ELECTROLYTIC OXIDATION OF ARSENOPYRITE SLURRIES

被引:9
作者
LINGE, HG
JONES, WG
机构
[1] A.J. Parker Centre for Hydrometallurgy - CSIRO Division, Mineral Products Curtin University Site, Perth, WA 6102, Hayman Road, Bentley
关键词
ARSENOPYRITE; SLURRY OXIDATION; REFRACTORY GOLD ORE; SULFIDE OXIDATION; ELECTROLYSIS;
D O I
10.1016/0892-6875(93)90060-Z
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Arsenopyritic (FeAsS) gold ore is usually refractory because cyanide solution cannot react with the gold, which is locked within the sulphide lattice. Destruction of the arsenopyrite lattice by electrolytic oxidation is a possible low temperature pretreatment option for refractory arsenopyritic gold ore. Slurry electrolysis of arsenopyrite particles on an inert anode was tested in a cell partitioned into anolyte and catholyte sections with a felt diaphragm. Current densities arising from particle-anode collision were less than a few hundred muAcm-2, which is insufficient current for any practical application. Hence, mediated electrolysis by a dissolved redox couple in the anolyte was tested. Fe(II) is initially dissolved in the anolyte from crushed arsenopyrite prior to oxidation. Fe(II) is anodically oxidised to Fe(III), which can be reduced at the arsenopyrite particle surface causing dissolution. The reaction produces an increasing amount of Fe(II) available in a repetitive cycle for re-oxidation at the anode at an increasing current density. This mode of reaction could readily oxidise a 10 wt % slurry above 49-degrees-C (taken to 30 kC or about 50% oxidation of the material) with current densities in the range 10 - 30 mAcm-2 in this test cell. In the presence of the couple Cl2-Cl-, significant oxidation was possible at 25-degrees-C but there was wastage of current because chlorine built up in the anolyte and so could be reduced at the cathode. This effect became unimportant above 49-degrees-C because the reaction of chlorine with the mineral was then much faster, limiting any build up of chlorine in the anolyte. In the present cell configuration, rates of slurry oxidation were much lower than those obtainable with a mineral electrode. To reduce energy costs, a better designed cell is needed which would increase the oxidising potential at the slurry-particle surface.
引用
收藏
页码:873 / 882
页数:10
相关论文
共 50 条
  • [21] Surface properties and flotation inhibition mechanism of air oxidation on pyrite and arsenopyrite
    Jiang, Kai
    Liu, Jie
    Wang, Yan
    Zhang, Deju
    Han, Yuexin
    APPLIED SURFACE SCIENCE, 2023, 610
  • [22] Experimental and theoretical studies of the mechanism of oxidation of arsenopyrite in the presence of hydrogen peroxide
    Jiang, Kai
    Santos-Carballal, David
    Liu, Jie
    Han, Yuexin
    Zhu, Yimin
    Wang, Yan
    Zhang, Deju
    de Leeuw, Nora H.
    APPLIED SURFACE SCIENCE, 2023, 637
  • [23] Chemical oxidation of arsenopyrite using a novel oxidant-Chlorine dioxide
    Dong, Zaizheng
    Zhu, Yimin
    Han, Yuexin
    Gao, Peng
    Gu, Xiaotian
    Sun, Yongsheng
    MINERALS ENGINEERING, 2019, 139
  • [24] Oxidation mechanism of arsenopyrite under alkaline conditions: Experimental and theoretical analyses
    Chen, Manjiao
    Zhang, Zhengfu
    Hu, Xinjun
    Tian, Jianping
    Lu, Zhiyan
    Wang, Jingsong
    Wan, Rundong
    Zhou, Xian
    Zhou, Xinjun
    Shen, PeiLun
    Liu, Dianwen
    JOURNAL OF CLEANER PRODUCTION, 2022, 358
  • [25] Jarosite pseudomorph formation from arsenopyrite oxidation using Acidithiobacillus ferrooxidans
    Ossa Henao, Diana Marcela
    Marquez Godoy, Marco Antonio
    HYDROMETALLURGY, 2010, 104 (02) : 162 - 168
  • [26] Acid pressure oxidation leaching of arsenopyrite in the presence of pyrite: Oxygen consumption kinetics
    Liu, Yanhua
    Ng, Wei Sung
    Chen, Miao
    MINERALS ENGINEERING, 2023, 195
  • [27] OCCURRENCES AT MINERAL BACTERIA INTERFACE DURING OXIDATION OF ARSENOPYRITE BY THIOBACILLUS-FERROOXIDANS
    FERNANDEZ, MGM
    MUSTIN, C
    DEDONATO, P
    BARRES, O
    MARION, P
    BERTHELIN, J
    BIOTECHNOLOGY AND BIOENGINEERING, 1995, 46 (01) : 13 - 21
  • [28] Oxidation mechanism of the arsenopyrite surface by oxygen with and without water: Experimental and theoretical analysis
    Chen Manjiao
    Zhang Zhengfu
    Hu Xinjun
    Tian Jianping
    Wang Jingsong
    Wan Rundong
    Xian, Zhou
    Zhou Xinjun
    Shen PeiLun
    Liu Dianwen
    APPLIED SURFACE SCIENCE, 2022, 573
  • [29] Suppression of arsenopyrite oxidation by microencapsulation using ferric-catecholate complexes and phosphate
    Park, Ilhwan
    Higuchi, Kazuki
    Tabelin, Carlito Baltazar
    Jeon, Sanghee
    Ito, Mayumi
    Hiroyoshi, Naoki
    CHEMOSPHERE, 2021, 269
  • [30] Study on the mechanism of ammonium carbamate in promoting the separation of chalcopyrite and arsenopyrite in oxidation systems
    Wu, Fan
    Wu, Dandan
    Zuo, Qi
    Cao, Jing
    Kong, Ning
    Feng, Kang
    Li, Jianan
    Bai, Shaojun
    APPLIED SURFACE SCIENCE, 2025, 686