黔北务-正-道地区新木-宴溪铝土矿含矿岩系底部稀土元素富集机制
The REE enrichment mechanism in the bottom layer of ore-bearing rocks of the Xinmu-Yanxi bauxite deposit in the Northern Guizhou, China
查看参考文献35篇
文摘
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通过对黔北务-正-道地区新木-宴溪铝土矿样品主量和稀土元素的系统分析,探讨了黔北铝土矿稀土元素富集特征以及底部层位中稀土元素的富集机制。研究认为: 1)介质pH值以及剖面上铝土矿化程度是稀土元素富集的关键影响因素,含矿岩系底部由于地下水活性减弱以及碳酸盐岩基岩的影响,pH为中性到碱性,有利于稀土元素聚集,且铝土矿稀土元素含量随着风化程度的降低而增加;2)铝土矿底部的更高含量的粘土矿物是造成铝土矿含矿岩系底部稀土元素富集的重要因素之一, REE主要的寄主矿物磷灰石也更易于在含矿岩系底部保存,而铝土矿底部自生稀土矿物的存在也是造成含矿岩系底部稀土元素富集的因素之一;3)针铁矿对稀土元素尤其是轻稀土元素发挥了重要的吸附作用,新木-宴溪铝土矿底部层位Fe含量相对较高,且含矿岩系底部接近中性到偏碱性的pH值,更有利于针铁矿的形成。4)稀土元素富集与氧化还原环境有关。该矿床底部部分样品Ce明显负异常,说明弱氧化的沉积环境可能有利于稀土的富集。样品的δCe与(La/Nd)N近似呈弱的负相关关系,表明轻稀土的富集可能与介质的氧化还原条件有关,在弱氧化的条件下,轻稀土越富集。 |
其他语种文摘
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Based on a systematic analysis of major and rare earth elements in rocks and ores of the Xinmin-Yanxi bauxite deposit in the Wuchaun - Zheng'an -Daozhen area of the Northern Guizhou, we have discussed enrichment characteristics and mechanism of the REE in the bottom layer of ore-bearing rocks of the Xinmin-Yanxi bauxite deposit in this paper. It is believed that the pH value of medium and the degree of bauxite mineralization in profile of the deposit are the key factors affecting the enrichment of rare earth elements. Due to the reduction of activity of underground water and the influence of carbonate rock, the bauxite-bearing rocks have pH values varying from neutral to alkaline, which is beneficial to the REE enrichment in the bottom part of the ore-bearing rock series and the increase of REE contents in bauxite ores with the decrease of weathering degree of bauxite ores. The relatively high REE content of clay minerals in the bottom part of ore-bearing rock series is one of important factors for the enrichment of REE. The major REE hosting mineral of apatite can be easily preserved in the bottom part of the ore-bearing rock series. In addition, the presence of authigenic REE minerals in the bottom part of the bauxitic layer could also one of important factors for the enrichment of REE in the bottom part of the ore-bearing rock series. Goethite has played important role for adsorption of the REE especially the LREE. The relatively high Fe contents of the bottom part of bauxite layer of the Xinmu-Yanxi bauxite deposit and the weakly alkaline to alkaline pH values for the formation environment of the bottom part of the ore-bearing rock series are more favorable to the formation of goethite. The REE enrichment is associated with the redox environment. The obvious negative Ce anomalies of some samples in the bottom part of ore-bearing rock series of the Xinmu-Yanxi bauxite deposit indicate that an weakly oxidized sedimentation environment could be favorable to the REE enrichment. The weakly negative correlation between δCe and (La/Nd)N values of samples indicates that the enrichment of LREE may be related to the redox condition of the medium of sedimentation, with the relatively high enrichment of LREE in the bauxite-bearing rock series under the weakly oxidized condition. |
来源
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矿物学报
,2021,41(4/5):413-426 【核心库】
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DOI
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10.16461/j.cnki.1000-4734.2021.41.107
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关键词
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务-正-道地区
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新木-宴溪铝土矿
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稀土元素
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富集机制
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地址
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1.
中国科学院地球化学研究所, 矿床地球化学国家重点实验室, 贵州, 贵阳, 550081
2.
贵州省有色金属和核工业地质勘查局, 贵州, 贵阳, 550005
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语种
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中文 |
文献类型
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研究性论文 |
ISSN
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1000-4734 |
学科
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地质学;矿业工程 |
基金
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贵州省科技支撑项目
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矿床地球化学国家重点实验室领域前沿项目
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文献收藏号
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CSCD:7039703
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参考文献 共
35
共2页
|
1.
黄智龙.
黔北务-正-道铝土矿成矿理论及预测,2014:11-23
|
CSCD被引
1
次
|
|
|
|
2.
Gu J. Mineralogy, geochemistry, and genesis of lateritic bauxite deposits in the Wuchuan-Zheng'an-Daozhen area, Northern Guizhou Province.
China. Journal of Geochemical Exploration,2013,130:44-59
|
CSCD被引
27
次
|
|
|
|
3.
Wang X M. REE mobility and Ce anomaly in bauxite deposit of WZD area, Northern Guizhou, China.
Journal of Geochemical Exploration,2013,133:103-117
|
CSCD被引
20
次
|
|
|
|
4.
汪小妹. 黔北务正道地区铝土矿稀土元素地球化学特征.
地质科技情报,2013,32(1):27-33
|
CSCD被引
29
次
|
|
|
|
5.
Li Z H. Discovery of the REE minerals in the Wulong-Nanchuan bauxite deposits, Chongqing, China: Insights on conditions of formation and processes.
Journal of Geochemical Exploration,2013,133:88-102
|
CSCD被引
14
次
|
|
|
|
6.
龙克树. 黔北铝土矿稀土元素富集机制——以新民铝土矿为例.
矿物学报,2019,39(4):443-454
|
CSCD被引
15
次
|
|
|
|
7.
Mutakyahwa M K D. Geology and geochemistry of bauxite deposits in Lushoto District, Usambara Mountains, Tanzania.
Journal of African Earth Sciences,2003,36(4):357-369
|
CSCD被引
8
次
|
|
|
|
8.
Sun S S. Chemical and Isotopic Systematics of Oceanic Basalts: Implications for Mantle Composition and Processes.
Geological Society London Special Publications. 42,1989:313-345
|
CSCD被引
24
次
|
|
|
|
9.
Mongelli G. Ce-anomalies in the textura components of Upper Cretaceous karst bauxites from the Apulian carbonate platform (southern Italy).
Chemical Geology,1997,140(14):69-79
|
CSCD被引
27
次
|
|
|
|
10.
Hill I G. Geochemical evolution of a palaeolaterite: the Interbasaltic Formation, Northern Ireland.
Chemical Geology,2000,166(1/2):65-84
|
CSCD被引
17
次
|
|
|
|
11.
Duddy L R. Redistribution and fractionation of rare-earth and other elements in a weathering profile.
Chemical Geology,1980,30(4):363-381
|
CSCD被引
30
次
|
|
|
|
12.
Maksimovic Z. Contribution to the geochemistry of the rare earth elements in the karst-bauxite deposits of Yugoslavia and Greece.
Geoderma,1991,51(1/2/3/4):93-109
|
CSCD被引
16
次
|
|
|
|
13.
Kevin H. Rare earth element complexation behavior in circumneutral pH groundwaters: Assessing the role of carbonate and phosphate ions.
Earth and Planetary Science Letters,1996,139(1/2):305-319
|
CSCD被引
16
次
|
|
|
|
14.
Anderson M A.
Adsorption of inorganics at solid-liquid interface,1982:90-160
|
CSCD被引
1
次
|
|
|
|
15.
李艳丽.
贵州碳酸盐岩红色风化壳稀土富集与分异的机理研究,2004
|
CSCD被引
6
次
|
|
|
|
16.
MacLean W H. Argillite debris converted to bauxite during karst weathering evidence from immobile element geochemistry at the Olmedo Deposit, Sardinia.
Mineralium Deposita,1997,32(6):607-616
|
CSCD被引
36
次
|
|
|
|
17.
Hikichi Y. Syntheses of Rare Earth Orthophosphates.
Bull.chem.soc.jpn,1978,51(12):3645-3646
|
CSCD被引
1
次
|
|
|
|
18.
Boulange B. Mineralogical and geochemical characteristics of two bauxitic profiles, Fria, Guinea Republic.
Mineralium Deposita,1996,31(5):432-438
|
CSCD被引
4
次
|
|
|
|
19.
Valeton I. Genesis of nickel laterites and bauxites in greece during the jurassic and cretaceous, and their relation to ultrabasic parent rocks.
Ore Geology Reviews,1987,2(4):359-404
|
CSCD被引
15
次
|
|
|
|
20.
Meshram R R. Geochemical study of laterites of the Jamnagar district, Gujarat, India: Implications on parent rock, mineralogy and tectonics.
Journal of Asian Earth Sciences,2011,42(6):1271-1287
|
CSCD被引
5
次
|
|
|
|
|