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首页> 外文期刊>Journal of Geochemical Exploration: Journal of the Association of Exploration Geochemists >Geochemical coupling of uranium and phosphorous in soils overlying an unmined uranium deposit:Coles Hill,Virginia
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Geochemical coupling of uranium and phosphorous in soils overlying an unmined uranium deposit:Coles Hill,Virginia

机译:未开采铀矿床上土壤中铀和磷的地球化学耦合:弗吉尼亚州科尔斯希尔

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摘要

The mineralogy and geochemistry of soils developed over the unmined Coles Hill uranium deposit (Virginia) were studied to determine how phosphorous influences the speciation of uranium in oxidizing soil/saprolite systems typical of the eastern US.Results from this study have implications for both uranium remediation (e.g.in situ stabilization) and uranium resource exploration (e.g.near-surface geochemical sampling).The primary uranium ore (coffinite and uraninite hosted in quartzo-feldspathic gneiss) weathers to saprolites containing the same uranium concentration as the underlying ore (approximately 1000 mg U/kg saprolites).In these water saturated (below water table) saprolites the uranium is retained as uranyl phosphates of the meta-autunite group (mainly meta-uranocircite).Above the water table the soils overlying the deposit contain approximately 200 mg uranium per kg soil (20 times higher than uranium concentrations in similar soils formed from unmineralized rocks adjacent to the deposit).In these unsaturated zone soils uranium is retained by two processes:(1) incorporation into barium-strontium-calcium aluminum phosphate minerals of the crandallite group (mainly gorceixite),and (2) sorption of uranium with phosphorous onto iron oxides that coat the surfaces of other soil minerals.Thermodynamic calculations suggest that the meta-autunite group minerals present in the saprolites below the water table are not stable in the unsaturated zone soils overlying the deposit due to the drop in soil pH from approx 6.0 down to approx 4.5.Mineralogical observations suggest that,once exposed to the unsaturated environment,the meta-autunite group minerals react to form U(VI)-bearing aluminum phosphates and U(VI) surface complexes or nano-precipitates associated with ferric oxides.These results therefore indicate that models predicting U(VI) speciation in phosphate amended soils must simultaneously account for variations in pH,ion activities (aluminum appears to be particularly important) and surface complexation with iron oxide mineral surfaces.
机译:研究了未开采的Coles Hill铀矿床(弗吉尼亚州)上发育的土壤的矿物学和地球化学,以确定磷如何影响美国东部典型的土壤/腐泥土系统氧化过程中铀的形态形成。这项研究的结果对铀的修复均具有影响(例如原位稳定)和铀资源勘探(例如近地地球化学取样)。主要铀矿石(在石英长石片麻岩中容纳的钴铁矿和铀铁矿)风化成腐泥土,其腐殖质的含量与底层矿石的铀浓度相同(约1000 mg) U / kg腐泥土)(在地下水位以下)腐泥土中,铀以偏金刚砂族(主要是偏铀铀圆石)的铀酰磷酸盐形式保留。在地下水位上方,沉积层上的土壤中含有约200 mg铀每公斤土壤(比铀含量高20倍,这是由邻近矿床的未矿化岩石形成的类似土壤中的铀浓度的20倍)在这些非饱和带土壤中,铀通过两个过程得以保留:(1)将钾铝镁榴石族(主要是钠钙铝石)掺入钡-锶-钙铝磷酸盐矿物中;(2)将铀与磷吸附到氧化铁上热力学计算表明,由于土壤pH值从约6.0下降到约1.0,土壤中地下水位以下的腐泥土中存在的偏金矿物质在不稳定的上层土壤中不稳定。 4.5。矿物学观察表明,一旦暴露于非饱和环境中,亚纯铁矿物质就会形成含U(VI)的磷酸铝和U(VI)表面络合物或与三氧化二铁有关的纳米沉淀物。表明预测磷酸盐改良土壤中U(VI)形态的模型必须同时考虑pH,离子活性的变化(铝似乎是特别的非常重要)以及与氧化铁矿物表面的表面络合。

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