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Uncertainty of climate response to natural and anthropogenic forcings due to different land use scenarios

机译:由于不同的土地利用情景,气候对自然和人为强迫的响应不确定性

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摘要

The A. M. Obukhov Institute of Atmospheric Physics, Russian Academy of Sciences (IAP RAS) climate model (CM) of intermediate complexity is extended by a spatially explicit terrestrial carbon cycle module. Numerical experiments with the IAP RAS CM are performed forced by the reconstructions of anthropogenic and natural forcings for the 16th to the 20th centuries and by combined SRES (Special Report on Emission Scenarios) A2-LUH (Land Use Harmonization) anthropogenic scenarios for the 21st century. Hereby, the impact of uncertainty in land-use scenarios on results of simulations with a coupled climate-carbon cycle model is tested. The simulations of the model realistically reproduced historical changes in carbon cycle characteristics. In the IAP RAS CM, climate warming reproduced in the 20th and 21st centuries enhanced terrestrial net primary production but terrestrial carbon uptake was suppressed due to an overcompensating increase in soil respiration. Around year 2100, the simulations the model forced by different land use scenarios diverged markedly, by about 70 Pg (C) in terms of biomass and soil carbon stock but they differed only by about 10 in terms of atmospheric carbon dioxide content.
机译:俄罗斯科学院A. M. Obukhov大气物理研究所(IAP RAS)具有中等复杂性的气候模型(CM)通过空间明确的地面碳循环模块进行了扩展。使用IAP RAS CM进行的数值实验是通过重建16至20世纪的人为和自然强迫以及21世纪结合SRES(排放情景的特别报告)A2-LUH(土地使用协调)人为情景进行的。 。因此,测试了土地利用情景中的不确定性对具有耦合的气候-碳循环模型的模拟结果的影响。该模型的模拟逼真地再现了碳循环特征的历史变化。在IAP RAS CM中,在20世纪和21世纪再现的气候变暖增强了陆地的净初级生产力,但由于土壤呼吸的过度补偿增加,抑制了陆地的碳吸收。在2100年左右,由不同土地利用情景推动的模拟模型差异显着,在生物量和土壤碳储量方面相差约70 Pg(C),但在大气二氧化碳含量方面相差仅约10 Pg(C)。

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