Combined depressant for the Cu-S separation in low alkaline medium

被引:0
|
作者
Guang-Hua, A.I. [1 ]
Tao, Xiu-Xiang [1 ]
Yan, Hua-Shan [2 ]
Guang-Hua, A.I. [2 ]
机构
[1] Guang-Hua, A.I.
[2] Tao, Xiu-Xiang
[3] Yan, Hua-Shan
[4] Guang-Hua, A.I.
来源
Guang-hua, A.I. | 1600年 / Journal of Chemical and Pharmaceutical Research, 3/668 Malviya Nagar, Jaipur, Rajasthan, India卷 / 06期
关键词
Calcium hypochlorite - Combined depressant - Inhibition mechanisms - Low alkaline - Low alkalinities - Mineral surfaces - Pyrogallic acids - Sodium hypochlorites;
D O I
暂无
中图分类号
学科分类号
摘要
The Cu-S separation tests have been conducted at pH=7∼8 with five combined depressants, namely, Starch + pyrogallic acid, sodium hypochlorite + pyrogallic acid, pyrogallic acid + Tannic, sodium hypochlorite + Tannic and calcium hypochlorite + DT-2#. The tests show that calcium hypochlorite + DT-2# is the best depressor for pyrite, which leads to the Cu-S separation at a low alkalinity of pH=7∼8 without lime. From the chemical analysis and Raman spectroscopy of the mineral surface, the inhibition mechanism of pyrite at a pH of 7∼8 is as following: calcium hypochlorite + DT-2# oxidizes the pyrite surface to produce a hydrophilous film of Fe(OH)3 and CaCO3, which enhances the hydrophilicity of the pyrite surface, and pyrite is fully depressed during the Cu-S separation, thus the separation of copper from sulfur has come true. © 2014, Journal of Chemical and Pharmaceutical Research. All right reserved.
引用
收藏
页码:2794 / 2800
相关论文
共 50 条
  • [1] A Study on the Combined Depressant for the Cu-S Separation in Low Alkaline Medium and Its Depressing Mechanism
    Ai, Guanghua
    Zhou, Yuan
    Wang, Yong
    NEW PARADIGM OF PARTICLE SCIENCE AND TECHNOLOGY, PROCEEDINGS OF THE 7TH WORLD CONGRESS ON PARTICLE TECHNOLOGY, 2015, 102 : 338 - 345
  • [2] Cu-S flotation separation via the combination of sodium humate and lime in a low pH medium
    Chen, Jianhua
    Li, Yuqiong
    Chen, Ye
    MINERALS ENGINEERING, 2011, 24 (01) : 58 - 63
  • [3] CATHODOLUMINESCENCE IN CU-S SYSTEM
    MITTLEMAN, SD
    LOFERSKI, JJ
    SHEWCHUN, J
    WOLD, A
    DEMEO, EA
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1976, 21 (04): : 591 - 591
  • [4] Mechanism of Cu-S oxidation
    Medved, J
    Gontarev, V
    Kosec, L
    METALL, 1999, 53 (7-8): : 386 - 389
  • [5] Gibbs Energy Modeling of the Cu-S Liquid Phase: Completion of the Thermodynamic Calculation of the Cu-S System
    Peter Waldner
    Metallurgical and Materials Transactions B, 2020, 51 : 805 - 817
  • [6] Gibbs Energy Modeling of the Cu-S Liquid Phase: Completion of the Thermodynamic Calculation of the Cu-S System
    Waldner, Peter
    METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2020, 51 (02): : 805 - 817
  • [7] Phase relations of the Cu-S system at low temperatures: Stability of anilite
    Morimoto, Nobuo
    Koto, Kichiro
    AMERICAN MINERALOGIST, 1970, 55 (1-2) : 106 - 117
  • [8] THERMODYNAMIC PROPERTIES OF Cu-S SOLUTIONS
    Kucharski, M.
    ARCHIVES OF METALLURGY AND MATERIALS, 2018, 63 (04) : 1815 - 1820
  • [9] Solidification of undercooled Cu, Cu-O and Cu-S alloys
    Yoshida, M
    Muramatsu, T
    Hong, JF
    Nakae, H
    JOURNAL OF THE JAPAN INSTITUTE OF METALS, 1996, 60 (11) : 1095 - 1100
  • [10] Research Update: Cu-S based synthetic minerals as efficient thermoelectric materials at medium temperatures
    Suekuni, Koichiro
    Takabatake, Toshiro
    APL MATERIALS, 2016, 4 (10):