio ◽  
Vincenzo Russo

Levulinic acid (LA) has been highlighted as one of the most promising platform chemicals, providing a wide range of possible derivatizations to value-added chemicals as the ethyl levulinate obtained through an acid catalyzed esterification reaction with ethanol that has found application in the bio-fuel market. Being a reversible reaction, the main drawback is the production of water that does not allow full conversion of levulinic acid. The aim of this work was to prove that the chromatographic reactor technology, in which the solid material of the packed bed acts both as stationary phase and catalyst, is surely a valid option to overcome such an issue by overcoming the thermodynamic equilibrium. The experiments were conducted in a fixed-bed chromatographic reactor, packed with Dowex 50WX-8 as ion exchange resin. Different operational conditions were varied (e.g., temperature and flow rate), pulsing levulinic acid to the ethanol stream, to investigate the main effects on the final conversion and separation efficiency of the system. The effects were described qualitatively, demonstrating that working at sufficiently low flow rates, LA was completely converted, while at moderate flow rates, only a partial conversion was achieved. The system worked properly even at room temperature (303 K), where LA was completely converted, an encouraging result as esterification reactions are normally performed at higher temperatures.


Author(s):  
Kalpana S Deshmukh ◽  
Vivek Chandra Gyani ◽  
Sanjay M. Mahajani

Chromatographic reactor is an attractive mode of operation that combines chemical reaction and product separation in the same unit. In this work, esterification of butyl cellosolve with acetic acid using cation exchange resin Amberlyst-15 is investigated in a chromatographic reactor. The study involves determining the appropriate kinetic model for the reaction by performing experiments at different temperatures, mole ratios of the reactants, catalyst loadings and stirring speeds. Characterization of the adsorption capacity of the resin for different components involved in the reaction is performed through adsorption experiments for the nonreactive binaries. The combined separation-reaction process is experimentally investigated using a fixed bed chromatographic column. A mathematical model is developed and the experimental data is compared with the model predictions. It is shown that the experimental and predicted data closely follow each other and that the high conversion can be obtained with a relatively high purity of the product.


2018 ◽  
Vol 336 ◽  
pp. 518-530 ◽  
Author(s):  
Alexander Brächer ◽  
Lisa Maria Kreußer ◽  
Shamsul Qamar ◽  
Andreas Seidel-Morgenstern ◽  
Erik von Harbou

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