Rare earth mineralogy in tailings from Kiirunavaara iron ore, northern Sweden: Implications for mineral processing

Q2 Materials Science Minerals & Metallurgical Processing Pub Date : 2017-11-01 DOI:10.19150/MMP.7859
C. Wanhainen, Bertil I. Pålsson, O. Martinsson, Y. Lahaye
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引用次数: 2

Abstract

Four main and three minor rare-earth-element (REE)-bearing minerals were identified and quantified in the Kiirunavaara apatite iron ore tailings using optical microscopy, an electron probe microanalyzer (EPMA) and a mineral liberation analyzer, and their chemical compositions were analyzed by the EPMA and laser ablation inductively coupled plasma-mass spectrometry. REEs are shown to be contained in the minerals apatite, monazite, allanite, titanite, zircon, thorite and synchysite. In zircon, thorite and synchysite, they occurred in only trace amounts and contributed limited amounts to the total REE budget, and these are consequently of minor importance. Monazite occurred as inclusions in apatite and as free particles, 90 percent liberated. Allanite occurred to some degree in mixed grains with magnetite but also as free particles. Monazite mainly reported to the apatite concentrate, while allanite and titanite largely went to the tailings, the latter preferably to those fractions smaller than 38 µm. The amount of titanite in the finest tailings fraction was 2.3 weight percent, containing close to 1 percent REEs, with heavy rare earth elements (HREEs) making up 28 percent of the total REEs. However, a texturally distinct group of titanite grains showed an HREE/REE ratio of up to 67 percent. Furthermore, titanum dioxide analyses indicate that titanite is preferentially released into the tailings from the secondary magnetic separation step in the concentrator. Our data therefore suggest that titanite, occasionally enriched in HREEs, can be extracted from the processing stream and might thus be considered a new source for REEs at Kiirunavaara and similar deposits.
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瑞典北部Kiirunavaara铁矿尾矿中的稀土矿物学:对矿物加工的影响
采用光学显微镜、电子探针微量分析仪(EPMA)和矿物解离分析仪对Kiirunavaara磷灰石铁矿尾矿中的4种主要矿物和3种次要矿物进行了鉴定和定量,并采用电子探针微量分析仪和激光烧蚀电感耦合等离子体质谱分析了它们的化学成分。稀土元素主要存在于磷灰石、独居石、allanite、钛矿、锆石、钍矿和合晶石中。在锆石、钍矿和合石中,它们仅以微量存在,对总稀土收支的贡献有限,因此它们的重要性较小。独居石以磷灰石包裹体和自由颗粒的形式出现,90%是游离的。Allanite在一定程度上以与磁铁矿混合颗粒的形式存在,但也以自由颗粒的形式存在。独居石主要进入磷灰石精矿,褐褐石和钛矿主要进入尾矿,后者优先进入小于38µm的组分。细粒尾矿中钛矿的含量为2.3%,稀土含量接近1%,重稀土元素(hree)占总稀土元素的28%。然而,一组结构独特的钛矿颗粒显示出高达67%的HREE/REE比率。此外,二氧化钛分析表明,在选矿厂的二次磁选步骤中,钛矿优先释放到尾矿中。因此,我们的数据表明,钛矿偶尔富含稀土元素,可以从加工流中提取出来,因此可能被认为是Kiirunavaara和类似矿床稀土元素的新来源。
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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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