首页> 外文期刊>Gondwana research: international geoscience journal >The timing of the Cape Orogeny: New Ar-40/Ar-39 age constraints on deformation and cooling of the Cape Fold Belt, South Africa
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The timing of the Cape Orogeny: New Ar-40/Ar-39 age constraints on deformation and cooling of the Cape Fold Belt, South Africa

机译:开普造山带的时机:南非开普褶皱带变形和冷却的新Ar-40 / Ar-39年龄限制

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We conducted a Ar-40/Ar-39 thermochronological study of samples from three transects across the Cape Fold Belt of South Africa. Metamorphic conditions along these transects decrease from the greenschist fades in the southern hinterland to the anchizonal foreland to the north. Nine new Ar-40/Ar-39 plateau ages and two mini-plateau ages from handpicked muscovite are combined with one earlier published biotite mineral age and reveal two age modes. The older population ranges from 261 +/- to 276 +/- 5 Ma (n = 4) and the younger from 248 +/- to 254.6 +/- 2.1 Ma (n = 4). The remaining three ages (>400 Ma) are detrital and reflect unreset ages. Electron microprobe analyses and X-ray diffraction studies indicate little mineralogical variation of micaceous material across the be samples dominantly host muscovite, clay minerals such as illite or smectite are absent. Micro structural characterization of rock fabrics across the belt reveals different mechanisms of strain partitioning and heterogenous deformation of different lithologies. Specifically, pressure solution, fracture, and limited crystal plasticity are the dominant deformation mechanisms in the shale-dominated Bokkeveld Group and Witteberg Groups in the foreland region, resulting in recrystallization of phyllosilicate minerals. Strain partitioning into narrow, locally deformed horizons of the Table Mountain Group is accompanied by dynamic grain boundary recrystallization in quartz. A weak trend of southward younging ages is interpreted as the preservation of deformation ages (ca. 275-260 Ma) and younger cooling ages (ca. 255-245 Ma), although it remains plausible that these populations represent two deformation events. These new age constraints significantly narrow the temporal window of Cape Fold Belt tectonic activity, and provide a firm basis for evaluating the depositional patterns in the foreland Karoo Basin. (C) 2015 International Association for Gondwana Research. Published by Elsevier B.V. All rights reserved.
机译:我们对南非海角褶皱带三个断面的样品进行了Ar-40 / Ar-39热年代学研究。这些断面的变质条件从南部腹地的绿片岩褪色到北部的附睾前陆逐渐减少。将九个新的Ar-40 / Ar-39高原年龄和精选白云母的两个迷你高原年龄与一个较早发表的黑云母矿物年龄相结合,揭示了两种年龄模式。年龄较大的人群从261 +/-到276 +/- 5 Ma(n = 4),而年龄较小的人群从248 +/-到254.6 +/- 2.1 Ma(n = 4)。其余三个年龄(> 400 Ma)是有害的,反映了未重置的年龄。电子探针分析和X射线衍射研究表明,整个带状云母材料的矿物学变化很小;样品主要是白云母,没有粘土矿物,如伊利石或蒙脱石。整个带状岩体的微观结构特征揭示了应变分配和不同岩性非均质变形的不同机制。具体而言,压力溶液,断裂和有限的晶体可塑性是前陆地区以页岩为主的Bokkeveld组和Witteberg组的主要变形机制,从而导致页硅酸盐矿物重结晶。应变划分为Table Mountain群的狭窄且局部变形的层位,伴随着石英的动态晶界再结晶。向南年轻化年龄的弱趋势被解释为保留了变形年龄(约275-260 Ma)和较年轻的冷却年龄(约255-245 Ma),尽管这些种群代表两个变形事件仍然是合理的。这些新的年龄限制显着缩小了海角褶皱带构造活动的时间窗口,并为评估前陆Karoo盆地的沉积模式提供了坚实的基础。 (C)2015年冈瓦纳国际研究协会。由Elsevier B.V.发布。保留所有权利。

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