Decrease of emissions required to stabilize atmospheric CO2 due to positive carbon cycle-climate feedbacks -: art. no. L21707

被引:15
作者
Matthews, HD [1 ]
机构
[1] Univ Calgary, Dept Geog, Calgary, AB T2N 1N4, Canada
关键词
D O I
10.1029/2005GL023435
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Positive feedbacks between the carbon cycle and climate have the potential to accelerate the accumulation of atmospheric CO2 over the next century. Here, I address the question of how climate-induced carbon cycle changes could affect the emissions required to stabilize atmospheric CO2 at 1000 ppmv. From a coupled climate-carbon cycle simulation, I calculated emissions that are consistent with a prescribed CO2 stabilization pathway. By comparing a coupled simulation with a second constant-climate simulation, I show that carbon cycle-climate feedbacks lead to large decreases in allowable emissions. Cumulative emissions are reduced by 94, 230 and 754 GtC between 2005 and years 2050, 2100 and 2350 respectively. Annual differences are largest at 2080, where emissions are reduced by 2.8 GtC/year. Further, while terrestrial feedbacks dominate for the next two centuries, the effect of ocean feedbacks on allowable emissions begin to exceed that of terrestrial feedbacks around the year 2250.
引用
收藏
页码:1 / 4
页数:4
相关论文
共 17 条
[1]   The importance of ocean temperature to global biogeochemistry [J].
Archer, D ;
Martin, P ;
Buffett, B ;
Brovkin, V ;
Rahmstorf, S ;
Ganopolski, A .
EARTH AND PLANETARY SCIENCE LETTERS, 2004, 222 (02) :333-348
[2]   Acceleration of global warming due to carbon-cycle feedbacks in a coupled climate model [J].
Cox, PM ;
Betts, RA ;
Jones, CD ;
Spall, SA ;
Totterdell, IJ .
NATURE, 2000, 408 (6809) :184-187
[3]   On the magnitude of positive feedback between future climate change and the carbon cycle [J].
Dufresne, JL ;
Friedlingstein, P ;
Berthelot, M ;
Bopp, L ;
Ciais, P ;
Fairhead, L ;
Le Treut, H ;
Monfray, P .
GEOPHYSICAL RESEARCH LETTERS, 2002, 29 (10) :43-1
[4]   Climate-carbon cycle feedback analysis:: Results from the C4MIP model intercomparison [J].
Friedlingstein, P. ;
Cox, P. ;
Betts, R. ;
Bopp, L. ;
Von Bloh, W. ;
Brovkin, V. ;
Cadule, P. ;
Doney, S. ;
Eby, M. ;
Fung, I. ;
Bala, G. ;
John, J. ;
Jones, C. ;
Joos, F. ;
Kato, T. ;
Kawamiya, M. ;
Knorr, W. ;
Lindsay, K. ;
Matthews, H. D. ;
Raddatz, T. ;
Rayner, P. ;
Reick, C. ;
Roeckner, E. ;
Schnitzler, K. -G. ;
Schnur, R. ;
Strassmann, K. ;
Weaver, A. J. ;
Yoshikawa, C. ;
Zeng, N. .
JOURNAL OF CLIMATE, 2006, 19 (14) :3337-3353
[5]   Increase of carbon cycle feedback with climate sensitivity: results from a coupled climate and carbon cycle model [J].
Govindasamy, B ;
Thompson, S ;
Mirin, A ;
Wickett, M ;
Caldeira, K ;
Delire, C .
TELLUS SERIES B-CHEMICAL AND PHYSICAL METEOROLOGY, 2005, 57 (02) :153-163
[6]   Global climate change and soil carbon stocks; predictions from two contrasting models for the turnover of organic carbon in soil [J].
Jones, C ;
McConnell, C ;
Coleman, K ;
Cox, P ;
Falloon, P ;
Jenkinson, D ;
Powlson, D .
GLOBAL CHANGE BIOLOGY, 2005, 11 (01) :154-166
[7]   Global warming and marine carbon cycle feedbacks an future atmospheric CO2 [J].
Joos, F ;
Plattner, GK ;
Stocker, TF ;
Marchal, O ;
Schmittner, A .
SCIENCE, 1999, 284 (5413) :464-467
[8]   Primary productivity control of simulated carbon cycle-climate feedbacks [J].
Matthews, HD ;
Eby, M ;
Weaver, AJ ;
Hawkins, BJ .
GEOPHYSICAL RESEARCH LETTERS, 2005, 32 (14) :1-5
[9]   Terrestrial carbon cycle dynamics under recent and future climate change [J].
Matthews, HD ;
Weaver, AJ ;
Meissner, KJ .
JOURNAL OF CLIMATE, 2005, 18 (10) :1609-1628
[10]   The role of land surface dynamics in glacial inception: a study with the UVic Earth System Model [J].
Meissner, KJ ;
Weaver, AJ ;
Matthews, HD ;
Cox, PM .
CLIMATE DYNAMICS, 2003, 21 (7-8) :515-537