Flow behaviors of a large spout-fluid bed at high pressure and temperature by 3D simulation with kinetic theory of granular flow

被引:33
|
作者
Zhong, Wenqi [1 ]
Zhang, Mingyao [1 ]
Jin, Baosheng [1 ]
Yuan, Zhulin [1 ]
机构
[1] SE Univ, Minist Educ, Key Lab Clean Coal Power Generat & Combust Techno, Nanjing 210096, Peoples R China
基金
中国国家自然科学基金;
关键词
fluidization; dense gas-solid flow; Eulerian simulation; kinetic theory of granular flow; spout-fluid bed; jetting fluidized bed;
D O I
10.1016/j.powtec.2007.01.034
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Flow behaviors of a large spout-fluid bed (I.D. 1.0 m) at high pressure and temperature were investigated by Eulerian simulation. The gas phase was modeled with k - epsilon turbulent model and the particle phase was modeled with kinetic theory of granular flow. The development of an internal jet, gas-solid flow patterns, particle concentrations, particle velocities and jet penetration depths at high pressure and temperature at different operating conditions were simulated. The results show that the bed operated at an initial bed height larger than the maximum spoutable bed height resembles the flow patterns of jetting fluidized beds. The radial profiles of particle velocities and concentrations at high temperature and pressure have the similar characteristic shapes to those at ambient pressure and temperature. The particle concentrations and velocities appear to depend on the bed heights when increasing pressure while keeping the gas velocities and temperature constant. The particle velocities in the lower region of the bed increase with increasing pressure, while they tend to decrease in the middle and upper regions of the bed. The particle concentrations have an opposite dependency with increasing pressure. They decrease in the lower region of the bed but increase in the middle and upper regions of the bed. Besides, the jet penetration depths are found to increase with increasing pressure. (c) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:90 / 103
页数:14
相关论文
共 50 条
  • [31] 3D MHD simulation of pressure drop and fluctuation in electromagnetic pump flow
    Asada, Takatoshi
    Aizawa, Rie
    Suzuki, Tetsu
    Fujishima, Yasushi
    Hoashi, Eiji
    MECHANICAL ENGINEERING JOURNAL, 2015, 2 (05):
  • [32] 3D DYNAMIC SIMULATION OF A FLOW FORCE COMPENSATED PRESSURE RELIEF VALVE
    Altare, Giorgio
    Rundo, Massimo
    Olivetti, Micaela
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2016, VOL. 7, 2017,
  • [33] Numerical simulation of fluid flow in a monolithic exchanger related to high temperature and high pressure operating conditions
    Selimovic, F.
    Sunden, B.
    ADVANCED COMPUTATIONAL METHODS AND EXPERIMENTS IN HEAT TRANSFER X, 2008, 61 : 25 - 35
  • [34] A CFD Simulation of 3D Air Flow and Temperature Variation in Refrigeration Cabinet
    Wang, Limin
    Zhang, Lin
    Lian, Guoping
    NEW PARADIGM OF PARTICLE SCIENCE AND TECHNOLOGY, PROCEEDINGS OF THE 7TH WORLD CONGRESS ON PARTICLE TECHNOLOGY, 2015, 102 : 1599 - 1611
  • [35] Numerical simulation of fluid-flow processes in a 3D high-resolution carbonate reservoir analogue
    Agada, S.
    Chen, F.
    Geiger, S.
    Toigulova, G.
    Agar, S.
    Shekhar, R.
    Benson, G.
    Hehmeyer, O.
    Amour, F.
    Mutti, M.
    Christ, N.
    Immenhauser, A.
    PETROLEUM GEOSCIENCE, 2014, 20 (01) : 125 - 142
  • [36] High pressure die casting simulation using FLOW-3D
    Barkhudarov, M
    DIE CASTING ENGINEER, 1997, 41 (03): : 36 - 36
  • [37] Numerical simulation of 3d viscous fluid flow and convective mixing in a static mixer
    Wünsch, O
    Böhme, G
    ARCHIVE OF APPLIED MECHANICS, 2000, 70 (1-3) : 91 - 102
  • [38] Numerical Simulation of Turbulent Fluid Flow in Rough Rock Fracture: 3D Case
    M. Finenko
    H. Konietzky
    Rock Mechanics and Rock Engineering, 2024, 57 : 2297 - 2323
  • [39] Numerical Simulation of Turbulent Fluid Flow in Rough Rock Fracture: 3D Case
    Finenko, M.
    Konietzky, H.
    ROCK MECHANICS AND ROCK ENGINEERING, 2024, 57 (04) : 2297 - 2323
  • [40] USING THE DIPOLE PARTICLES FOR SIMULATION OF 3D VORTEX FLOW OF A VISCOUS INCOMPRESSIBLE FLUID
    Syrovatskii, Dmitrii A.
    Dynnikova, Galina Ya.
    Guvernyuk, Sergey V.
    Arutunyan, Gurgen
    PARTICLE-BASED METHODS IV-FUNDAMENTALS AND APPLICATIONS, 2015, : 692 - 701