碳酸盐缓冲条件下黄铁矿氧化及其环境影响——以西南上芒岗金矿床为例

IF 1 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS
Yanyan Wang, Xuemin Liu, Qi Li
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引用次数: 0

摘要

了解黄铁矿氧化的过程及影响因素,有利于矿区环境问题的治理。本研究通过岩石学、电子探针分析、X射线衍射分析和PHREEQC地球化学模型,研究了中国西南上芒岗金矿风化壳中黄铁矿和相关针铁矿的形态和地球化学。SMG的风化剖面由未风化的卡林型带、半风化带和高度风化的红粘土带组成,不同类型的黄铁矿,粉体黄铁矿(Py1)、立方体黄铁矿(Py2)和分区黄铁矿(Py3),被不同程度地氧化并转化为相应的黄铁矿假晶针铁矿,通常由早期和晚期组成。此外,更强的氧化作用与更多的Al和Si含量的晚期针铁矿有关。普遍存在的白云石缓冲液使孔隙流体的pH保持中性,导致黄铁矿周围针铁矿涂层的沉淀和积累,这进一步降低了氧化速率,并最终通过耦合的溶解-再沉淀反应形成黄铁矿假晶针铁矿。此外,不同的矿物学性质导致黄铁矿的差异氧化,使得较小的颗粒氧化得更快,黄铁矿中的As加速了氧化。此外,黄铁矿在碳酸盐缓冲液中的限速氧化防止了酸性矿井排水(AMD)的形成,并限制了砷黄铁矿向外部环境中的砷释放。补充材料:https://doi.org/10.6084/m9.figshare.c.6267700
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pyrite oxidation under carbonate buffer and its environmental implications: a case study from the Shangmanggang gold deposit, southwest China
Understanding the process and influencing factors of the oxidation of pyrite is beneficial for the management of environmental problems in mining areas. In this study, we investigated the morphology and geochemistry of the pyrite and related goethite from the weathering crust of the Shangmanggang (SMG) gold deposit, southwest China, via petrographic work, electron microprobe analysis, X-ray diffraction analysis, and PHREEQC geochemical modelling. The weathering profile of the SMG is composed of the unweathered Carlin-type zone, the semi-weathered zone, and the highly weathered red-clay zone, and different types of pyrite, framboidal pyrite (Py1), cube pyrite (Py2), and zoned pyrite (Py3), were differentially oxidized and transferred into corresponding pyrite-pseudomorphic goethite commonly comprised of the early and late phase. Furthermore, the stronger oxidation is related to more late goethite with more Al and Si content. The ubiquitous dolomite buffer kept the pH of the pore fluid neutral, resulting in the precipitation and accumulation of a goethite coating around pyrite, which further reduced the oxidation rate and formed pyrite-pseudomorphic goethite ultimately via coupled dissolution-reprecipitation reactions. In addition, the different mineralogical properties resulted in the differential oxidation of pyrite such that the smaller grains oxidized faster, and As within the pyrite accelerated the oxidation. Moreover, the rate-limited oxidation of pyrite under carbonate buffer prevents acid mine drainage (AMD) from forming and limits As release from arsenian pyrite into the external environment. Supplementary material: https://doi.org/10.6084/m9.figshare.c.6267700
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来源期刊
Geochemistry-Exploration Environment Analysis
Geochemistry-Exploration Environment Analysis 地学-地球化学与地球物理
CiteScore
3.60
自引率
16.70%
发文量
30
审稿时长
1 months
期刊介绍: Geochemistry: Exploration, Environment, Analysis (GEEA) is a co-owned journal of the Geological Society of London and the Association of Applied Geochemists (AAG). GEEA focuses on mineral exploration using geochemistry; related fields also covered include geoanalysis, the development of methods and techniques used to analyse geochemical materials such as rocks, soils, sediments, waters and vegetation, and environmental issues associated with mining and source apportionment. GEEA is well-known for its thematic sets on hot topics and regularly publishes papers from the biennial International Applied Geochemistry Symposium (IAGS). Papers that seek to integrate geological, geochemical and geophysical methods of exploration are particularly welcome, as are those that concern geochemical mapping and those that comprise case histories. Given the many links between exploration and environmental geochemistry, the journal encourages the exchange of concepts and data; in particular, to differentiate various sources of elements. GEEA publishes research articles; discussion papers; book reviews; editorial content and thematic sets.
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