化工学报 ›› 2025, Vol. 76 ›› Issue (12): 6465-6476.DOI: 10.11949/0438-1157.20250732

• 智能过程工程 • 上一篇    下一篇

基于催化重整分子级模型的物质流量分析方法

陶一1(), 张晨1, 朱洪翔2, 邱彤1()   

  1. 1.清华大学化学工程系,北京 100084
    2.中石化(大连)石油化工研究院有限公司,辽宁 大连 116041
  • 收稿日期:2025-07-04 修回日期:2025-08-21 出版日期:2025-12-31 发布日期:2026-01-23
  • 通讯作者: 邱彤
  • 作者简介:陶一(2001—),女,硕士研究生,taoy24@mails.tsinghua.edu.cn

Substance flow analysis method based on molecular-level model for catalytic reforming process

Yi TAO1(), Chen ZHANG1, Hongxiang ZHU2, Tong QIU1()   

  1. 1.Department of Chemical Engineering, Tsinghua University, Beijing 100084, China
    2.Sinopec (Dalian) Research Institute of Petroleum and Petrochemicals Co. , Ltd. , Dalian 116041, Liaoning, China
  • Received:2025-07-04 Revised:2025-08-21 Online:2025-12-31 Published:2026-01-23
  • Contact: Tong QIU

摘要:

催化重整是提高汽油辛烷值、生产高附加值芳烃和氢气的重要炼油工艺,针对催化重整转化过程开展分子水平的反应与物质转化规律的研究具有重要意义。利用分子重构和完备反应网络构造方法,构建了催化重整分子级模型,从而能够准确模拟不同条件下的产物组成。在此基础上,提出了针对分子级模型的物质流量分析方法。该方法首先利用反应网络的结构化表示矩阵,构造物质在反应之间的流转方程组,解析单一反应、关键组分,以及集总后的各类型反应、各类烃分子的物质流转规律,分析其在催化重整完整反应体系中的作用。提出了多尺度网络结构图与反应-物质流桑基图相结合的可视化方法,清晰、直观地展示和分析核心组分之间、不同烃类与反应类型之间的物质流量转化关系和重要性对比。还研究了不同反应温度、反应压力下的催化重整反应体系中物质流转规律的变化趋势,从分子级反应层面解释操作条件对产物组成的影响。物质流量分析方法实现了微观的物质流量和宏观的反应规律间的连接,为探究催化重整反应机理、制定生产调度方案、优化工艺流程提供了新的视角和思路。

关键词: 动力学模型, 优化, 系统工程, 催化重整, 分子级, 反应网络, 物质流量

Abstract:

Catalytic reforming is an important refining process for improving gasoline octane number and producing high-value-added aromatics and hydrogen. Studying the molecular-level reactions and material transformations in the catalytic reforming conversion process is of great significance. This study developed a molecular-level model for catalytic reforming process by molecular reconstruction and comprehensive reaction network construction method, with calculated product mass fractions within ±1% absolute error across the measured temperature and pressure ranges. Based on this, the substance flow analysis method was presented. First, molecular and kinetic information in the reaction network was converted into structure matrix. And then a system of linear equations was established to quantitatively describe transformation of substance through reactions. Patterns of molecule transformation were analyzed in terms of single reaction, key components and grouped types of reaction and molecules. And roles of these parts were examined in the complete catalytic reforming reaction system. A visualization method combining the multi-scale network structure figure with the reaction-substance flow Sankey figure was presented. The transformation relationships and importance comparison of substance flows between key components, as well as between different types of hydrocarbons and reactions, were clearly and intuitively presented and analyzed. Furthermore, this work investigated the variation trends in substance flow within catalytic reforming reaction system under different temperatures and pressures, explaining influence of operating conditions on product composition from the perspective of molecular-level reaction. Substance flow analysis method established a connection between microscopic substance flow and macroscopic reaction mechanisms. This study focused on key information of reaction network, and provided reliable support for investigation of reaction mechanisms and optimization of industrial processes.

Key words: kinetic modeling, optimization, systems engineering, catalytic reforming, molecular-level, reaction network, substance flow

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