China's terrestrial carbon balance: Contributions from multiple global change factors

The magnitude, spatial, and temporal patterns of the terrestrial carbon sink and the underlying mechanisms remain uncertain and need to be investigated. China is important in determining the global carbon balance in terms of both carbon emission and carbon uptake. Of particular importance to climate...

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Veröffentlicht in:Global biogeochemical cycles 2011-03, Vol.25 (1), p.np-n/a
Hauptverfasser: Tian, Hanqin, Melillo, Jerry, Lu, Chaoqun, Kicklighter, David, Liu, Mingliang, Ren, Wei, Xu, Xiaofeng, Chen, Guangsheng, Zhang, Chi, Pan, Shufen, Liu, Jiyuan, Running, Steven
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container_issue 1
container_start_page np
container_title Global biogeochemical cycles
container_volume 25
creator Tian, Hanqin
Melillo, Jerry
Lu, Chaoqun
Kicklighter, David
Liu, Mingliang
Ren, Wei
Xu, Xiaofeng
Chen, Guangsheng
Zhang, Chi
Pan, Shufen
Liu, Jiyuan
Running, Steven
description The magnitude, spatial, and temporal patterns of the terrestrial carbon sink and the underlying mechanisms remain uncertain and need to be investigated. China is important in determining the global carbon balance in terms of both carbon emission and carbon uptake. Of particular importance to climate‐change policy and carbon management is the ability to evaluate the relative contributions of multiple environmental factors to net carbon source and sink in China's terrestrial ecosystems. Here the effects of multiple environmental factors (climate, atmospheric CO2, ozone pollution, nitrogen deposition, nitrogen fertilizer application, and land cover/land use change) on net carbon balance in terrestrial ecosystems of China for the period 1961–2005 were modeled with newly developed, detailed historical information of these changes. For this period, results from two models indicated a mean land sink of 0.21 Pg C per year, with a multimodel range from 0.18 to 0.24 Pg C per year. The models' results are consistent with field observations and national inventory data and provide insights into the biogeochemical mechanisms responsible for the carbon sink in China's land ecosystems. In the simulations, nitrogen deposition and fertilizer applications together accounted for 61 percent of the net carbon storage in China's land ecosystems in recent decades, with atmospheric CO2 increases and land use also functioning to stimulate carbon storage. The size of the modeled carbon sink over the period 1961–2005 was reduced by both ozone pollution and climate change. The modeled carbon sink in response to per unit nitrogen deposition shows a leveling off or a decline in some areas in recent years, although the nitrogen input levels have continued to increase.
doi_str_mv 10.1029/2010GB003838
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source Wiley Free Content; Wiley-Blackwell AGU Digital Library; Wiley Online Library Journals Frontfile Complete; Elektronische Zeitschriftenbibliothek - Frei zugängliche E-Journals
subjects Carbon
Carbon dioxide
Carbon sequestration
Carbon sinks
Carbon sources
China
Climate change
Earth
Ecosystem biology
ecosystem model
Environmental factors
Fertilizer application
Geobiology
Land use
Nitrogen
Ozone
terrestrial carbon sink
Terrestrial ecosystems
Terrestrial environments
title China's terrestrial carbon balance: Contributions from multiple global change factors
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