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Fingerprinting and tracing the signature of basement-hosted unconformity-type uranium alteration through thick Quaternary tills: an example from the Thelon Basin, Nunavut

机译:通过厚第四纪耕层对地下不整合型铀变质的特征进行指纹识别和追踪:以努纳武特Thelon盆地为例

摘要

The question of whether or not it is possible to trace the signature of alteration haloes surrounding deep-seated unconformity-type U mineralization through thick Quaternary tills is one of great importance for those conducting exploration in glaciated areas. The geochemical signals associated with alteration are often subtle and subject to numerous sources of noise, and multi-till stratigraphies can completely mask or truncate dispersal patterns. To study glacial dispersal from alteration zones surrounding unconformity-type uranium mineralization, this study focuses on a deep-seated (>100 m) basement-hosted unconformitytype U mineralized body known as Tatiggaq, which is located in the Thelon Basin of Nunavut. The Tatiggaq area presents an ideal opportunity to investigate this problem, since the area is blanketed by a thick (12-34 m) multi-till stratigraphy, mineralization does not intersect the bedrock-till interface, and the mineralization is surrounded by an extensive illitic alteration halo that reaches the bedrock surface. The recovery of till samples from diamond drill core from the multi-till stratigraphy overlying the subcropping alteration halo provides a unique opportunity to model glacial dispersal and identify whether the fingerprint of buried alteration can be traced through three dimensions to the modern day surface. Sampling of till recovered during diamond drilling was combined with the sampling of surficial mudboils in the area surrounding Tatiggaq to trace the dispersal of alteration. The drill core samples were collected from four stratigraphic units that were deposited by early southwesterly and southerly ice flows, followed by a reversal in ice flow towards the northwest and westnorthwest. Knowledge of the till stratigraphy directly above the Tatiggaq alteration zone was used to construct a three dimensional model of the sediments overlying bedrock to allow the tracing of alteration through the subsurface.The geochemical fingerprint of the alteration halo at Tatiggaq was identified by applying univariate and multivariate statistical analysis, including principal component analysis, to geochemical data from altered and fresh rocks in the region. This analysis identified the enrichment of Fe2O3, K2O, Al2O3, P2O5, TiO2, B, Ni, U, Cr, and Sc, and depletion of CaO, MnO, Na2O, Mo, Zn, Ba, and Sr in the altered rocks using total digestion of rock powders (HF-HClO4-HNO3). Partial digestion of the same rock powders using HNO3-HCl identified the enrichment of U and depletion of V, Zn, Y, and Yb in the altered rocks. The observed trends in the bedrock data were then applied to the till geochemistry data to identify alteration signatures that were discernible across the till stratigraphy. These enrichment and depletion trends were used to generate four alteration indices (AI) for use in uranium exploration:- 1 = (2+ 23) / [(2+)+ (2+ 23)] ( )- 2 = ( + + ) / [(+)+( + + )] ( )- 3 = / (+) ( )- 4 = / (+) ( )A 3D model of the till sequence was constructed with GOCAD® and populated with interpolated values for the four alteration indices in order to trace alteration through the subsurface. Analysis of these trends revealed that alteration near the bedrock surface is pronounced, but rapidly attenuates moving up the stratigraphic sequence. Despite the rapid attenuation of the alterationsignal in the subsurface, the signal is detectable at the surface down-ice from the main alteration zone with AI1 and AI2, and above the alteration zone with AI3. Although AI4 was successful at delineating alteration in the subsurface, no patterns were observed in the surficial mudboil data using AI4.This study shows that despite a complex Quaternary stratigraphy and ice-flow history in a region, it is possible to trace glacial dispersal of subtle geochemical signatures related to subcropping alteration zones surrounding buried basement-hosted unconformity-type uranium deposits. However, the detection of such alteration signals requires a detailed knowledge of thealteration signal being sought out and an understanding of the depositional history and stratigraphy of Quaternary sediments. Continuing research into alteration systems surrounding basement hosted unconformity-type uranium deposits will help determine the applicability of the ratios developed here to other regions.
机译:对于那些在冰川地区进行勘探的人来说,是否能够通过深厚的第四纪耕种追踪深层不整合型U型矿化周围的蚀变晕的特征这一问题是至关重要的。与蚀变有关的地球化学信号通常是微妙的,并受到众多噪声源的影响,而多耕层地层可以完全掩盖或截断散布图样。为了研究不整合型铀矿化周围蚀变带的冰川扩散,本研究的重点是位于努纳武特Thelon盆地的深层(> 100 m)基底不整合型U型矿化体Tatiggaq。 Tatiggaq地区提供了一个研究此问题的理想机会,因为该地区被厚厚的(12-34 m)多耕层地层覆盖,矿化不与基岩-耕层界面相交,并且矿化被广泛的胶质岩包围到达基岩表面的蚀变晕。从覆盖下耕种变化晕的多重耕种地层中从金刚石钻芯中回收耕种样品,提供了独特的机会来模拟冰川扩散,并确定是否可以通过三个维度追溯到现代表面的埋藏蚀变指纹。在金刚石钻探过程中回收的耕地取样与Tatiggaq周围地区的地表泥浆取样相结合,以追踪变化的散布。钻芯样品是从四个地层单元中收集的,这些地层是由西南和西南早期的冰流沉积,然后向西北和西北的冰流反转。利用Tatiggaq蚀变带正上方的耕层地层学知识,构建了基岩上覆沉积物的三维模型,以允许通过地下追踪蚀变.Tatiggaq蚀变晕的地球化学指纹图通过单变量和多变量识别统计分析,包括主成分分析,以分析该地区蚀变和新鲜岩石的地球化学数据。该分析确定了Fe2O3,K2O,Al2O3,P2O5,TiO2,B,Ni,U,Cr和Sc的富集,以及蚀变岩石中CaO,MnO,Na2O,Mo,Zn,Ba和Sr的消耗总量,消解岩粉(HF-HClO4-HNO3)。使用HNO3-HCl对相同岩粉进行部分消化,可以确定蚀变岩石中U的富集和V,Zn,Y和Yb的富集。然后将基岩数据中观察到的趋势应用于耕层地球化学数据,以识别在耕层地层中可辨别的蚀变特征。这些富集和枯竭趋势被用于生成用于铀勘探的四个蚀变指数(AI):-1 =(2+ 23)/ [(2 +)+(2+ 23)]()-2 =(+ + )/ [(+)+(+ +)]()-3 = /(+)()-4 = /(+)()使用GOCAD®构建耕种序列的3D模型,并填充用于四个蚀变指数,以便追踪整个地下的蚀变。对这些趋势的分析表明,基岩表面附近的变化是明显的,但迅速减弱了地层序列的向上移动。尽管地下的蚀变信号迅速衰减,但在地面下冰处仍可从AI1和AI2处的主蚀变区以及AI3处的蚀变区上方检测到该信号。尽管AI4能够成功地描述地下变化,但使用AI4在地表泥浆数据中未观察到任何模式。该研究表明,尽管该地区第四纪地层和冰流历史复杂,但仍有可能追踪到细微的冰川扩散地球化学特征与地下埋藏的不整合型铀矿床周围的次作物蚀变带有关。然而,对这种蚀变信号的检测需要对寻找蚀变信号的详细知识,并需要了解第四纪沉积物的沉积历史和地层。继续研究围绕地下不整合型铀矿床的蚀变系统,将有助于确定这里开发的比率对其他地区的适用性。

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    Bustard Aaron;

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  • 年度 2016
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