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首页> 外文期刊>Journal of South American earth sciences >Mineral chemistry and deformation in a temperature gradient in the Sierras Pampeanas of Cordoba (Argentina): The Chicamtoltina Tonalite-Trondhjemite Orthogneiss
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Mineral chemistry and deformation in a temperature gradient in the Sierras Pampeanas of Cordoba (Argentina): The Chicamtoltina Tonalite-Trondhjemite Orthogneiss

机译:矿物化学和在科尔多瓦山脉Pampeanas的温度梯度变形(阿根廷):芝麻电阻汤汤瑞岩 - Trondhjemite Orthogneiss

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On the eastern margin of the Sierra Chica, in a gneissic host rocks metamorphosed under medium to high amphibolite facies ('Sil-in' isograd) during the Neoproterozoic-Cambrian M2-D2 event, a body of tonalitictrondhjemitic composition was discordantly emplaced, cutting the S-2 metamorphic foliation and the 'Sil-in' isograd. A strong deformation, with along the temperature gradient of the host rocks, transformed the igneous rocks into an orthogneiss during a M3-D3 event. Based on textural, microstructural and mineral chemistry changes along the mentioned metamorphic transition and age determination, the orthogneissification process is related to the deformational and thermal history in the Sierras Pampeanas of Cordoba. The M3-D3 event would have reworked the S-2 foliation, generating an S-3 foliation associated with folding and boudinage in the gneissic host rocks, forming a major intrafoliar fold in the tonalitic-trondhjemitic body, with its flanks on both sides of the 'Sil-in' isograd. The M3-D3 event is recorded in the textural and mineral chemistry variations, following a medium-high temperature gradient during deformation, from the southeast to the northwest of the body. In that direction, the 'core and mantle' texture in plagioclase increased the proportion of the recrystallized mantle, which was also enriched in anorthite content. Quartz textures evolved from polycrystalline ribbons, with internal deformation bands, to dismembered ones, with internal chessboard pattern. Recrystallization of the entire plagioclase-quartz aggregate ended in an interlobate to amoeboid texture, implying high-temperature conditions (similar to 650-750 degrees C) along the mentioned temperature gradient during the M3-D3 event. Regarding micas, the primary biotite progressively increased in Mg and decreased in Fe towards the northwest, without appreciable textural changes. Concomitantly, the primary Ti-rich ferrimuscovite increases its content in Mg and becomes poor in Ti, at the same time that it developed symplectitic quartz-plagioclase intergrowths. During a final D4 deformational event, also under high ductility conditions, asymmetric intrafolial folds (drag folds, with geometrical S4 axial planes) were developed, associated with imbrication and folding of boudins within the S-3 (// S-2) foliation. The D2, D3, and D4 deformation events are part of a continuum (progressive deformation) in a combined simple shear and flattening regimen (transcompression = convergent oblique shear). The contrasting rheology between the stiffer Chicamtoltina igneous body and its gneissic host rocks explain the different behavior during high ductility deformation. Internally, this small igneous body, with plagioclase as stress-supporting mineral framework (plagioclase-quartz ratio 2:1), mirrored the rheological behavior of the middle to lower crust deformation. A concordia age of 535.81 +/- 0.79 Ma (U-Pb LA-ICP-MS on zircon) obtained for the Chicamtoltina orthogneiss is interpreted as the crystallization age of the tonalitic-trondhjemitic protolith (igneous event Ig1). By correlation with the tonalitic orthogneisses from the Sierra Chica and Sierra Norte of Cordoba, this protholith is linked to the Pampean magmatic arc, with an age range of 541-515 Ma and a peak of magmatic activity at 530-535 Ma.
机译:在Sierra Chica的东部缘,在介质到高倒置面下的神经岩石岩石中('Sil-Isograd),在NeoProterozoice-Cambrian M2-D2事件中,一个音调型组合物被施加不动,切割S-2变质叶和'SIL-IN'ISOGRAD。沿着主体岩石的温度梯度,强烈变形,在M3-D3事件期间将导火岩变为正交岩。基于纹理,微观结构和矿物化学改变沿着上述变质转变和年龄测定,正交化过程与科尔多瓦的塞拉斯Pampeanas中的变形和热历史有关。 M3-D3事件将重新加工S-2叶,产生与折叠和弯曲的裂缝中的S-3叶子,在神经宿主岩石中形成一个主要的卵形折叠,在色调 - Trondhjemitic体中,两侧都有侧面'sil-in'isograd。 M3-D3事件记录在变形期间的中高温梯度之后的纹理和矿物化学变化中,从东南到身体的西北部。在这种方向上,Plagioclase中的“核心和地幔”质地增加了再结晶的地幔的比例,其也富含高钙碱含量。石英纹理从多晶丝带演变,内部变形频带,以散布棋盘,内部棋盘图案。在M3-D3事件期间,将整个Plagioclase-ZHARTZ骨料的重结晶结晶在蛋白化杂交中,暗示沿着所提到的温度梯度的高温条件(类似于650-750℃)。关于云母,原发性生物局逐渐增加Mg,朝向西北部的FE减少,没有明显的纹理变化。伴随着,富含富含的富含锰术在镁中的含量增加,并且在Ti中变差,同时它开发了辛石英 - Plagioclase融入。在最终D4变形事件期间,也在高延展条件下,开发出在高延展性条件下,不对称的肠折叠(拖动折叠,具有几何S4轴向平面),与S-3(// S-2)叶中的Boudins的尿布和折叠相关联。 D2,D3和D4变形事件是组合简单的剪切和扁平化方案中的连续体(逐渐变形)的一部分(损伤=会聚斜剪切)。芝麻电极曲线和其神社宿主岩之间的对比流变学和其神经宿主岩石在高延展性变形期间解释了不同的行为。在内部,这种小的火焰体,用普发基酶作为应力支持的矿物框架(Plagioclase-Quartz比例2:1),反映了中间的流变行为以降低壳体变形。在芝麻电阻骨内官能团获得的535.81 +/- 0.79 mA(锆石上的U-Pb La-ICP-MS上的U-PB La-ICP-MS)被解释为表示色调 - Trondhjemitic原料(Igneous事件Ig1)的结晶年龄。通过与科罗巴达塞拉米卡和塞拉·北部的色调正交性的相关性,这种刺激性与Pampean Magmatic弧有关,年龄范围为541-515 mA和530-535 mA的岩浆活性的峰值。

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