Carbon dioxide and water vapor exchange by young and old ponderosa pine ecosystems during a dry summer

被引:103
作者
Law, BE
Goldstein, AH
Anthoni, PM
Unsworth, MH
Panek, JA
Bauer, MR
Fracheboud, JM
Hultman, N
机构
[1] Oregon State Univ, Dept Forest Sci, Corvallis, OR 97331 USA
[2] Univ Calif Berkeley, Div Ecosyst Sci, Berkeley, CA 94720 USA
[3] Oregon State Univ, Coll Ocean & Atmopher Sci, Corvallis, OR 97331 USA
[4] Univ Calif Berkeley, Energy & Resources Grp, Berkeley, CA 94704 USA
关键词
canopy architecture; carbon exchange; energy exchange; leaf area; Pinus ponderosa; radiative transfer;
D O I
10.1093/treephys/21.5.299
中图分类号
S7 [林业];
学科分类号
0829 ; 0907 ;
摘要
We investigated key factors controlling mass and energy exchange by a young (6-year-old) ponderosa pine (Pinus ponderosa Laws.) plantation on the west side of the Siena Nevada Mountains and an old-growth ponderosa pine forest (mix of 45- and 250-year-old trees) on the east side of the Cascade Mountains, from June through September 1997. At both sites, we operated eddy covariance systems above the canopy to measure net ecosystem exchange of carbon dioxide and water vapor, and made concurrent meteorological and ecophysiological measurements, Our objective was to understand and compare the controls on ecosystem processes in these two forests, Precipitation is much higher in the young plantation than in the old-growth forest (1660 versus 550 mm year(-1)), although both forests experienced decreasing soil water availability and increasing vapor pressure deficits (D) as the summer of 1997 progressed. As a result, drought stress increased at both sites during this period, and changes in D strongly influenced ecosystem conductance and net carbon uptake. Ecosystem conductance for a given D was higher in the young pine plantation than in the old-growth forest, but decreased dramatically following several days of high D in late summer, possibly because of xylem cavitation, Net CO2 exchange generally decreased with conductance at both sites, although values were roughly twice as high at the young site. Simulations with the 3-PG model, which included the effect of tree age on fluxes, suggest that, during the fall through spring period, milder temperatures and ample water availability at the young site provide better conditions for photosynthesis than at the old pine site. Thus, over the long-term, the young site can carry more leaf area, and the climatic conditions between fall and spring offset the more severe limitations imposed by summer drought.
引用
收藏
页码:299 / 308
页数:10
相关论文
共 38 条
[11]   Simple scaling of photosynthesis from leaves to canopies without the errors of big-leaf models [J].
dePury, DGG ;
Farquhar, GD .
PLANT CELL AND ENVIRONMENT, 1997, 20 (05) :537-557
[12]   GROWING-SEASON BOUNDARY-LAYER CLIMATE AND SURFACE EXCHANGES IN A SUB-ARCTIC LICHEN WOODLAND [J].
FITZJARRALD, DR ;
MOORE, KE .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1994, 99 (D1) :1899-1917
[13]   Effects of climate variability on the carbon dioxide, water, and sensible heat fluxes above a ponderosa pine plantation in the Sierra Nevada (CA) [J].
Goldstein, AH ;
Hultman, NE ;
Fracheboud, JM ;
Bauer, MR ;
Panek, JA ;
Xu, M ;
Qi, Y ;
Guenther, AB ;
Baugh, W .
AGRICULTURAL AND FOREST METEOROLOGY, 2000, 101 (2-3) :113-129
[14]   Seasonal patterns and environmental control of carbon dioxide and water vapour exchange in an ecotonal boreal forest [J].
Hollinger, DY ;
Goltz, SM ;
Davidson, EA ;
Lee, JT ;
Tu, K ;
Valentine, HT .
GLOBAL CHANGE BIOLOGY, 1999, 5 (08) :891-902
[15]  
Hubbard RM, 1999, TREE PHYSIOL, V19, P165
[16]   Seasonal variation of carbon dioxide, water vapor, and energy exchanges of a boreal black spruce forest [J].
Jarvis, PG ;
Massheder, JM ;
Hale, SE ;
Moncrieff, JB ;
Rayment, M ;
Scott, SL .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1997, 102 (D24) :28953-28966
[17]   STOMATAL CONTROL OF TRANSPIRATION - SCALING UP FROM LEAF TO REGION [J].
JARVIS, PG ;
MCNAUGHTON, KG .
ADVANCES IN ECOLOGICAL RESEARCH, 1986, 15 :1-49
[18]  
Jarvis PG, 1981, PLANTS THEIR ATMOSPH, P175
[19]  
JONES HG, 1992, PLANTS MICROCLIMATE, P106
[20]  
Kaimal J. C., 1994, ATMOSPHERIC BOUNDARY, DOI DOI 10.1093/OSO/9780195062397.001.0001