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
  • [21] Application of calcium lignosulphonate as an environmentally friendly depressant in the Cu-As separation by froth flotation at low alkalinity
    Luo, Yuanjia
    Xia, Yuqin
    Wang, Changtao
    Chen, Jianhua
    Ou, Leming
    JOURNAL OF CLEANER PRODUCTION, 2023, 406
  • [22] Floatation separation of galena, sphalerite, and pyrrhotite by combined depressant CCSL
    Bai A.-P.
    Song Y.-S.
    Zhou H.
    Song, Yong-Sheng (sysmba@163.com), 1600, Science Press (39): : 1152 - 1158
  • [23] A THERMODYNAMIC STUDY OF DILUTE SULFUR AND CU-S SOLUTIONS IN LEAD
    GRANT, RM
    RUSSELL, B
    METALLURGICAL TRANSACTIONS, 1970, 1 (01): : 75 - &
  • [24] ELECTRODEPOSITION OF CU-S ALLOY FROM AQUEOUS-SOLUTION
    INOUE, H
    TUBAKINO, H
    YAMAKAWA, K
    TANAKA, H
    DENKI KAGAKU, 1987, 55 (12): : 921 - 924
  • [25] New Low to Medium Temperature Electrolyte Separation Method and System for Alkaline Water Electrolysis
    Hartvigsen, J. L.
    Smith, J. D.
    Dogan, F.
    LOW-TEMPERATURE FUEL CELLS, ELECTROLYZERS, AND REDOX FLOW CELLS, 2015, 68 (03): : 133 - 137
  • [26] STUDY OF FUSION LAYERING IN CU-S SYSTEM BY THE ACOUSTIC METHOD
    GLAZOV, VM
    KIM, SG
    MAMBETERZINA, GK
    ZHURNAL FIZICHESKOI KHIMII, 1992, 66 (09): : 2544 - 2548
  • [27] Intrinsically Low Thermal Conductivity in a Novel Cu-S Modified ZrS2 Compound with Asymmetric Bonding
    Li, Zhi
    Zhou, Zhengyang
    Zhang, Jiawei
    Zhu, Chenxi
    Qiu, Pengfei
    Deng, Tingting
    Xu, Fangfang
    Chen, Lidong
    Shi, Xun
    SMALL, 2023, 19 (52)
  • [28] Intrinsically Low Thermal Conductivity in a Novel Cu-S Modified ZrS2 Compound with Asymmetric Bonding
    Li, Zhi
    Zhou, Zhengyang
    Zhang, Jiawei
    Zhu, Chenxi
    Qiu, Pengfei
    Deng, Tingting
    Xu, Fangfang
    Chen, Lidong
    Shi, Xun
    SMALL, 2023,
  • [29] ACTIVITIES AND PHASE-EQUILIBRIA IN CU-S MELTS BY EMF TECHNIQUES
    NIEMELA, J
    TASKINEN, P
    SCANDINAVIAN JOURNAL OF METALLURGY, 1984, 13 (06) : 382 - 390
  • [30] NMR-STUDY OF SOME MO(W)-CU-S COMPOUNDS
    LIU, HQ
    CAO, R
    LEI, XJ
    WEI, GW
    KANG, BS
    BULLETIN OF MAGNETIC RESONANCE, VOL 11, NOS 3/4: PROCEEDINGS OF THE INTERNATIONAL SOCIETY OF MAGNETIC RESONANCE TENTH MEETING, 1989, : 395 - 395