Mathematical simulation and optimization of xylene isomerization reactor to enhance p-xylene production

IF 1.5 4区 化学 Q4 CHEMISTRY, PHYSICAL International Journal of Chemical Kinetics Pub Date : 2023-06-12 DOI:10.1002/kin.21674
Ali Hafizi, Mohammad Farsi, Morteza Esfandyari
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引用次数: 0

Abstract

This study investigated mathematical modeling and optimization of the xylene isomerization reaction in a commercial adiabatic reactor. The proposed model, consisting of a set of algebraic and ordinary differential equations, is based on a heterogeneous one-dimensional steady-state formulation. To verify the proposed model, the simulation results have been compared to available data from an industrial reactor. A good agreement has been found between the simulation and plant data. The genetic algorithm (GA) method is applied to optimize the reactor operating conditions considering the para-xylene (p-xylene) mole fraction in reactor outlet as the main objective function. According to the simulation results, there is an optimum initial temperature for maximizing the objective function. In the optimization process, the p-xylene mole fraction was enhanced by 3.0% at an optimized feed temperature of 678.04K.

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二甲苯异构化反应器提高对二甲苯产量的数学模拟与优化
研究了商用绝热反应器中二甲苯异构化反应的数学建模和优化。该模型由一组代数方程和常微分方程组成,基于一维非均匀稳态公式。为了验证所提出的模型,将仿真结果与工业反应器的现有数据进行了比较。仿真结果与实际数据吻合较好。以反应器出口对二甲苯摩尔分数为主要目标函数,采用遗传算法对反应器运行条件进行优化。根据仿真结果,存在一个使目标函数最大化的最优初始温度。在优化的进料温度为678.04K时,对二甲苯的摩尔分数提高了3.0%。
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来源期刊
CiteScore
3.30
自引率
6.70%
发文量
74
审稿时长
3 months
期刊介绍: As the leading archival journal devoted exclusively to chemical kinetics, the International Journal of Chemical Kinetics publishes original research in gas phase, condensed phase, and polymer reaction kinetics, as well as biochemical and surface kinetics. The Journal seeks to be the primary archive for careful experimental measurements of reaction kinetics, in both simple and complex systems. The Journal also presents new developments in applied theoretical kinetics and publishes large kinetic models, and the algorithms and estimates used in these models. These include methods for handling the large reaction networks important in biochemistry, catalysis, and free radical chemistry. In addition, the Journal explores such topics as the quantitative relationships between molecular structure and chemical reactivity, organic/inorganic chemistry and reaction mechanisms, and the reactive chemistry at interfaces.
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