Dynamic responses of African ecosystem carbon cycling to climate change

被引:48
作者
Cao, MK [1 ]
Zhang, QF [1 ]
Shugart, HH [1 ]
机构
[1] Univ Virginia, Dept Environm Sci, Charlottesville, VA 22904 USA
关键词
carbon cycle; climate change; Africa ecosystem modeling;
D O I
10.3354/cr017183
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Global climate change has been modifying ecosystem carbon cycling, which has produced feedbacks on climate by affecting the concentration of atmospheric CO2. The importance of biospheric CO2 uptake or release to climate change has generated great interest in quantifying the dynamic responses of terrestrial ecosystem carbon cycling to climate change. However, less attention has been given to Africa, although it accounts for about one-fifth of the global net primary production and is one of the regions that have the greatest climate change. Here we use a biogeochemical model to simulate the dynamic variations in the carbon fluxes and stocks of African ecosystems caused by changes in climate and atmospheric CO2 from 1901 and 1995. We estimate that climate change reduces plant production and soil carbon stocks and causes net CO2 release, but the fertilization effect of increasing atmospheric CO2 on photosynthesis reverses the reduction and leads to carbon accumulation in vegetation. Therefore, the combined effect of climate change and increasing atmospheric CO2 causes net CO2 uptake, particularly in central Africa. The mean rate of the carbon sequestration in the period 1981-1995 is calculated to be 0.34 Gt C yr(-1). Nevertheless, Africa is not necessarily a significant carbon sink, because a large part of the carbon sequestration is offset by the carbon release arising from land use changes.
引用
收藏
页码:183 / 193
页数:11
相关论文
共 66 条
[11]   NDVI-DERIVED LAND-COVER CLASSIFICATIONS AT A GLOBAL-SCALE [J].
DEFRIES, RS ;
TOWNSHEND, JRG .
INTERNATIONAL JOURNAL OF REMOTE SENSING, 1994, 15 (17) :3567-3586
[12]   Combining satellite data and biogeochemical models to estimate global effects of human-induced land cover change on carbon emissions and primary productivity [J].
DeFries, RS ;
Field, CB ;
Fung, I ;
Collatz, GJ ;
Bounoua, L .
GLOBAL BIOGEOCHEMICAL CYCLES, 1999, 13 (03) :803-815
[13]   THE INTERACTION OF RISING CO2 AND TEMPERATURES WITH WATER-USE EFFICIENCY [J].
EAMUS, D .
PLANT CELL AND ENVIRONMENT, 1991, 14 (08) :843-852
[14]  
FAO, 1993, Forest resources assessment 1990: tropical countries
[15]  
FAO-UNEP, 1981, TROP FOR RES ASS P 1
[16]   A BIOCHEMICAL-MODEL OF PHOTOSYNTHETIC CO2 ASSIMILATION IN LEAVES OF C-3 SPECIES [J].
FARQUHAR, GD ;
CAEMMERER, SV ;
BERRY, JA .
PLANTA, 1980, 149 (01) :78-90
[17]   An integrated biosphere model of land surface processes, terrestrial carbon balance, and vegetation dynamics [J].
Foley, JA ;
Prentice, IC ;
Ramankutty, N ;
Levis, S ;
Pollard, D ;
Sitch, S ;
Haxeltine, A .
GLOBAL BIOGEOCHEMICAL CYCLES, 1996, 10 (04) :603-628
[18]   A process-based, terrestrial biosphere model of ecosystem dynamics (Hybrid v3.0) [J].
Friend, AD ;
Stevens, AK ;
Knox, RG ;
Cannell, MGR .
ECOLOGICAL MODELLING, 1997, 95 (2-3) :249-287
[19]   State and change in carbon pools in the forests of tropical Africa [J].
Gaston, G ;
Brown, S ;
Lorenzini, M ;
Singh, KD .
GLOBAL CHANGE BIOLOGY, 1998, 4 (01) :97-114
[20]  
GLANTZ MH, 1994, DROUGHT FOLLOWS PLOW, P6