Effects of climatic variability on the annual carbon sequestration by a boreal aspen forest

被引:160
|
作者
Chen, WJ
Black, TA
Yang, PC
Barr, AG
Neumann, HH
Nesic, Z
Blanken, PD
Novak, MD
Eley, J
Ketler, RJ
Cuenca, A
机构
[1] Univ British Columbia, Dept Soil Sci, Vancouver, BC V6T 1Z4, Canada
[2] Atmospher Environm Serv, Saskatoon, SK, Canada
[3] Atmospher Environm Serv, Downsview, ON, Canada
[4] Oregon State Univ, Corvallis, OR 97331 USA
关键词
boreal aspen forest; BOREAS; carbon sequestration; climatic variability; eddy covariance; photosynthesis; respiration;
D O I
10.1046/j.1365-2486.1998.00201.x
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
To evaluate the carbon budget of a boreal deciduous forest, we measured CO2 fluxes using the eddy covariance technique above an old aspen (OA) forest in Prince Albert National Park, Saskatchewan, Canada, in 1994 and 1996 as part of the Boreal Ecosystem-Atmosphere Study (BOREAS). We found that the OA forest is a strong carbon sink sequestering 200 +/- 30 and 130 +/- 30 g C m(-2) y(-1) in 1994 and 1996, respectively. These measurements were 16-25% lower than an inventory result that the mean carbon increment was about 240 g C m(-2) y(-1) between 1919 and 1994, mainly due to the advanced age of the stand at the time of eddy covariance measurements. Assuming these rates to be representative of Canadian boreal deciduous forests (area approximate to 3 x 10(5) km(2)), it is likely they can sequester 40-60 Tg C y(-1), which is 2-3% of the missing global carbon sink. The difference in carbon sequestration by the OA forest between 1994 and 1996 was mainly caused by the difference in leaf emergence date. The monthly mean air temperature during March-May 1994, was 4.8 degrees C higher than in 1996, resulting in leaf emergence being 18-24 days earlier in 1994 than 1996. The warm spring and early leaf emergence in 1994 enabled the aspen forest to exploit the long days and high solar irradiance of mid-to-late spring. In contrast, the 1996 OA growing season included only 32 days before the summer solstice. The earlier leaf emergence in 1994 resulted 16% more absorbed photosynthetically active radiation and a 90 g C m(-2) y(-1) increase in photosynthesis than 1996. The concomitant increase in respiration in the warmer year (1994) was only 20 g C m(-2) y(-1). These results show that an important control on carbon sequestration by boreal deciduous forests is spring temperature, via the influence of air temperature on the timing of leaf emergence.
引用
收藏
页码:41 / 53
页数:13
相关论文
共 50 条
  • [21] Forms, amounts and distribution of carbon, nitrogen, phosphorus and sulfur in a boreal aspen forest soil
    Huang, WZ
    Schoenau, JJ
    CANADIAN JOURNAL OF SOIL SCIENCE, 1996, 76 (03) : 373 - 385
  • [22] Effects of biological invasions on forest carbon sequestration
    Peltzer, D. A.
    Allen, R. B.
    Lovett, G. M.
    Whitehead, D.
    Wardle, D. A.
    GLOBAL CHANGE BIOLOGY, 2010, 16 (02) : 732 - 746
  • [23] Sequestration of atmospheric CO2 in boreal forest carbon pools in northeastern China: Effects of nitrogen deposition
    Yan, Guoyong
    Xing, Yajuan
    Wang, Jianyu
    Li, Zhenghua
    Wang, Ligong
    Wang, Qinggui
    Xu, Lijian
    Zhang, Zhi
    Zhang, Junhui
    Dong, Xiongde
    Shan, Wenjun
    Guo, Liang
    Han, Shijie
    AGRICULTURAL AND FOREST METEOROLOGY, 2018, 248 : 70 - 81
  • [24] Climatic variation drives loss and restructuring of carbon and nitrogen in boreal forest wildfire
    Eckdahl, Johan A.
    Kristensen, Jeppe A.
    Metcalfe, Daniel B.
    BIOGEOSCIENCES, 2022, 19 (09) : 2487 - 2506
  • [25] Radiation regime and canopy architecture in a boreal aspen forest
    Chen, JM
    Blanken, PD
    Blank, TA
    Guilbeault, M
    Chen, S
    AGRICULTURAL AND FOREST METEOROLOGY, 1997, 86 (1-2) : 107 - 125
  • [26] Forest stand structure, productivity, and age mediate climatic effects on aspen decline
    Bell, David M.
    Bradford, John B.
    Lauenroth, William K.
    ECOLOGY, 2014, 95 (08) : 2040 - 2046
  • [27] Effects of climatic changes on carbon dioxide and water vapor fluxes in boreal forest ecosystems of European part of Russia
    Olchev, A.
    Novenko, E.
    Desherevskaya, O.
    Krasnorutskaya, K.
    Kurbatova, J.
    ENVIRONMENTAL RESEARCH LETTERS, 2009, 4 (04):
  • [28] Modelling temporal variability in the carbon balance of a spruce/moss boreal forest
    Frolking, S
    Goulden, ML
    Wofsy, SC
    Fan, SM
    Sutton, DJ
    Munger, JW
    Bazzaz, AM
    Daube, BC
    Crill, PM
    Aber, JD
    Band, LE
    Wang, X
    Savage, K
    Moore, T
    Harriss, RC
    GLOBAL CHANGE BIOLOGY, 1996, 2 (04) : 343 - 366
  • [29] Roots and Associated Fungi Drive Long-Term Carbon Sequestration in Boreal Forest
    Clemmensen, K. E.
    Bahr, A.
    Ovaskainen, O.
    Dahlberg, A.
    Ekblad, A.
    Wallander, H.
    Stenlid, J.
    Finlay, R. D.
    Wardle, D. A.
    Lindahl, B. D.
    SCIENCE, 2013, 339 (6127) : 1615 - 1618
  • [30] Long-term nitrogen addition further increased carbon sequestration in a boreal forest
    Liu, Guancheng
    Yan, Guoyong
    Chang, Mengyu
    Huang, Binbin
    Sun, Xingyu
    Han, Shijie
    Xing, Yajuan
    Wang, Qinggui
    EUROPEAN JOURNAL OF FOREST RESEARCH, 2021, 140 (05) : 1113 - 1126