Numerical modelling of non-Newtonian slurry in a mechanical flotation cell

被引:104
作者
Bakker, C. W. [1 ]
Meyer, C. J. [2 ]
Deglon, D. A. [1 ]
机构
[1] Univ Cape Town, Dept Chem Engn, Ctr Minerals Res, ZA-7701 Cape Town, South Africa
[2] Univ Cape Town, Ctr Res Computat & Appl Mech, ZA-7701 Cape Town, South Africa
关键词
Modelling; Computational fluid dynamics; Froth flotation; Fine particle processing; Agitation; STIRRED TANKS; YIELD-STRESS; CFD; FLUIDS;
D O I
10.1016/j.mineng.2009.03.016
中图分类号
TQ [化学工业];
学科分类号
081705 [工业催化];
摘要
Certain mineral slurries used in the minerals processing industry have been shown to exhibit non-Newtonian rheologies, particularly with finer particle sizes and at higher solid concentrations. Research has also shown that a cavern containing yielded fluid surrounded by stagnant fluid form around the impeller during the agitation of non-Newtonian fluids exhibiting yield stresses, and this is therefore hypothesised to occur inside mechanical flotation cells which may adversely affect fluid hydrodynamics. A single phase non-Newtonian fluids was modelled using CFD, using the Herschel-Bulkley non-Newtonian model with constants derived from experimentally determined Bindura nickel ore slurry, known to be theologically complex due to the presence of fibrous mineral types, such as serpentine. The modelling methodology was first validated against published experimental results in a stirred tank, and results were experimentally validated using piezoelectric pressure transducers to measure the magnitude of pressure fluctuations due to the fluid velocity in order to define the cavern boundary. Both experimental and numerical findings show that a cavern forms around the stator, with its size depending on slurry yield stress. It was also found that the shear-stress transport (SST) k-omega turbulence model predicted the cavern boundary most accurately. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:944 / 950
页数:7
相关论文
共 20 条
[1]
CFD analysis of caverns and pseudo-caverns developed during mixing of non-newtonian fluids [J].
Adams, L. W. ;
Barigou, M. .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2007, 85 (A5) :598-604
[2]
Mixing of shear-thinning fluids with yield stress in stirred tanks [J].
Arratia, P. E. ;
Kukura, J. ;
Lacombe, J. ;
Muzzio, F. J. .
AICHE JOURNAL, 2006, 52 (07) :2310-2322
[3]
Modeling turbulent flow in stirred tanks with CFD: the influence of the modeling approach, turbulence model and numerical scheme [J].
Aubin, J ;
Fletcher, DF ;
Xuereb, C .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2004, 28 (05) :431-445
[4]
Measuring techniques in gas-liquid and gas-liquid-solid reactors [J].
Boyer, C ;
Duquenne, AM ;
Wild, G .
CHEMICAL ENGINEERING SCIENCE, 2002, 57 (16) :3185-3215
[5]
BURDUKOVA E, 2008, 24 INT MIN PROC C BE
[6]
CFD modelling of stirred tanks: Numerical considerations [J].
Deglon, D. A. ;
Meyer, C. J. .
MINERALS ENGINEERING, 2006, 19 (10) :1059-1068
[7]
Review of hydrodynamics and gas dispersion in flotation cells on South African Platinum concentrators [J].
Deglon, DA ;
Egya-Mensah, D ;
Franzidis, JP .
MINERALS ENGINEERING, 2000, 13 (03) :235-244
[8]
ELSON TP, 1986, CHEM ENG SCI, V41, P255
[9]
Parameter studies on the rheology of limestone slurries [J].
He, MZ ;
Wang, YM ;
Forssberg, E .
INTERNATIONAL JOURNAL OF MINERAL PROCESSING, 2006, 78 (02) :63-77
[10]
Koh P.T.L., 2003, 3 INT C CFD MIN PROC