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Reconciling atmospheric CO2, weathering, and calcite compensation depth across the Cenozoic

机译:跨越新生代调整大气二氧化碳,风化和方解石补偿深度

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摘要

The Cenozoic era (66 to 0 million years) is marked by long-term aberrations in carbon cycling and large climatic shifts, some of which challenge the current understanding of carbon cycle dynamics. Here, we investigate possible mechanisms responsible for the observed long-term trends by using a novel approach that features a full-fledged ocean carbonate chemistry model. Using a compilation of pCO 2 , pH, and calcite compensation depth (CCD) observational evidence and a suite of simulations, we reconcile long-term Cenozoic climate and CCD trends. We show that the CCD response was decoupled from changes in silicate and carbonate weathering rates, challenging the continental uplift hypothesis. The two dominant mechanisms for decoupling are shelf-basin carbonate burial fractionation combined with proliferation of pelagic calcifiers. The temperature effect on remineralization rates of marine organic matter also plays a critical role in controlling the carbon cycle dynamics, especially during the warmer periods of the Cenozoic.
机译:新生代时代(66至0百万年)标志着碳循环和大气候变化的长期像差,其中一些是挑战目前对碳循环动态的理解。在这里,我们通过使用具有具有全面海洋碳酸盐化学模型的新方法来调查负责观察到的长期趋势的可能机制。使用PCO 2,pH和方解石补偿深度(CCD)观察证据和一套模拟,我们协调长期新生代气候和CCD趋势。我们表明CCD响应与硅酸盐的变化和碳酸盐风化率的变化分离,挑战了大陆隆起假设。两种去耦的主导机制是碳酸盆碳酸盐埋葬分馏联合骨质钙化剂的增殖。对野生有机物质的再矿化率的温度效应也在控制碳循环动态方面发挥着关键作用,尤其是在新生代的温暖时期期间。

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