乙苯脱氢法合成ACS数字当量

IF 0.7 4区 工程技术 Q4 ENGINEERING, CHEMICAL
A. P. Popov, S. G. Tikhomirov, S. L. Podvalny, O. V. Karmanova, V. K. Bityukov, O. G. Neizvestny
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引用次数: 0

摘要

本文考虑了苯乙烯生产过程中乙苯催化脱氢的理化阶段数学模型的主要演化阶段。提出了描述热交换和乙苯脱氢化学过程数学模型的新结构元素。引入额外的数学依赖关系,可以减少以前已知的脱氢动力学模型的结构和参数不确定性特征的数量。逻辑上相互连接的模型系统被开发为自动化过程控制系统的数字等效。描述了在面向模型的设计概念框架下的数字预测控制系统等效的综合。提出了一种综合化工工艺系统层次模型的方法。对所研究过程的自动控制系统进行了软件仿真。以预测工艺过程、反应介质和催化剂状态参数变化轨迹的形式实现数字等效的计算机实现结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Synthesis of ACS Digital Equivalent by the Ethylbenzene Dehydrogenation Process

Synthesis of ACS Digital Equivalent by the Ethylbenzene Dehydrogenation Process

The article considers the main stages of evolution of the mathematical model of the physico-chemical stages of catalytic dehydrogenation of ethylbenzene during styrene production. The new structural elements of the mathematical model describing the chemical processes of heat exchange and ethylbenzene dehydrogenation are presented. The introduction of additional mathematical dependences makes it possible to reduce the number of structural and parametric uncertainties characteristic of previously known models of dehydrogenation kinetics. A system of logically interconnected models is developed as a digital equivalent of an automated process control system. The synthesis of the digital predictive control system equivalent within the model-oriented design concept framework is described. A method for synthesizing hierarchical models of chemical–technological systems is proposed. A software emulation of the automated control system of the process under study is performed. The results of computer implementation of the digital equivalent in the form of predicted trajectories of changes in the parameters of the state of the technological process, reaction medium, and catalyst are presented.

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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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