Exposure to an enriched CO2 atmosphere alters carbon assimilation and allocation in a pine forest ecosystem

被引:131
作者
Schäfer, KVR
Oren, R
Ellsworth, DS
Lai, CT
Herrick, JD
Finzi, AC
Richter, DD
Katul, GG
机构
[1] Nicholas Sch Environm & Earth Sci, Durham, NC 27708 USA
[2] Univ Michigan, Sch Nat Resources & Environm, Ann Arbor, MI 48109 USA
[3] Univ Utah, Dept Biol, Salt Lake City, UT 84112 USA
[4] Boston Univ, Dept Biol, Boston, MA 02215 USA
[5] W Virginia Univ, Morgantown, WV 26506 USA
关键词
canopy stomatal conductance; free air CO2 enrichment; net ecosystem exchange; net primary productivity; plant canopy modelling; respiration;
D O I
10.1046/j.1365-2486.2003.00662.x
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
We linked a leaf-level CO2 assimilation model with a model that accounts for light attenuation in the canopy and measurements of sap-flux-based canopy conductance into a new canopy conductance-constrained carbon assimilation (4C-A) model. We estimated canopy CO2 uptake (A(nC)) at the Duke Forest free-air CO2 enrichment (FACE) study. Rates of A(nC) estimated from the 4C-A model agreed well with leaf gas exchange measurements (A(net)) in both CO2 treatments. Under ambient conditions, monthly sums of net CO2 uptake by the canopy (A(nC)) were 13% higher than estimates based on eddy-covariance and chamber measurements. Annual estimates of A(nC) were only 3% higher than carbon (C) accumulations and losses estimated from ground-based measurements for the entire stand. The C budget for the Pinus taeda component was well constrained (within 1% of ground-based measurements). Although the closure of the C budget for the broadleaf species was poorer (within 20%), these species are a minor component of the forest. Under elevated CO2, the C used annually for growth, turnover, and respiration balanced only 80% of the A(nC). Of the extra 700 g C m(-2) a(-1) (1999 and 2000 average), 86% is attributable to surface soil CO2 efflux. This suggests that the production and turnover of fine roots was underestimated or that mycorrhizae and rhizodeposition became an increasingly important component of the C balance. Under elevated CO2, net ecosystem production increased by 272 g C m(-2) a(-1): 44% greater than under ambient CO2. The majority (87%) of this C was sequestered in a moderately long-term C pool in wood, with the remainder in the forest floor-soil subsystem.
引用
收藏
页码:1378 / 1400
页数:23
相关论文
共 93 条
[41]   Modelling assimilation and intercellular CO2 from measured conductance:: a synthesis of approaches [J].
Katul, GG ;
Ellsworth, DS ;
Lai, CT .
PLANT CELL AND ENVIRONMENT, 2000, 23 (12) :1313-1328
[42]   DYNAMICS OF FOLIAGE DISTRIBUTION WITHIN A FOREST CANOPY [J].
KINERSON, RS ;
HIGGINBOTHAM, KO ;
CHAPMAN, RC .
JOURNAL OF APPLIED ECOLOGY, 1974, 11 (01) :347-353
[43]   TOWARDS A BETTER EXPERIMENTAL BASIS FOR UPSCALING PLANT-RESPONSES TO ELEVATED CO2 AND CLIMATE WARMING [J].
KORNER, C .
PLANT CELL AND ENVIRONMENT, 1995, 18 (10) :1101-1110
[44]   TRANSPIRATION AND CANOPY CONDUCTANCE IN A PRISTINE BROAD-LEAVED FOREST OF NOTHOFAGUS - AN ANALYSIS OF XYLEM SAP FLOW AND EDDY-CORRELATION MEASUREMENTS [J].
KOSTNER, BMM ;
SCHULZE, ED ;
KELLIHER, FM ;
HOLLINGER, DY ;
BYERS, JN ;
HUNT, JE ;
MCSEVENY, TM ;
MESERTH, R ;
WEIR, PL .
OECOLOGIA, 1992, 91 (03) :350-359
[45]   Modeling CO2 and water vapor turbulent flux distributions within a forest canopy [J].
Lai, CT ;
Katul, G ;
Oren, R ;
Ellsworth, D ;
Schäfer, K .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2000, 105 (D21) :26333-26351
[46]   Modelling night-time ecosystem respiration by a constrained source optimization method [J].
Lai, CT ;
Katul, G ;
Butnor, J ;
Ellsworth, D ;
Oren, R .
GLOBAL CHANGE BIOLOGY, 2002, 8 (02) :124-141
[47]   A generalised model of forest productivity using simplified concepts of radiation-use efficiency, carbon balance and partitioning [J].
Landsberg, JJ ;
Waring, RH .
FOREST ECOLOGY AND MANAGEMENT, 1997, 95 (03) :209-228
[48]   Measurements of gross and net ecosystem productivity and water vapour exchange of a Pinus ponderosa ecosystem, and an evaluation of two generalized models [J].
Law, BE ;
Waring, RH ;
Anthoni, PM ;
Aber, JD .
GLOBAL CHANGE BIOLOGY, 2000, 6 (02) :155-168
[49]   Seasonal and annual respiration of a ponderosa pine ecosystem [J].
Law, BE ;
Ryan, MG ;
Anthoni, PM .
GLOBAL CHANGE BIOLOGY, 1999, 5 (02) :169-182
[50]   A two-leaf model for canopy conductance, photosynthesis and partitioning of available energy. II. Comparison with measurements [J].
Leuning, R ;
Dunin, FX ;
Wang, YP .
AGRICULTURAL AND FOREST METEOROLOGY, 1998, 91 (1-2) :113-125