Effect of particles on the electrical charge of gas bubbles in flotation

被引:11
|
作者
Uddin, S. [1 ]
Li, Y. [1 ]
Mirnezami, M. [1 ]
Finch, J. A. [1 ]
机构
[1] McGill Univ, Dept Min & Mat Engn, Montreal, PQ H3A 2B2, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Flotation bubbles; Bubble-particle attachment; Sedimentation potential; Frothers; Ionic surfactants; AQUEOUS-SOLUTIONS; SURFACTANT SOLUTIONS; FINE PARTICLES; AIR BUBBLES; MICROBUBBLES; NANOBUBBLES; WATER;
D O I
10.1016/j.mineng.2012.03.017
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Direct bubble-particle interactions are followed by measuring bubble sedimentation potential (BSP) and by visualization at a pendant bubble. Alumina and silica were selected as examples of positive and negative charge particles, respectively, at the test pH 6-7 along with a serpentine sample isolated from an ultramafic Ni-ore. Provided particle concentration was not too high. BSP could be measured and interactions followed. Alumina and serpentine hydrophobized by anionic surfactant made the bubble charge less negative and with silica made hydrophobic by cationic surfactant the bubble became less positive. With non-ionic surfactant (frother) and electrolyte, BSP increased with alumina suggesting an electrostatic (non-hydrophobic) interaction. The visualization experiments confirmed attachment of hydrophobic particles and revealed attachment of non-hydrophobic alumina, silica and serpentine. Non-hydrophobic interactions were explored by introducing ionic surfactant to give the bubble the same sign charge as the particles which diminished pick-up. Under these same conditions the BSP could not be measured attributed to particles being well dispersed from the bubbles and giving competing particle sedimentation potential signals. The possibility of manipulating bubble charge to depress minerals is discussed. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:160 / 167
页数:8
相关论文
共 50 条
  • [11] The effect of gas bubbles on electrical breakdown in transformer oil
    Tyuftyaev, A. S.
    Gadzhiev, M. Kh
    Sargsyan, M. A.
    Akimov, P. L.
    Demirov, N. A.
    XXXI INTERNATIONAL CONFERENCE ON EQUATIONS OF STATE FOR MATTER (ELBRUS 2016), 2016, 774
  • [12] The effect of light on the electrical charge of suspended particles
    Young, SW
    Pingree, LW
    JOURNAL OF PHYSICAL CHEMISTRY, 1913, 17 (08): : 657 - 674
  • [13] Generation of ultrafine gas bubbles for aeration flotation
    Scherzinger, B
    Markozlokarnik, M
    Robra, KH
    CHEMIE INGENIEUR TECHNIK, 1999, 71 (10) : 1170 - 1174
  • [14] FLOTATION OF ALUMINA WITH ELECTROGENERATED GAS-BUBBLES
    KHOSLA, K
    KHOSLA, NK
    VENKATACHALAM, S
    SOMASUNDARAN, P
    MINERALS AND METALLURGICAL PROCESSING, 1995, 12 (03): : 132 - 137
  • [15] INVESTIGATIONS OF THE COLLISION PROCESS BETWEEN PARTICLES AND GAS-BUBBLES IN FLOTATION - A THEORETICAL-ANALYSIS
    SCHULZE, HJ
    RADOEV, B
    GEIDEL, T
    STECHEMESSER, H
    TOPFER, E
    INTERNATIONAL JOURNAL OF MINERAL PROCESSING, 1989, 27 (3-4) : 263 - 278
  • [16] Flotation of fine particles and intergrowths by small air bubbles
    Filippov, YM
    JOURNAL OF MINING SCIENCE, 1998, 34 (05) : 466 - 470
  • [17] STUDY OF PROBABILITY OF DETACHMENT OF PARTICLES FROM BUBBLES IN FLOTATION
    HOLTHAM, PN
    CHENG, TW
    TRANSACTIONS OF THE INSTITUTION OF MINING AND METALLURGY SECTION C-MINERAL PROCESSING AND EXTRACTIVE METALLURGY, 1991, 100 : C147 - C153
  • [18] Flotation of fine particles and intergrowths by small air bubbles
    Yu. M. Filippov
    Journal of Mining Science, 1998, 34 : 466 - 470
  • [19] Determination of the collision frequency between bubbles and particles in flotation
    Sarrot, V
    Guiraud, P
    Legendre, D
    CHEMICAL ENGINEERING SCIENCE, 2005, 60 (22) : 6107 - 6117
  • [20] Effect of pH on surface hydration of coal particles and its attachment with oily bubbles in flotation
    Gui, Dongjiao
    Chen, Songjiang
    Wang, Shiwei
    Tao, Xiuxiang
    Chen, Liang
    Wang, Rang
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2024, 46 (01) : 14699 - 14712