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首页> 外文期刊>International Journal of Earth Sciences >Thermally induced alterations of minerals during measurements of the temperature dependence of magnetic susceptibility:a case study from the hydrothermally altered Soultz-sous-Forets granite, France
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Thermally induced alterations of minerals during measurements of the temperature dependence of magnetic susceptibility:a case study from the hydrothermally altered Soultz-sous-Forets granite, France

机译:在测量磁化率对温度的依赖性时热诱导的矿物蚀变:以法国热液蚀变的Soultz-sous-Forets花岗岩为例

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摘要

Identification of magnetic minerals using the temperature dependence of magnetic susceptibility in low field (-T) combined with optical microscopy, microprobe, X-ray diffraction, and chemical analysis provided new constraints on the alteration of Fe-bearing minerals of the magnetite-bearing Soultz-sous-Forets granite from the EPS-1 borehole (upper Rhine Graben, France). While relatively fresh granite shows largely reversible k-T curves typical of magnetite, the altered granite revealed a wide variety of irreversible heating and cooling curves, which allowed an assignment to different alteration stages under specific geochemical conditions. Though paramagnetic minerals like Fe-bearing carbonates, pyrite, or antiferro-magnetic hematite could not be detected according to their Curie or Neel temperature, they were identified due to reactions to new ferrimagnetic phases during the heating/ cooling experiments at specific temperatures. Mineral reactions were proved by measurements of the single mineral phases hematite, Fe-carbonates, and illite. Our mineralogical results combined with the thermomagnetic measurements imply that first faulting of the granite occurred already during cooling of the magma, which caused a first magnetite oxidation event. During uplift of the granitic body and exposure to a paleo-erosion surface, strongly acidic fluids, emerged from pyrite oxidation, caused a decomposition of Fe-bearing minerals like mar-tite (hematite derived from magnetite oxidation) and Fe-carbonates and an ongoing transformation of magnetite to martite. Subsequently, precipitation of fine-grained hematite was restricted only to the upper part of the pluton. In the deeper part of the borehole, pyrite was preserved from oxidation. In an active fault, zone martite was reduced back to magnetite, which can be explained with the occurrence of organic matter transported by fluids.
机译:利用低场中磁化率的温度依赖性(-T)结合光学显微镜,显微探针,X射线衍射和化学分析来鉴定磁性矿物,为改变含磁铁矿中含铁矿物的变化提供了新的限制来自EPS-1钻孔的Soultz-sous-Forets花岗岩(法国莱茵河畔格拉本)。相对较新的花岗岩显示出磁铁矿典型的可逆的k-T曲线,而经改变的花岗岩则显示出各种各样的不可逆的加热和冷却曲线,从而允许在特定的地球化学条件下分配到不同的蚀变阶段。尽管无法根据居里或Neel温度检测到含铁的碳酸盐,黄铁矿或反铁磁赤铁矿等顺磁性矿物,但由于在特定温度下加热/冷却实验中对新的亚铁磁性相的反应而被鉴定出来。矿物反应通过测量单个矿物相赤铁矿,碳酸铁和伊利石来证明。我们的矿物学结果加上热磁测量结果表明,岩浆冷却期间已经发生了花岗岩的首次断裂,这导致了第一次磁铁矿氧化事件。在花岗岩体隆起和暴露于古侵蚀表面的过程中,黄铁矿氧化产生了强酸性流体,导致含铁矿物如马氏体(源自磁铁矿氧化的赤铁矿)和碳酸盐的分解,磁铁矿向马氏体转变。随后,细粒赤铁矿的沉淀仅被限制在岩心上部。在井眼的较深部分,黄铁矿免于氧化。在活动断层中,区域马氏体还原成磁铁矿,这可以用流体传输有机物的发生来解释。

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