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Early hydrothermal carbon uptake by the upper oceanic crust: Insight from in situ U-Pb dating

机译:上洋壳早期的热液碳吸收:原位U-Pb测年的见解

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It is widely thought that continental chemical weathering provides the key feedback that prevents large fluctuations in atmospheric CO2, and hence surface temperature, on geological time scales. However, low-temperature alteration of the upper oceanic crust in off-axis hydrothermal systems provides an alternative feedback mechanism. Testing the latter hypothesis requires understanding the timing of carbonate mineral formation within the oceanic crust. Here we report the first radiometric age determinations for calcite formed in the upper oceanic crust in eight locations globally via in-situ U-Pb laser ablation-inductively coupled plasma-mass spectrometry analysis. Carbonate formation occurs soon after crustal accretion, indicating that changes in global environmental conditions will be recorded in changing alteration characteristics of the upper oceanic crust. This adds support to the interpretation that large differences between the hydrothermal carbonate content of late Mesozoic and late Cenozoic oceanic crust record changes in global environmental conditions. In turn, this supports a model in which alteration of the upper oceanic crust in off-axis hydrothermal systems plays an important role in controlling ocean chemistry and the long-term carbon cycle.
机译:人们普遍认为,大陆化学风化提供了关键的反馈,可以防止大气CO2的大幅波动,从而防止地质时间尺度上的地表温度波动。然而,离轴热液系统中上部洋壳的低温变化提供了一种替代性的反馈机制。要检验后一种假设,需要了解大洋地壳内碳酸盐矿物形成的时间。在这里,我们通过原位U-Pb激光烧蚀-电感耦合等离子体质谱分析报告了全球八个位置上层洋壳中形成的方解石的首次辐射年龄确定。地壳增加后不久便发生了碳酸盐的形成,表明全球环境条件的变化将记录在上层洋壳的变化特征中。这为以下解释提供了支持,即中生代晚期和新生代晚期地壳的热液碳酸盐含量之间的巨大差异记录了全球环境条件的变化。反过来,这也支持了这样一种模型,在该模型中,离轴热液系统中的上层洋壳改变在控制海洋化学和长期碳循环中起着重要作用。

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