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Long-time simulation of catalytic MTO reaction in a fluidized bed reactor with a coarse-grained discrete particle method - EMMS-DPM

机译:用粗粒离散颗粒法 - EMMS-DPM流化床反应器中催化MTO反应的长时间模拟 - EMMS-DPM

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摘要

Long-time behaviors widely exist in gas-solid reactors, e.g., the coke deposition and catalyst deactivation in the methanol to olefins (MTO) process. Due to the limitation of the computational cost, previous simulations of MTO reactors were mainly conducted with two-fluid model at short-time scales and assumed that the catalyst are perfectly mixed. Efficient simulation methods are, therefore, highly desirable, even for evaluating the assumptions through very long-time investigation. In this study, the MTO reaction kinetics is incorporated into a coarse-grained discrete particle method, namely EMMS-DPM, to simulate a pilot-scale reactor for 8 h of physical time. The simulation is validated by comparing the obtained gaseous products and coke contents with the experimental data. The perfect mixing assumption is validated by observing the residence time distribution of the catalyst for the whole reactor. The detailed coke content could provide more accurate data for accelerating steady state simulations. Furthermore, the relation between the coke content and age of the catalyst is directly obtained for the first time, which is valuable to effective use of the catalyst before discharging. The coke content is positively correlated to the age, but is also influenced by local conditions. For example, near the distributor, the catalyst particles are not well mixed and the maximum reaction rate fluctuates significantly even at large time scales. Thus, long-time particle-scale simulation would provide more dynamic details to characterize the reaction in the critical regions of the reactor, thus being very helpful to optimize operating conditions and the reactor designs.
机译:在气体固体反应器中广泛存在的长时间行为,例如,甲醇中的焦炭沉积和催化剂停用烯烃(MTO)。由于计算成本的局限性,先前的MTO反应器模拟主要用两种流体模型在短时间进行,并假设催化剂完全混合。因此,高效的仿真方法是非常需要的,即使是通过非常长时间调查评估假设。在该研究中,将MTO反应动力学掺入粗粒粒子离散颗粒方法中,即EMMS-DPM,以模拟8小时的导尺尺度反应器。通过将所获得的气态产品和焦炭内容物与实验数据进行比较来验证模拟。通过观察整个反应器的催化剂的停留时间分布来验证完美的混合假设。详细的焦炭内容可以提供更准确的数据来加速稳态模拟。此外,首次获得催化剂的焦炭含量和年龄之间的关系,这是有价值在放电之前有效使用催化剂。焦炭含量与年龄呈正相关,但也受到当地条件的影响。例如,在分配器附近,催化剂颗粒并不良好混合,即使在大的时间尺度也是显着的最大反应速率的波动。因此,长时间粒子尺度模拟将提供更多动态细节,以表征反应器的关键区域中的反应,从而非常有助于优化操作条件和反应器设计。

著录项

  • 来源
    《Chemical engineering journal》 |2020年第2020期|共12页
  • 作者单位

    Chinese Acad Sci Inst Proc Engn State Key Lab Multiphase Complex Syst Beijing 100190 Peoples R China;

    Chinese Acad Sci Inst Proc Engn State Key Lab Multiphase Complex Syst Beijing 100190 Peoples R China;

    Chinese Acad Sci Inst Proc Engn State Key Lab Multiphase Complex Syst Beijing 100190 Peoples R China;

    Chinese Acad Sci Inst Proc Engn State Key Lab Multiphase Complex Syst Beijing 100190 Peoples R China;

    Chinese Acad Sci Inst Proc Engn State Key Lab Multiphase Complex Syst Beijing 100190 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    Long-time simulation; Discrete particle method; MTO; Coke distribution;

    机译:长时间模拟;离散颗粒法;MTO;焦炭分布;

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