Kinetics and Modelling of Levulinic Acid Esterification in Batch and Continuous Reactors

被引:0
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作者
Vincenzo Russo
Vlastimil Hrobar
Päivi Mäki-Arvela
Kari Eränen
Fredrik Sandelin
Martino Di Serio
Tapio Salmi
机构
[1] Università degli Studi di Napoli Federico II,Chemical Sciences Department
[2] Åbo Akademi University,Johan Gadolin Process Chemistry Centre, Laboratory of Industrial Chemistry and Reaction Engineering
[3] TFEngineers,undefined
来源
Topics in Catalysis | 2018年 / 61卷
关键词
Environmentally friendly chemicals; Catalysis; Batch and continuous technology;
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学科分类号
摘要
The ethyl ester of levulinic acid, ethyl levulinate is a completely bio-based chemical made from levulinic acid, which is a hydrolysis product of cellulose and bio-ethanol. The very precise kinetics of levulinic acid esterification with ethanol was studied in an isothermal batch reactor in the presence of homogeneous (H2SO4) and heterogeneous catalysts (cation exchange resin Smopex-101). The temperature interval of the experiments was 50–70 °C. A kinetic model was proposed for both kinds of catalysts, adopting equilibrium rate expressions in any case. The different role of the catalyst used was considered separately, while a unique equilibrium constant was assumed for each system. The kinetic parameters were successfully determined by non-linear regression analysis. The model gave a very good description to the experimental data. The heterogeneous catalyst was used to demonstrate the feasibility of continuous operation in isothermal fixed bed reactors. The catalyst showed a good stability and high conversions of levulinic acid were obtained in the laboratory-scale fixed bed reactor. The model was able to predict both dynamic and steady-state experimental data.
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页码:1856 / 1865
页数:9
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