Long-term observation of the atmospheric exchange of CO2 with a temperate deciduous forest in southern Ontario, Canada

被引:127
作者
Lee, XH
Fuentes, JD
Staebler, RM
Neumann, HH
机构
[1] Yale Univ, Sch Forestry & Environm Studies, New Haven, CT 06511 USA
[2] Univ Virginia, Dept Environm Sci, Charlottesville, VA 22903 USA
[3] Atmospher Environm Serv, Toronto, ON M3H 5T4, Canada
关键词
D O I
10.1029/1999JD900227
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
This paper reports the results of the analysis of eddy covariance CO2 data obtained at a successional forest of maple and aspen at Camp Borden in southern Ontario, Canada, between July 1995 and December 1997. Main findings are (1) The Michaelis-Menton model explains >50-65% of the observed variance of the daytime net ecosystem carbon exchange (NEE) during the growing season; leaf wetness appears to be an important variable contributing to the remaining variance. (2) The whole-ecosystem respiration rate as a function of the 5-cm soil temperature shows a seasonal "hysteresis" (higher rate in the later part of the year), suggesting a nonnegligible contribution by deep soil/roots and the influence of litter age. (3) There is evidence of photosynthetic activities immediately after the spring snowmelt/soil warming, but the. daily NEE did not switch sign till about 40 days later; our best estimates of the annual net carbon uptake by the ecosystem net ecosystem production (NEP) are -1,0, -1.2, and -2.8 t C ha(-1) yr(-1) for the periods July 19, 1995, to July 18, 1996, January 1 to December 31, 1996, and January 1 to December 31, 1997, respectively, with an uncertainty of +/-0.4 t C ha(-1) yr(-1). (4) The higher NEP value in 1997 than in 1996 was caused by lower growing season soil temperature, cooler spring and fall transitional periods, and higher photon flux in 1997; possible enhancement in canopy photosynthetic capacity may also have played a role. In addition, three main sources of uncertainties, data gap, fetch, and mass flow, are discussed, it is suggested that collective use of the methods available for assessing the whole-ecosystem respiration (friction velocity threshold, mass flow theory, and dark respiration from the forest light response) may increase the confidence level of NEP estimates.
引用
收藏
页码:15975 / 15984
页数:10
相关论文
共 58 条
[1]  
ABER JD, 1982, FOREST SCI, V28, P31
[2]  
Aber JD., 1991, TERRESTRIAL ECOSYSTE
[3]  
Amthor J. S., 1989, RESP CROP PRODUCTIVI
[4]  
Amthor Jeffrey S., 1994, P501
[5]   TESTING A MECHANISTIC MODEL OF FOREST-CANOPY MASS AND ENERGY-EXCHANGE USING EDDY-CORRELATION - CARBON-DIOXIDE AND OZONE UPTAKE BY A MIXED OAK MAPLE STAND [J].
AMTHOR, JS ;
GOULDEN, ML ;
MUNGER, JW ;
WOFSY, SC .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1994, 21 (05) :623-651
[6]  
[Anonymous], 1997, J GEOPHYS RES ATMOS
[7]   A COMPARATIVE-STUDY OF MASS AND ENERGY-EXCHANGE RATES OVER A CLOSED C-3 (WHEAT) AND AN OPEN C-4 (CORN) CROP .2. CO2 EXCHANGE AND WATER-USE EFFICIENCY [J].
BALDOCCHI, D .
AGRICULTURAL AND FOREST METEOROLOGY, 1994, 67 (3-4) :291-321
[8]   Measuring and modelling carbon dioxide and water vapour exchange over a temperate broad-leaved forest during the 1995 summer drought [J].
Baldocchi, D .
PLANT CELL AND ENVIRONMENT, 1997, 20 (09) :1108-1122
[9]  
BALDOCCHI D, 1998, 23 AM MET SOC C AGR
[10]   Annual cycles of water vapour and carbon dioxide fluxes in and above a boreal aspen forest [J].
Black, TA ;
DenHartog, G ;
Neumann, HH ;
Blanken, PD ;
Yang, PC ;
Russell, C ;
Nesic, Z ;
Lee, X ;
Chen, SG ;
Staebler, R ;
Novak, MD .
GLOBAL CHANGE BIOLOGY, 1996, 2 (03) :219-229