期刊文献+

Simulation of Solid Suspension in a Stirred Tank Using CFD-DEM Coupled Approach* 被引量:16

Simulation of Solid Suspension in a Stirred Tank Using CFD-DEM Coupled Approach*
下载PDF
导出
摘要 Computational fluid dynamics-discrete element method(CFD-DEM) coupled approach was employed to simulate the solid suspension behavior in a Rushton stirred tank with consideration of transitional and rotational motions of millions of particles with complex interactions with liquid and the rotating impeller. The simulations were satisfactorily validated with experimental data in literature in terms of measured particle velocities in the tank.Influences of operating conditions and physical properties of particles(i.e., particle diameter and density) on the two-phase flow field in the stirred tank involving particle distribution, particle velocity and vortex were studied.The wide distribution of particle angular velocity ranging from 0 to 105r·min 1is revealed. The Magnus force is comparable to the drag force during the particle movement in the tank. The strong particle rotation will generate extra shear force on the particles so that the particle morphology may be affected, especially in the bio-/polymer-product related processes. It can be concluded that the CFD-DEM coupled approach provides a theoretical way to understand the physics of particle movement in micro- to macro-scales in the solid suspension of a stirred tank. Computational fluid dynamics-discrete element method (CFD-DEM) coupled approach was employed to simulate the solid suspension behavior in a Rushton stirred tank with consideration of transitional and rotational motions of millions of particles with complex interactions with liquid and the rotating impeller. The simulations were satisfactorily validated with experimental data in literature in terms of measured particle velocities in the tank. Influences of operating conditions and physical properties of particles (i.e., particle diameter and density) on the two-phase flow field in the stirred tank involving particle distribution, particle velocity and vortex were studied. The wide distribution of particle angular velocity ranging from 0 to 105 r·min-1 is revealed. The Magnus force is comparable to the drag force during the particle movement in the tank. The strong particle rotation will generate extra shear force on the particles so that the particle morphology may be affected, especially in the bio-/polymer-product related processes. It can be concluded that the CFD-DEM coupled approach provides a theoretical way to under-stand the physics of particle movement in micro-to macro-scales in the solid suspension of a stirred tank.
出处 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2013年第10期1069-1081,共13页 中国化学工程学报(英文版)
基金 Supported by the State Key Development Program for Basic Research of China (2013CB733600), the National Natural Science Foundation of China (21036003, 20776074) and the Specialized Research Fund for the Doctoral Program of Higher Education of China (20090002110069).
关键词 固体悬浮物 耦合方法 搅拌槽 模拟 计算流体动力学 粒子速度 旋转运动 颗粒分布 stirred tank, solid suspension, particle rotation, computational fluid dynamics, discrete element method
  • 相关文献

参考文献28

  • 1Virdung, T., Rasmuson, A., "Measurements of continuous phase ve- locities in solid-liquid flow at elevated concentrations in a stirred vessel using LDV", Chem. Eng. Res. Des., 85 (A2), 193-200 (2007).
  • 2Nouri, J.M., Whitelaw, J.H., "Particle velocity characteristics of di- lute to moderately dense flows in stirred reactors", Int. J. Multiphase Flow, 18 (1), 21-33 (1992).
  • 3Unadkat, H., Rielly, C.D., Hargrave, G.K., Nagy, Z.K., "Application of fluorescent PIV and digital image analysis to measure turbulence properties of solid-liquid stirred suspensions", Chem. Eng. Res. Des.,87 (4), 133-142 (2009).
  • 4Guha, D., Ramachandran, EA., Dudukovic, M.R, "Flow field of suspended solids in a stirred tank reactor by Lagrangian tracking", Chem. Eng. Sci., 62 (22), 6143-6154 (2007).
  • 5Hosseini, S., Patel, D., Ein-Mozaffari, E, Mebrvar, M., "Study of solid-liquid mixing in agitated tanks through electrical resistance tomography", Chem. Eng. Sci., 65 (4), 1374-1384 (2010).
  • 6Gosman, A.D., Issa, R.I., Lekakou, C., Looney, M.K., Politis, S., "Multidimensional modelling of turbulent two-phase flow in stirred vessels", AIChE J., 38 (12), 1946-1956 (1992).
  • 7Micale, G., Rizzuti, E, Brucato, A., "CFD simulation of particle suspension height in stirred vessels", Chem. Eng. Res. Des., 82 (9), 1204-1213 (2004).
  • 8Fan, L., Mao, Z.S., Yang, C., Wang, Y.D., "Numerical simulation of laminar solid-liquid two-phase flow in stirred tank", Chem. Eng. Commun., 194 (3) 291-308 (2007).
  • 9Kasat, G.R., Khopkar, A.R., Ranade, V.V., Pandit, A.B., "CFD simu- lation of liquid-phase mixing in solid-liquid stirred reactor", Chem. Eng. Sci., 63 (15) 3877-3885 (2008).
  • 10Shan, X.G., Yu, G.Z., Yang, C., Mao, Z.S., Zhang, W.G., "Numerical simulation of liquid-solid flow in an unbaffied stirred tank with a pitched- blade turbine downflow", Ind. Eng. Chem. Res., 47 (9) 2926-2940 (2008).

同被引文献119

引证文献16

二级引证文献44

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部