The froth stability column: linking froth stability and flotation performance

被引:103
|
作者
Barbian, N [1 ]
Hadler, K [1 ]
Ventura-Medina, E [1 ]
Cilliers, JJ [1 ]
机构
[1] UMIST, Dept Chem Engn, Froth & Foam Res Grp, Manchester M60 1QD, Lancs, England
关键词
froth flotation; flotation bubbles; flotation froths; process instrumentation;
D O I
10.1016/j.mineng.2004.06.010
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Froth structure and stability are known to play important roles in determining mineral flotation recovery and selectivity. However, measuring froth stability quantitatively, both at laboratory and industrial scales remains a significant challenge. A quantitative dynamic stability measure has previously been evaluated at laboratory scale. The technique is based on the Bikerman foam test and uses a non-overflowing froth column to quantify froth stability. At laboratory scale the froth stability measured in this way agreed very closely with other methods, and could be related to flotation performance. In this paper, the froth stability column is tested at Northparkes, Australia. The dynamic froth stability Sigma and froth stability factor beta were measured under different operating conditions, and compared with the fraction of air overflowing the cell, alpha, which was measured using image analysis. The froth stability column results gave the same trends as image analysis. In particular the froth stability factor was found to be linearly related to the actual fraction of air overflowing the cell. The metallurgical results clearly indicated that changes in air rate, froth depth and frother concentration result in variation in flotation performance that can be attributed to changes in froth stability. The results showed that high froth stability conditions occur at lower air flowrates, and result in improved flotation performance. It is found that the froth stability column is an accurate and cost-effective method for quantifying froth stability, and for indicating changes in flotation performance. (C) 2004 Elsevier Ltd. All rights reserved.
引用
收藏
页码:317 / 324
页数:8
相关论文
共 50 条
  • [41] Effect of flotation froth properties on froth rheology
    Li, Chao
    Runge, Kym
    Shi, Fengnian
    Farrokhpay, Saeed
    POWDER TECHNOLOGY, 2016, 294 : 55 - 65
  • [42] Bubble and Froth Stabilizing Agents in Froth Flotation
    Bournival, Ghislain
    Ata, Seher
    Jameson, Graeme J.
    MINERAL PROCESSING AND EXTRACTIVE METALLURGY REVIEW, 2017, 38 (06): : 366 - 387
  • [43] Froth stability and entrainment evaluation of a novel frother for KCl/NaCl flotation
    Wang, Linjian
    Xu, Yanxia
    Song, Xingfu
    AICHE JOURNAL, 2023, 69 (06)
  • [44] Influence of inorganic salt on flotation froth stability of coal fly ash
    Ran, Jin-Cai
    Li, Guo-Sheng
    Cao, Yi-Jun
    Liu, Chang
    Meitan Xuebao/Journal of the China Coal Society, 2015, 40 (03): : 646 - 651
  • [45] THE EFFECT OF FROTH STABILITY ON THE BENEFICIATION OF LOW-RANK COAL BY FLOTATION
    WOODBURN, ET
    FLYNN, SA
    CRESSEY, BA
    CRESSEY, G
    POWDER TECHNOLOGY, 1984, 40 (1-3) : 167 - 177
  • [46] Correlation of air recovery with froth stability and separation efficiency in coal flotation
    Qu, Xuan
    Wang, Liguang
    Nguyen, Anh V.
    MINERALS ENGINEERING, 2013, 41 : 25 - 30
  • [47] Effects of particle size and wettability on froth stability in a collophane flotation system
    Fang, Ji
    Ge, Yingyong
    Yu, Jun
    POWDER TECHNOLOGY, 2021, 379 : 576 - 584
  • [48] Interpretation of the effect of froth structure on the performance of froth flotation using image analysis
    Banford, AW
    Aktas, Z
    Woodburn, ET
    POWDER TECHNOLOGY, 1998, 98 (01) : 61 - 73
  • [49] The effect of impeller-stator design on bubble size: Implications for froth stability and flotation performance
    Mesa, Diego
    Morrison, Angus J.
    Brito-Parada, Pablo R.
    MINERALS ENGINEERING, 2020, 157
  • [50] Output Regulation of Linearized Column Froth Flotation Process
    Xu, Xiaodong
    Tian, Yahui
    Yuan, Yuan
    Luan, Xiaoli
    Liu, Fei
    Dubljevic, Stevan
    IEEE TRANSACTIONS ON CONTROL SYSTEMS TECHNOLOGY, 2021, 29 (01) : 249 - 262