Sulphite modification of galena surfaces and its effect on flotation and xanthate adsorption

被引:33
|
作者
Grano, SR [1 ]
Prestidge, CA [1 ]
Ralston, J [1 ]
机构
[1] Univ S Australia, Ian Wark Res Inst, The Levels, SA 5095, Australia
关键词
flotation; sulphide minerals; depressants; xanthate;
D O I
10.1016/S0301-7516(97)00049-5
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The effect of sulphite interaction with galena on the mechanism of ethyl xanthate adsorption onto galena surfaces has been studied in situ using UV spectroscopy. The influence of sulphite on galena flotation has been studied. X-ray photoelectron spectroscopic (XPS) and dissolution studies have been used to identify the mechanism of interaction between sulphite and galena surfaces. Metastable ethyl monothiocarbonate is a significant derivative of ethyl xanthate adsorption on galena in the absence of sulphite. The concentration of surface sites which produce monothiocarbonate increases with the initial state of galena oxidation, which, is in turn, apparently dependent upon galena preconditioning time, temperature and oxygen concentration. Significantly different ethyl xanthate adsorption characteristics were found, after sulphite conditioning of the galena surface. In this case, ethyl xanthate adsorption rate was significantly reduced, as was the formation of monothiocarbonate. Surface complexation of lead hydroxide by adsorbed sulphite decreases the rate of ethyl xanthate adsorption onto sites which, potentially, can produce monothiocarbonate. Galena dissolution studies and XPS examination of the galena surfaces together, confirmed the formation of insoluble lead sulphite precipitates at the galena surface. The effectiveness of sulphite depression of galena flotation is enhanced by adsorbed lead hydrolysis products on galena. (C) 1997 Elsevier Science B.V.
引用
收藏
页码:1 / 29
页数:29
相关论文
共 50 条
  • [1] Solution interaction of ethyl xanthate and sulphite and its effect on galena flotation and xanthate adsorption
    Grano, SR
    Prestidge, CA
    Ralston, J
    INTERNATIONAL JOURNAL OF MINERAL PROCESSING, 1997, 52 (2-3) : 161 - 186
  • [2] Adsorption of Polyethyleneimine on Fine Arsenopyrite and the Effect on Its Xanthate Flotation
    Ming, Pingtian
    Xing, Qingqing
    Wang, Zhen
    Zhao, Kaile
    Li, Fei
    Zou, Dan
    Guan, Youguo
    MINERALS, 2022, 12 (11)
  • [3] Selective depressive effect of pectin on sphalerite flotation and its mechanisms of adsorption onto galena and sphalerite surfaces
    Wang, Changtao
    Liu, Runqing
    Sun, Wei
    Jing, Nianwen
    Xie, Feifei
    Zhai, Qilin
    He, Dongdong
    MINERALS ENGINEERING, 2021, 170
  • [4] Effect of Collector Physisorption on Flotation of Galena with Xanthate and Pb2+
    S. A. Kondrat’ev
    I. A. Konovalov
    Journal of Mining Science, 2023, 59 : 628 - 637
  • [5] Effect of Collector Physisorption on Flotation of Galena with Xanthate and Pb2+
    Kondrat'ev, S. A.
    Konovalov, I. A.
    JOURNAL OF MINING SCIENCE, 2023, 59 (04) : 628 - 637
  • [6] Adsorption of isopropyl xanthate ions onto arsenopyrite and its effect on flotation
    Valdivieso, AL
    Escamilla, CO
    Song, S
    Baez, IL
    Martínez, IG
    INTERNATIONAL JOURNAL OF MINERAL PROCESSING, 2003, 69 (1-4) : 175 - 184
  • [7] Measurements and analysis of xanthate chain length effect on bubble attachment to galena surfaces
    Han, Seongsoo
    Nguyen, Anh, V
    Kim, Kwanho
    Park, Jai-koo
    You, Kwangsuk
    MINERALS ENGINEERING, 2020, 159
  • [8] Role of pH on the adsorption of xanthate and dithiophosphinate onto galena
    Araceli Elizondo-Alvarez, Martha
    Ivone Davila-Pulido, Gloria
    Bello-Teodoro, Simon
    Uribe-Salas, Alejandro
    CANADIAN METALLURGICAL QUARTERLY, 2019, 58 (01) : 107 - 115
  • [9] The effect of mixed thiol collectors on the flotation of galena
    McFadzean, B.
    Castelyn, D. G.
    O'Connor, C. T.
    MINERALS ENGINEERING, 2012, 36-38 : 211 - 218
  • [10] Interactions of xanthate with pyrite and galena surfaces in the presence and absence of oxygen
    Chen, Jian-Hua
    Li, Yu-Qiong
    Lan, Li-Hong
    Guo, Jin
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2014, 20 (01) : 268 - 273