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Vegetation Pattern and Terrestrial Carbon Variation in Past Warm and Cold Climates

机译:过去温暖和寒冷气候的植被模式和陆地碳变异

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摘要

Understanding the transition of biosphere-atmosphere carbon exchange between glacial and interglacial climates can constrain uncertainties in its future projections. Using an individual-based dynamic vegetation model, we simulate vegetation distribution and terrestrial carbon cycling in past cold and warm climates and elucidate the forcing effects of temperature, precipitation, atmospheric CO2 concentration (pCO(2)), and landmass. Results are consistent with proxy reconstructions and reveal that the vegetation extent is mainly determined by temperature anomalies, especially in a cold climate, while precipitation forcing effects on global-scale vegetation patterns are marginal. The pCO(2) change controls the global carbon balance with the fertilization effect of higher pCO(2) linking to higher vegetation coverage, an enhanced terrestrial carbon sink, and increased terrestrial carbon storage. Our results indicate carbon transfer from ocean and permafrost/peat to the biosphere and atmosphere and highlight the importance of forest expansion as a driver of terrestrial ecosystem carbon stock from cold to warm climates.
机译:了解生物圈 - 大气的过渡冰川和中间气候之间的碳交换可以限制未来预测的不确定性。使用基于个体的动态植被模型,我们模拟了过去冷热气候的植被分布和陆地碳循环,阐明了温度,沉淀,大气CO2浓度(PCO(2))和陆地的迫使效果。结果与代理重建一致,揭示植被范围主要由温度异常确定,特别是在寒冷的气候中,而对全球植被模式的降水迫使效果是边缘的。 PCO(2)改变控制全球碳平衡与较高PCO(2)连接到更高植被覆盖,增强的陆地碳水槽和陆地碳储存增加的施肥效应。我们的结果表明,来自海洋和多年冻土/泥炭到生物圈和泥质的碳转移,并突出了森林扩张作为陆地生态系统碳股驾驶员的重要性,从寒冷到温暖气候。

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