Modelling of gas-liquid-solid distribution in the cocurrent three-phase moving bed

被引:8
作者
Huang, Zhengliang [1 ]
Wang, Chao [1 ]
Yang, Yao [1 ,2 ]
Sun, Jingyuan [1 ]
Wang, Jingdai [1 ]
Yang, Yongrong [1 ]
Du, Bing [3 ]
机构
[1] Zhejiang Univ, Coll Chem & Biol Engn, Hangzhou 310027, Peoples R China
[2] ZJU Hangzhou Global Sci & Technol Innovat Ctr, 733 Jianshe 3rd Rd, Hangzhou 311215, Peoples R China
[3] ExxonMobil Res & Engn Co, 1545 Route 22 East, Annandale, NJ 08801 USA
基金
中国国家自然科学基金;
关键词
Three-phase moving bed; CFD simulation; Particle flow behavior; Gas -liquid flow behavior; Euler-Euler multi -phase flow model; TRICKLE-BED; ERGUN CONSTANTS; GRANULAR FLOW; REACTORS; HYDRODYNAMICS; SEGREGATION; SIMULATION; PARTICLES; BRIDGE;
D O I
10.1016/j.cej.2022.140733
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The three-phase moving bed reactors (TMBRs) can supply a potential solution for the multi-phase reactions with deactivating catalysts to realize Online Catalyst Replacement (OCR). In this work, computational fluid dynamics (CFD) simulations were employed to investigate the flow behavior of each phase in a cocurrent TMBR. The Euler-Euler multi-phase flow model and two different liquid-solid force models were employed to describe the dense -phase particle flow and liquid-solid interaction, respectively. The results revealed that the solid flow rate increased due to the gas-liquid flow, but radial solids distribution had not changed significantly. The effect of gas -liquid flow on the solid volume distribution was mainly reflected in the wall and inlet region, which led to lower solid volume fraction and higher granular temperature in the local area. Meanwhile, compared with trickle beds, with the increasing gas flow rate or decreasing liquid flow rate, both the liquid holdup and flow dead zone decreased in TMBRs. With the increase in liquid flow rate, the effect of liquid migration (from the wall to the center) on the liquid distribution was weakened. Besides, due to the competition between the pressure gradient force and gas-liquid drag force, the variations of volume and velocity of each phase depended on operating conditions, which were divided into three typical ranges. The gas-liquid-solid distribution could significantly advance the understanding of flow behaviors in TMBRs, based on which the reactor development could be further promoted.
引用
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页数:13
相关论文
共 39 条
[1]   A two-fluid hydrodynamic model for the transition between trickle and pulse flow in a cocurrent gas-liquid packed-bed reactor [J].
Attou, A ;
Ferschneider, G .
CHEMICAL ENGINEERING SCIENCE, 2000, 55 (03) :491-511
[2]   Modelling of the hydrodynamics of the cocurrent gas-liquid trickle flow through a trickle-bed reactor [J].
Attou, A ;
Boyer, C ;
Ferschneider, G .
CHEMICAL ENGINEERING SCIENCE, 1999, 54 (06) :785-802
[3]   Wetting topology in trickle bed reactors [J].
Baussaron, Loic ;
Julcour-Lebigue, Carine ;
Wilhelm, Anne-Marie ;
Delmas, Henri ;
Boyer, Christophe .
AICHE JOURNAL, 2007, 53 (07) :1850-1860
[4]   Prediction of segregation in funnel and mass flow discharge [J].
Bertuola, Davide ;
Volpato, Silvia ;
Canu, Paolo ;
Santomaso, Andrea C. .
CHEMICAL ENGINEERING SCIENCE, 2016, 150 :16-25
[5]   Study of liquid spreading from a point source in a trickle bed via gamma-ray tomography and CFD simulation [J].
Boyer, C ;
Koudil, A ;
Chen, P ;
Dudukovic, MP .
CHEMICAL ENGINEERING SCIENCE, 2005, 60 (22) :6279-6288
[6]   Hydrodynamic Modeling on the External Liquid-Solid Wetting Efficiency in a Trickling Flow Reactor [J].
Cheng, Zhen-Min ;
Kong, Xiang-Ming ;
Zhu, Jun ;
Wang, Zhen-Yuan ;
Jin, Jian ;
Huang, Zi-Bin .
AICHE JOURNAL, 2013, 59 (01) :283-294
[7]   A hybrid numerical model for predicting segregation during core flow discharge [J].
Christakis, Nicholas ;
Chapelle, Pierre ;
Strusevich, Nadezhda ;
Bridle, Ian ;
Baxter, John ;
Patel, Mayur K. ;
Cross, Mark ;
Tuzun, Ugur ;
Reed, Alan R. ;
Bradley, Michael S. A. .
ADVANCED POWDER TECHNOLOGY, 2006, 17 (06) :641-662
[8]   MOVING-BED PROCESS FOR RESIDUE HYDROTREATING [J].
EUZEN, JP .
REVUE DE L INSTITUT FRANCAIS DU PETROLE, 1991, 46 (04) :517-527
[9]   Hydrodynamics of trickle-bed reactors: Experiments and CFD modeling [J].
Gunjal, PR ;
Kashid, MN ;
Ranade, VV ;
Chaudhari, RV .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2005, 44 (16) :6278-6294
[10]   Numerical modeling of the cavity phenomenon and its elimination way in rectangular radial moving bed reactor [J].
He, Yi-jun ;
Xiao, Fang-Zhi ;
Luo, Zheng-Hong .
POWDER TECHNOLOGY, 2015, 274 :28-36