Application of Fractionation and Extractive Distillation for Separation of Butyl Propionate–Propionic Acid–Butyl Butyrate–Butyric Acid Mixture

IF 0.6 4区 工程技术 Q4 ENGINEERING, CHEMICAL Theoretical Foundations of Chemical Engineering Pub Date : 2025-03-17 DOI:10.1134/S0040579525600184
T. V. Chelyuskina, F. N. Bedretdinov, S. A. Potemin
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Abstract

A flowsheet for the separation of a butyl propionate–propionic acid–butyl butyrate–butyric acid mixture into individual components was developed. The flowsheet contains a fractionating column and units for extractive distillation of the biazeotropic constituents butyl propionate–propionic acid and butyl butyrate–butyric acid using sulfolane as a separating agent. The mutual arrangement of various isomanifolds was studied in the phase diagrams of the derived separation systems of butyl propionate–propionic acid–sulfolane and butyl butyrate–butyric acid–sulfolane. It was found that their arrangement is favorable for carrying out the extractive distillation process. By analyzing the relative volatility diagrams of the components of the biazeotropic mixtures in the presence of sulfolane, the ratio of the amounts of the separating agent and the initial mixture that is required to implement the separation was selected. The operating parameters of the columns of the flowsheet were determined, ensuring the purity (mole fraction) of individual components of at least 0.9950 at minimum energy consumption in the reboilers of the columns.

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分馏和萃取精馏在分离丙酸丁酯-丙酸-丁酸丁酯-丁酸混合物中的应用
建立了丙酸丁酯-丙酸-丁酸丁酯-丁酸混合物的分离工艺流程。该流程包含一个分馏塔和萃取精馏装置,用于以亚砜作为分离剂提取丙酸丁酯-丙酸和丁酸丁酯-丁酸。在衍生的丙酸丁酯-丙酸-亚砜分离体系和丁酸丁酯-丁酸-亚砜分离体系的相图中,研究了不同异构体的相互排列。发现它们的排列有利于萃取精馏过程的进行。通过分析双共沸混合物中各组分在亚砜存在下的相对挥发性图,选择了实现分离所需的分离剂用量与初始混合物的比例。确定了流程柱的操作参数,确保各组分的纯度(摩尔分数)至少为0.9950,且塔的再沸器能耗最小。
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来源期刊
CiteScore
1.20
自引率
25.00%
发文量
70
审稿时长
24 months
期刊介绍: Theoretical Foundations of Chemical Engineering is a comprehensive journal covering all aspects of theoretical and applied research in chemical engineering, including transport phenomena; surface phenomena; processes of mixture separation; theory and methods of chemical reactor design; combined processes and multifunctional reactors; hydromechanic, thermal, diffusion, and chemical processes and apparatus, membrane processes and reactors; biotechnology; dispersed systems; nanotechnologies; process intensification; information modeling and analysis; energy- and resource-saving processes; environmentally clean processes and technologies.
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