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本文引用的文献

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Continental-scale partitioning of fire emissions during the 1997 to 2001 El Niño/La Niña period.1997至2001年厄尔尼诺/拉尼娜期间火灾排放的大陆尺度划分
Science. 2004 Jan 2;303(5654):73-6. doi: 10.1126/science.1090753.
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Carbon in Amazon forests: unexpected seasonal fluxes and disturbance-induced losses.亚马逊森林中的碳:意想不到的季节性通量和干扰导致的损失。
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Climate-driven increases in global terrestrial net primary production from 1982 to 1999.1982年至1999年气候驱动下全球陆地净初级生产力的增加。
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Contributions of land-use history to carbon accumulation in U.S. forests.土地利用历史对美国森林碳积累的贡献。
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Reduced growth of Alaskan white spruce in the twentieth century from temperature-induced drought stress.20世纪阿拉斯加白云杉因温度引发的干旱胁迫而生长减缓。
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更干燥的夏季抵消了较温暖春季所带来的二氧化碳吸收增强效应。

Drier summers cancel out the CO2 uptake enhancement induced by warmer springs.

作者信息

Angert A, Biraud S, Bonfils C, Henning C C, Buermann W, Pinzon J, Tucker C J, Fung I

机构信息

Berkeley Atmospheric Sciences Center, University of California, Berkeley, CA 94720-4767, USA.

出版信息

Proc Natl Acad Sci U S A. 2005 Aug 2;102(31):10823-7. doi: 10.1073/pnas.0501647102. Epub 2005 Jul 25.

DOI:10.1073/pnas.0501647102
PMID:16043702
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1180508/
Abstract

An increase in photosynthetic activity of the northern hemisphere terrestrial vegetation, as derived from satellite observations, has been reported in previous studies. The amplitude of the seasonal cycle of the annually detrended atmospheric CO(2) in the northern hemisphere (an indicator of biospheric activity) also increased during that period. We found, by analyzing the annually detrended CO(2) record by season, that early summer (June) CO(2) concentrations indeed decreased from 1985 to 1991, and they have continued to decrease from 1994 up to 2002. This decrease indicates accelerating springtime net CO(2) uptake. However, the CO(2) minimum concentration in late summer (an indicator of net growing-season uptake) showed no positive trend since 1994, indicating that lower net CO(2) uptake during summer cancelled out the enhanced uptake during spring. Using a recent satellite normalized difference vegetation index data set and climate data, we show that this lower summer uptake is probably the result of hotter and drier summers in both mid and high latitudes, demonstrating that a warming climate does not necessarily lead to higher CO(2) growing-season uptake, even in high-latitude ecosystems that are considered to be temperature limited.

摘要

先前的研究报告称,根据卫星观测数据,北半球陆地植被的光合活性有所增强。在此期间,北半球每年去除长期趋势后的大气二氧化碳季节性循环幅度(生物活动的一个指标)也有所增加。通过按季节分析每年去除长期趋势后的二氧化碳记录,我们发现,1985年至1991年,初夏(6月)的二氧化碳浓度确实有所下降,并且从1994年到2002年持续下降。这种下降表明春季净二氧化碳吸收加速。然而,自1994年以来,夏末的二氧化碳最低浓度(生长季净吸收的一个指标)没有呈上升趋势,这表明夏季较低的净二氧化碳吸收抵消了春季增强的吸收。利用最近的卫星归一化植被指数数据集和气候数据,我们表明,夏季吸收较低可能是中高纬度地区夏季更炎热干燥的结果,这表明气候变暖不一定会导致生长季二氧化碳吸收增加,即使在被认为受温度限制的高纬度生态系统中也是如此。