Speciation of the most soluble phases in a sequential extraction procedure adapted for geochemical studies of copper sulfide mine waste

被引:281
作者
Dold, B [1 ]
机构
[1] Univ Lausanne, CAM, Dept Earth Sci BFSH2, CH-1015 Lausanne, Switzerland
[2] Univ Geneva, Dept Mineral, CH-1211 Geneva, Switzerland
关键词
sequential extraction; copper sulfide; mine waste; tailings; acid mine drainage (AMD);
D O I
10.1016/S0375-6742(03)00182-1
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Sequential extractions are widely used for exploration purposes and to study element speciation in systems such as soil and sediments, and more recently to understand the complex biogeochemical element cycling in mine waste environments. This method is however often the focus of criticism due to uncertainty in the selectivity of specific leaches utilized. In this study, a procedure is presented how sequential extractions can be adapted to specific mineralogy in order to increase the selectivity and the accuracy of geochemical data interpretation. The application of dissolution kinetic tests and the control of dissolved phases in sequential extractions by X-ray diffraction (XRD) and differential X-ray diffraction (DXRD) indicate which minerals are dissolved in each leach. This information is crucial for the interpretation of geochemical data obtained from sequential extractions and enables to increase the selectivity of the sequence applied. A seven-step sequence was adapted to the specific secondary and primary mineralogy of mine tailings from Cu-sulfide ores, both from porphyry copper and from Fe-oxide Cu-Au deposits. As result of the study, the following seven-step sequence shows best selectivity for the aim of the study of Cu-sulfide mine waste: Step I liberates the water-soluble fraction (1.0-g sample into 50-ml deionized H2O shake for I h at room temperature [RT]) dissolving gypsum and metal salts (e.g., chalcanthite (CuSO(4)(.)5H(2)O), pickeringite (MgAl2(SO4)(4)(.)22H(2)O)). Step 2 liberates the exchangeable fraction (1 M NH4-acetate, pH 4.5, shaken for 2 h, RT) as adsorbed ions, but also dissolves calcite and breaks down a typical secondary vermiculite-type mixed-layer mineral from the low pH oxidation zone. Step 3 addresses the Fe(III) oxyhydroxides fraction (0.2 M NH4-oxalate, pH 3.0, shaken for I h in darkness, RT) and dissolves schwertmannite, two-line fenihydrite, Mn-hydroxides, secondary jarosite partially, as well as goethite formed acid mine drainage. Step 4 dissolves the Fe(III) oxides fraction (0.2 M NH4-oxalate, pH 3.0, heat in water bath 80 degreesC for 2 h) and removes all secondary ferric minerals occurring as higher ordered ferrihydrite (e.g., six-line), goethite, primary and secondary jarosite, natrojarosite, and primary hematite. Step 5 consists of a change from reducing to oxidizing condition and is performed by a H2O2 leach (35% H2O2 beat in water bath for 1 h), which dissolves organic matter and supergene Cu-sulfides such as covellite and chalcocite-digenite. Step 6 (KClO3 and HCl, followed by 4 M HNO3 boiling) dissolves primary sulrides and Step 7 (HCl, HF, HClO4, HNO3 ) the residual fraction (silicates). The application of this extraction sequence to 5 Cu-sulfide mine tailings have shown that sequential extractions can be a powerful tool for detection of element mobilization and retention processes. This is especially the case in dry climates, where it is difficult to obtain pore-water geochemistry. A detailed mineralogical study should however go hand in hand with every geochemical study of mine waste to ensure the accuracy of the geochemical interpretations. (C) 2003 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:55 / 68
页数:14
相关论文
共 42 条
[1]   THE INFLUENCE OF PH ON BIOTITE DISSOLUTION AND ALTERATION KINETICS AT LOW-TEMPERATURE [J].
ACKER, JG ;
BRICKER, OP .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1992, 56 (08) :3073-3092
[2]  
[Anonymous], 1932, MED F LJER SKOGSV RD
[3]  
[Anonymous], 1922, MEDDEL STATENS SKOGS
[4]  
BIGHAM JM, 1990, GEOCHIM COSMOCHIM AC, V54, P2743
[5]   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
[6]   SCHWERTMANNITE, A NEW IRON OXYHYDROXYSULPHATE FROM PYHASALMI, FINLAND, AND OTHER LOCALITIES [J].
BIGHAM, JM ;
CARLSON, L ;
MURAD, E .
MINERALOGICAL MAGAZINE, 1994, 58 (393) :641-648
[8]   EXTRACTION TECHNIQUES FOR SELECTIVE DISSOLUTION OF AMORPHOUS IRON-OXIDES FROM SOILS AND SEDIMENTS [J].
CHAO, TT ;
ZHOU, L .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1983, 47 (02) :225-232
[9]  
CHAO TT, 1977, J RES US GEOL SURV, V5, P409
[10]  
Cornell R. M., 1996, The Iron Oxides