Leaching of a low-grade, copper-nickel sulfide ore. 1. Key parameters impacting on Cu recovery during column bioleaching

被引:45
作者
Watling, H. R. [1 ]
Elliot, A. D. [1 ]
Maley, M. [2 ]
van Bronswijk, W. [2 ]
Hunter, C. [3 ]
机构
[1] CSIRO Minerals, AJ Parker Cooperat Res Ctr Integrated Hydromet So, Karawara, WA 6152, Australia
[2] Curtin Univ Technol, Dept Appl Chem, Perth, WA 6845, Australia
[3] Pacific Ore Technol, Perth, WA 6872, Australia
关键词
Chalcopyrite; Pentlandite; Pyrrhotite; Leaching; Bioleaching; IRON; SCHWERTMANNITE; CHALCOPYRITE; OXIDATION; MINERALS;
D O I
10.1016/j.hydromet.2009.03.006
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
This study was prompted by the disparate recoveries of nickel (>70%) and copper (<20%) from a test heap of copper-nickel sulfide ore after about 200 days of leaching. Variables tested in bioleaching columns charged with a pyrrhotite-rich, chalcopyrite and pentlandite ore were acid pre-conditioning, inoculation and aeration. The results indicated that the rapid reaction of pyrrhotite with acid created conditions that impacted directly and/or indirectly on copper recovery. important reactions were hydrogen sulfide formation, high soluble iron concentrations and the formation of large amounts of elemental sulfur. It was hypothesized that copper loss, evidenced by copper re-distribution during passage through the ore, was mainly the result of reaction with hydrogen sulfide to form covellite, although this could not be confirmed by XRD analysis of leached residues. A layer of iron-oxy-hydroxy-sulfate "scale" on particle surfaces encapsulated sulfide grains as well as elemental sulfur formed by the oxidation of pyrrhotite and was of sufficient depth and integrity to have hindered but not prevented leaching and bioleaching. Lack of aeration (oxygen, carbon dioxide) impacted on ferrous ion biooxidation and probably sulfur biooxidation. More extensive sulfur biooxidation to form acid might have lowered the solution pH and reduced the amount of scale formation, resulting in higher ferric ion concentrations and better chalcopyrite oxidation. Crown Copyright (C) 2009 Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:204 / 212
页数:9
相关论文
共 22 条
[1]  
AHONEN L, 1994, ENV GEOCHEMISTRY SUL, P79
[2]   A review on pyrrhotite oxidation [J].
Belzile, N ;
Chen, YW ;
Cai, MF ;
Li, YR .
JOURNAL OF GEOCHEMICAL EXPLORATION, 2004, 84 (02) :65-76
[3]   Schwertmannite and the chemical modeling of iron in acid sulfate waters [J].
Bigham, JM ;
Schwertmann, U ;
Traina, SJ ;
Winland, RL ;
Wolf, M .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1996, 60 (12) :2111-2121
[4]  
Carlson E, 2005, GENET ENG NEWS, V25, P40
[5]   Development of respirometry methods to assess the microbial activity of thermophilic bioleaching archaea [J].
du Plessis, CA ;
Barnard, P ;
Naldrett, K ;
de Kock, SH .
JOURNAL OF MICROBIOLOGICAL METHODS, 2001, 47 (02) :189-198
[6]  
FLEISCHER M, 1955, ECON GEOL, V50, P970
[7]   Enhancement of chalcopyrite leaching by ferrous ions in acidic ferric sulfate solutions [J].
Hiroyoshi, N ;
Miki, H ;
Hirajima, T ;
Tsunekawa, M .
HYDROMETALLURGY, 2001, 60 (03) :185-197
[8]   Secondary copper enrichment in tailings at the Laver mine, northern Sweden [J].
Holmström, H ;
Ljungberg, J ;
Ekström, M ;
Öhlander, B .
ENVIRONMENTAL GEOLOGY, 1999, 38 (04) :327-342
[9]  
HUNTER CJ, 2001, Patent No. 0144519
[10]  
HUNTER CJ, 2002, Patent No. 020707757