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The importance of terrestrial weathering changes in multimillennial recovery of the global carbon cycle: a two-dimensional perspective

机译:陆地风化变化在全球碳循环的千年发展中的重要性:二维视角

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In this paper, we describe the development and application of a new spatially explicit weathering scheme within the University of Victoria Earth System Climate Model (UVic ESCM). We integrated a dataset of modern-day lithology with a number of previously devised parameterizations for weathering dependency on temperature, primary productivity, and runoff. We tested the model with simulations of future carbon cycle perturbations, comparing a number of emission scenarios and model versions with each other and with zero-dimensional equivalents of each experiment. Overall, we found that our two-dimensional weathering model versions were more efficient in restoring the carbon cycle to its pre-industrial state following the pulse emissions than their zero-dimensional counterparts; however, in either case the effect of this weathering negative feedback on the global carbon cycle was small on timescales of less than 1000?years. According to model results, the largest contribution to future changes in weathering rates came from the expansion of tropical and mid-latitude vegetation in grid cells dominated by weathering-vulnerable rock types, whereas changes in temperature and river runoff had a more modest direct effect. Our results also confirmed that silicate weathering is the only mechanism that can lead to a full recovery of the carbon cycle to pre-industrial levels on multimillennial timescales.
机译:在本文中,我们描述了维多利亚大学地球系统气候模型(UVic ESCM)中一种新的空间显式风化方案的开发和应用。我们将现代岩性的数据集与许多先前设计的参数化集成在一起,以适应天气对温度,初级生产率和径流的依赖性。我们通过模拟未来的碳循环扰动对模型进行了测试,比较了许多排放情景和模型版本以及每个实验的零维等效项。总的来说,我们发现二维风化模型版本比零维模型更有效地将碳循环恢复到脉冲排放后的工业化前状态。但是,无论哪种情况,在不到1000年的时间尺度上,这种风化的负反馈对全球碳循环的影响都很小。根据模型结果,对未来风化速率变化的最大贡献来自热带和中纬度植被在受风化脆弱岩石类型支配的网格中的扩展,而温度和河流径流的变化则具有较小的直接影响。我们的研究结果还证实,硅酸盐风化是唯一可以使碳循环在几千年时间尺度上完全恢复到工业化前水平的机制。

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