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气固两相流内中空多孔催化剂性能的数值模拟
引用本文:吴秋莹,孔令凯,徐骥,葛蔚,袁绍军. 气固两相流内中空多孔催化剂性能的数值模拟[J]. 过程工程学报, 2021, 21(7): 774-785. DOI: 10.12034/j.issn.1009-606X.220229
作者姓名:吴秋莹  孔令凯  徐骥  葛蔚  袁绍军
作者单位:四川大学化学工程学院,四川成都610065;中国科学院过程工程研究所多相复杂系统国家重点实验室,北京100190;中国科学院过程工程研究所多相复杂系统国家重点实验室,北京100190;中国科学院大学化学工程学院,北京100049;中国科学院过程工程研究所多相复杂系统国家重点实验室,北京100190;中国科学院绿色过程制造创新研究院,北京100190;中国科学院过程工程研究所多相复杂系统国家重点实验室,北京100190;中国科学院大学化学工程学院,北京100049;中国科学院绿色过程制造创新研究院,北京100190;四川大学化学工程学院,四川成都610065
基金项目:中国科学院信息化专项课题(XXH13506-301);国家自然科学基金委重大计划集成项目(91834303);国家重点研发计划项目(2017YFB0202203);工业化虚拟过程平台的研发与典型应用(IAGM-2019-A03);中国科学院前沿科学重点研究项目(QYZDJ-SSW-JSC029);挑战计划国防基础科研科学挑战专题(TZ2016001)
摘    要:气固流态化过程中流体和颗粒分别聚集,形成稀密两相,严重限制其传质效率和反应速率的提高。针对此问题,本工作设计了一种中空多孔结构的催化剂颗粒,通过模拟方法研究该颗粒对稀密两相气相传质与反应的影响,及其在稀密相间转换的时间尺度。结果表明,一定的流动强度时,在颗粒稀密相转换的时间尺度内,中空多孔结构的颗粒能够有效地在稀相存储反应气体,并在密相释放,为密相提供额外的反应气体,增强体系的整体反应效率。当催化反应速率高于传质速率时,在所研究的流动条件下中空多孔颗粒体系的反应效率比实心球形颗粒体系高出26.92%~29.55%。可以预见在稀密相分布更广的大型气固流化床反应器中,中空多孔结构的催化剂颗粒能够更为有效地提高反应器的整体效率。

关 键 词:中空多孔催化剂  气固流态化  传质速率  反应速率  数值模拟
收稿时间:2020-07-20

Numerical simulation of hollow catalyst with pores in gas-solid reaction system
Qiuying WU,Lingkai KONG,Ji XU,Wei GE,Shaojun YUAN. Numerical simulation of hollow catalyst with pores in gas-solid reaction system[J]. Chinese Journal of Process Engineering, 2021, 21(7): 774-785. DOI: 10.12034/j.issn.1009-606X.220229
Authors:Qiuying WU  Lingkai KONG  Ji XU  Wei GE  Shaojun YUAN
Affiliation:1.School of Chemical Engineering, Sichuan University, Chengdu, Sichuan 610065, China
2.State Key Laboratory of Multiphase Complex Systems, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China
3.School of Chemical Engineering, University of Chinese Academy of Sciences, Beijing 100049, China
4.Innovation Academy for Green Manufacture, Chinese Academy of Sciences, Beijing 100190, China
Abstract:In the gas-solid flow, fluid and particle usually aggregate to form dense-phase and dilute-phase respectively, resulting in unbalanced mass transfer and reaction rates between the dense- and dilute-phase. The unbalance of dilute- and dense-phase reduces the overall efficiency of the reactor. To solve this problem, a hollow catalyst particle with pores structure is designed. It is aimed to enhance the overall efficiency of fluidized reactors by improving the mass transfer rate between the dense- and dilute-phase. Dense- and dilute-phase are widely distributed during fluidization processes, which can be respectively described by the cluster system and single particle system. In these two phases, the flow, reaction process and mass transfer process of hollow porous particles are studied by numerical simulation, and compared with the solid spherical particle system at the same fluidization condition. Then, the frequency of particle clusters formation and breakage is studied under various fluidization conditions. The time scale is analyzed to measure the possibility of gas transport in the fluidization process. It is found that the time-scales of the mass transfer, the reaction, and the movements of particles between the dilute- and dense-phase could be at the same order for some fluidization conditions. Thus, hollow porous catalyst particle can store the reacting material in the dilute-phase efficiently. When moving to the dense phase, the particle would release the reacting material to provide additional material for the dense-phase reaction. When the reaction is faster than the mass transfer, the overall reaction rate of the hollow porous catalyst system is 26.92%~29.55% higher than that of the solid spherical catalyst system at the studied conditions. It could be predicted that this hollow porous catalyst would be capable to improve the overall reaction efficiency of large gas-solid fluidized bed reactors due to wider distributions of the dilute- and dense-phase.
Keywords:hollow porous catalyst  gas-solid flow  mass transfer rate  reaction rate  numerical simulation  
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