Mineral chemistry and phase equilibrium constraints on the origin of accretions formed during copper flash smelting

Q2 Materials Science Minerals & Metallurgical Processing Pub Date : 2017-02-01 DOI:10.19150/MMP.7247
J. C. Fernández-Caliani, I. Moreno-Ventas, M. Bacedoni, G. Ríos
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引用次数: 4

Abstract

This paper delves into the constraints on the nature, origin and thermal evolution of the accretions formed in the uptake shaft of the flash smelting furnace operated by Atlantic Copper in Huelva, Spain, outlining recommended practices for preventing accretion buildup. The accretions were investigated using quantitative electron probe microanalysis, X-ray diffraction and digital imaging techniques, and the experimental data on mineral composition, crystal chemistry and textural relationships were interpreted in terms of thermodynamic phase equilibrium in the SiO2-Fe-O-S system. The results suggest that two distinct types of accretions were formed by the fractional crystallization of two coexisting immiscible melts, under changing conditions of oxygen partial pressure (pO2). The type I accretion of magnetite + delafossite ± cuprite ± tridymite ± metallic copper crystallized from a fractionating copper-rich melt at pO2 above about 10−5 atm, while the type II accretion of magnetite + fayalite + metallic copper + chalcocite derived from a melt with lower copper concentration when pO2 levels dropped below that critical level. Phase compositions and textures were consistent with a cooling history of both compositionally contrasting liquids from about 1,250 °C, the liquidus temperature of magnetite, to eutectic or near-eutectic temperatures of around 1,100 °C. The maintenance of appropriate temperatures — above the liquidus temperature of magnetite — and oxygen partial pressure levels may be critical for the prevention of accretion buildup.
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闪炼铜过程中形成的吸积物的矿物化学和相平衡限制
本文深入研究了大西洋铜公司在西班牙韦尔瓦运营的闪速熔炼炉吸收轴上形成的吸积的性质、起源和热演化的制约因素,概述了防止吸积堆积的建议做法。利用定量电子探针微分析、x射线衍射和数字成像技术对其进行了研究,并根据SiO2-Fe-O-S体系的热力学相平衡解释了矿物组成、晶体化学和织构关系的实验数据。结果表明,在不同的氧分压(pO2)条件下,两种共存的非混相熔体在分馏结晶过程中形成了两种不同类型的吸积。在pO2高于10 ~ 5 atm时,富铜熔体分选结晶为磁铁矿+辉绿岩±铜矿±赤霞石±金属铜的I型吸积,低于该临界水平时,低铜熔体吸积为磁铁矿+铁矾石+金属铜+辉铜矿的II型吸积。相组成和织构与两种成分对比液体的冷却历史一致,从大约1250°C(磁铁矿的液相温度)到大约1100°C的共晶或近共晶温度。维持适当的温度——高于磁铁矿的液态温度——和氧分压水平可能是防止吸积堆积的关键。
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来源期刊
Minerals & Metallurgical Processing
Minerals & Metallurgical Processing 工程技术-矿业与矿物加工
CiteScore
0.84
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: For over twenty-five years, M&MP has been your source for the newest thinking in the processing of minerals and metals. We cover the latest developments in a wide range of applicable disciplines, from metallurgy to computer science to environmental engineering. Our authors, experts from industry, academia and the government, present state-of-the-art research from around the globe.
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