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首页> 外文期刊>Nature Climate Change >Foliar temperature acclimation reduces simulated carbon sensitivity to climate
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Foliar temperature acclimation reduces simulated carbon sensitivity to climate

机译:叶面温度适应减少模拟碳对气候敏感

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摘要

Plant photosynthesis and respiration are the largest carbon fluxes between the terrestrial biosphere and the atmosphere(1), and their parameterizations represent large sources of uncertainty in projections of land carbon uptake in Earth system models(2,3) (ESMs). The incorporation of temperature acclimation of photosynthesis and foliar respiration, commonly observed processes, into ESMs has been proposed as a way to reduce this uncertainty(2). Here we show that, across 15 flux tower sites spanning multiple biomes at various locations worldwide (10 degrees S-67 degrees N), acclimation parameterizations(4,5) improve a model's ability to reproduce observed net ecosystem exchange of CO2. This improvement is most notable in tropical biomes, where photosynthetic acclimation increased model performance by 36%. The consequences of acclimation for simulated terrestrial carbon uptake depend on the process, region and time period evaluated. Globally, including acclimation has a net effect of increasing carbon assimilation and storage, an effect that diminishes with time, but persists well into the future. Our results suggest that land models omitting foliar temperature acclimation are likely to overestimate the temperature sensitivity of terrestrial carbon exchange, thus biasing projections of future carbon storage and estimates of policy indicators such as the transient climate response to cumulative carbon emissions(1).
机译:植物光合作用和呼吸作用最大的陆地之间的碳通量生物圈和大气中(1),和他们的参数化表示的主要来源不确定性的预测陆地碳吸收在地球系统模型(2,3)(esm)。将温度的适应光合作用和叶面呼吸一般观察过程,提出了esm来减少这种不确定性(2)。表明,在15通量塔网站生成全球多个生物群落在不同的位置(10度s - 67度N),适应环境参数化(4、5)改进模型的能力复制观察净生态系统交换二氧化碳。生物群落,光合适应模型的性能提高了36%。适应环境的模拟结果陆地碳吸收取决于这一过程中,地区和时间评估。包括适应的净效应增加碳同化和存储,一个效果随着时间而减少,但仍然存在到未来。土地模型省略叶面温度适应可能高估了陆地碳的温度敏感性交换,因此偏压的预测未来碳储存和政策指标的估计如气候响应瞬态累积碳排放(1)。

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