Dissolution mechanisms of elemental sulfur during biooxidation of a refractory high-sulfur gold concentrate

被引:0
|
作者
Y. Song
H. Y. Yang
L. L. Tong
S. T. Huang
机构
[1] Northeastern University,School of Metallurgy
[2] General Research Institute for Nonferrous Metals,National Engineering Laboratory of Bio
来源
关键词
Biooxidation; Dissolution mechanism; Iron oxidation;
D O I
暂无
中图分类号
学科分类号
摘要
For gold recovery, a Chinese refractory, high-sulfur gold concentrate was subjected to biooxidation with high pulp density in a single stirred-tank reactor. The flotation concentrate contained 36.9 percent sulfur (S) and 33.9 percent iron (Fe). Different experimental regimes for biooxidation were applied. With a mixed culture and by controlling the amount of addition of the gold ores and the pH of the biooxidation system, maximum iron oxidation of 82.6 percent and sulfur oxidation of 79.3 percent were achieved. The experimental results indicate that the pH control was beneficial to the biooxidation of this concentrate. Approximately 28.4 percent of elemental sulfur (S8) was found in the oxidizing slags. Two dissolution mechanisms of elemental sulfur are proposed: (1) FeS2 → S80 → S2O32− → SO42− and (2) FeS2 → S80 → SO42−. The high pH had a positive effect on the reduction of the S8. The results of thermodynamic analysis indicate that as an oxidant the dissolved oxygen can effectively reduce the Gibbs free energy of the pyrite oxidation process and, compared with the reaction of ferric iron as the single oxidant, the oxidation of pyrite is easier. The efficiency of the gold recovery was related to the iron oxidation as well as the sulfur oxidation. Gold and silver recoveries of 92.4 percent and 66.4 percent, respectively, were achieved.
引用
收藏
页码:192 / 201
页数:9
相关论文
共 50 条
  • [1] Dissolution mechanisms of elemental sulfur during biooxidation of a refractory high-sulfur gold concentrate
    Song, Y.
    Yang, H. Y.
    Tong, L. L.
    Huang, S. T.
    MINERALS & METALLURGICAL PROCESSING, 2018, 35 (04) : 192 - 201
  • [2] Biooxidation of High-Sulfur Products of Ferric Leaching of a Zinc Concentrate
    M. I. Muravyov
    V. S. Melamud
    N. V. Fomchenko
    Microbiology, 2020, 89 : 174 - 181
  • [3] Biooxidation of High-Sulfur Products of Ferric Leaching of a Zinc Concentrate
    Muravyov, M. I.
    Melamud, V. S.
    Fomchenko, N. V.
    MICROBIOLOGY, 2020, 89 (02) : 174 - 181
  • [4] Combined Bacterial and Pressure Oxidation for Processing High-Sulfur Refractory Gold Concentrate
    Boduen, Anna
    Zalesov, Maxim
    Melamud, Vitaliy
    Grigorieva, Victoria
    Bulaev, Aleksandr
    PROCESSES, 2023, 11 (11)
  • [5] IS ELEMENTAL SULFUR RESPONSIBLE FOR HIGH-SULFUR COAL
    BARUAH, MK
    FUEL PROCESSING TECHNOLOGY, 1994, 40 (01) : 97 - 100
  • [6] VOLATILIZATION BEHAVIOR AND MECHANISMS OF ARSENIC, SULFUR AND CARBON IN THE REFRACTORY GOLD CONCENTRATE
    Hou, Li-chen
    Li, Qian
    Hu, Jian-jun
    Yang, Yong-bin
    Xu, Bing
    Jiang, Tao
    6TH INTERNATIONAL SYMPOSIUM ON HIGH-TEMPERATURE METALLURGICAL PROCESSING, 2015, : 163 - 170
  • [7] Comparison of Methods for the Sulfur Compounds and Elemental Sulfur Analysis in High-Sulfur Natural Gas
    Luo Qin
    Tu Zhenquan
    Ji Zhongli
    Xiao Xuelan
    Chang Honggang
    Xu Wenxiao
    ADVANCES IN MANUFACTURING SCIENCE AND ENGINEERING, PTS 1-4, 2013, 712-715 : 688 - +
  • [8] Semicontinuous biooxidation of high-sulfur concentrates: Relationship between volume or mass dissolution rate and pulp density
    Song, Y.
    Yang, H. Y.
    Tong, L. L.
    Sand, W.
    MINERALS & METALLURGICAL PROCESSING, 2018, 35 (04) : 202 - 214
  • [9] Semicontinuous biooxidation of high-sulfur concentrates: Relationship between volume or mass dissolution rate and pulp density
    Y. Song
    H. Y. Yang
    L. L. Tong
    W. Sand
    Mining, Metallurgy & Exploration, 2018, 35 : 202 - 214
  • [10] Determination of elemental sulfur in high-sulfur coal from southwestern China
    Liang, Handong
    Zhang, Taoying
    Feng, Jiuzhou
    Rao, Zhu
    Zhou, Qiang
    Zuo, Danying
    Ranliao Huaxue Xuebao/Journal of Fuel Chemistry and Technology, 2000, 28 (06): : 492 - 495