If Anthropogenic CO2 Emissions Cease, Will Atmospheric CO2 Concentration Continue to Increase?

被引:14
作者
MacDougall, Andrew H. [1 ]
Eby, Michael [1 ]
Weaver, Andrew J. [1 ]
机构
[1] Univ Victoria, Sch Earth & Ocean Sci, Victoria, BC V8W 3V6, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Carbon cycle; Climate models; CLIMATE-CHANGE; PERMAFROST CARBON; MODEL; EARTH; SENSITIVITY; DYNAMICS; OCEAN; CYCLE; SOIL;
D O I
10.1175/JCLI-D-12-00751.1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
If anthropogenic CO2 emissions were to suddenly cease, the evolution of the atmospheric CO2 concentration would depend on the magnitude and sign of natural carbon sources and sinks. Experiments using Earth system models indicate that the overall carbon sinks dominate, such that upon the cessation of anthropogenic emissions, atmospheric CO2 levels decrease over time. However, these models have typically neglected the permafrost carbon pool, which has the potential to introduce an additional terrestrial source of carbon to the atmosphere. Here, the authors use the University of Victoria Earth System Climate Model (UVic ESCM), which has recently been expanded to include permafrost carbon stocks and exchanges with the atmosphere. In a scenario of zeroed CO2 and sulfate aerosol emissions, whether the warming induced by specified constant concentrations of non-CO2 greenhouse gases could slow the CO2 decline following zero emissions or even reverse this trend and cause CO2 to increase over time is assessed. It is found that a radiative forcing from non-CO2 gases of approximately 0.6 W m(-2) results in a near balance of CO2 emissions from the terrestrial biosphere and uptake of CO2 by the oceans, resulting in near-constant atmospheric CO2 concentrations for at least a century after emissions are eliminated. At higher values of non-CO2 radiative forcing, CO2 concentrations increase over time, regardless of when emissions cease during the twenty-first century. Given that the present-day radiative forcing from non-CO2 greenhouse gases is about 0.95 W m(-2), the results suggest that if all CO2 and aerosols emissions were eliminated without also decreasing non-CO2 greenhouse gas emissions CO2 levels would increase over time, resulting in a small increase in climate warming associated with this positive permafrost-carbon feedback.
引用
收藏
页码:9563 / 9576
页数:14
相关论文
共 37 条
[1]   A data-driven model of the global calcite lysocline [J].
Archer, D .
GLOBAL BIOGEOCHEMICAL CYCLES, 1996, 10 (03) :511-526
[2]  
Avis C. A., 2012, THESIS U VICTORIA
[3]  
Avis CA, 2011, NAT GEOSCI, V4, P444, DOI [10.1038/ngeo1160, 10.1038/NGEO1160]
[4]  
Baldocchi D, 2004, SCOPE SER, V62, P295
[5]   Temperature sensitivity of soil carbon decomposition and feedbacks to climate change [J].
Davidson, EA ;
Janssens, IA .
NATURE, 2006, 440 (7081) :165-173
[6]  
Denman KL, 2007, AR4 CLIMATE CHANGE 2007: THE PHYSICAL SCIENCE BASIS, P499
[7]   Potential carbon release from permafrost soils of Northeastern Siberia [J].
Dutta, Koushik ;
Schuur, E. A. G. ;
Neff, J. C. ;
Zimov, S. A. .
GLOBAL CHANGE BIOLOGY, 2006, 12 (12) :2336-2351
[8]   Lifetime of Anthropogenic Climate Change: Millennial Time Scales of Potential CO2 and Surface Temperature Perturbations [J].
Eby, M. ;
Zickfeld, K. ;
Montenegro, A. ;
Archer, D. ;
Meissner, K. J. ;
Weaver, A. J. .
JOURNAL OF CLIMATE, 2009, 22 (10) :2501-2511
[9]   The global carbon cycle:: A test of our knowledge of earth as a system [J].
Falkowski, P ;
Scholes, RJ ;
Boyle, E ;
Canadell, J ;
Canfield, D ;
Elser, J ;
Gruber, N ;
Hibbard, K ;
Högberg, P ;
Linder, S ;
Mackenzie, FT ;
Moore, B ;
Pedersen, T ;
Rosenthal, Y ;
Seitzinger, S ;
Smetacek, V ;
Steffen, W .
SCIENCE, 2000, 290 (5490) :291-296
[10]  
Forster P, 2007, AR4 CLIMATE CHANGE 2007: THE PHYSICAL SCIENCE BASIS, P129