Transpiration and stomatal conductance across a steep climate gradient in the southern Rocky Mountains

被引:72
作者
McDowell, Nate G. [1 ]
White, Sandra [2 ]
Pockman, William T. [2 ]
机构
[1] Los Alamos Natl Lab, Div Earth & Environm Sci, Los Alamos, NM 87544 USA
[2] Univ New Mexico, Dept Biol, Albuquerque, NM 87131 USA
基金
美国国家科学基金会;
关键词
altitude; gas exchange; carbon isotopes; sap flow; water availability;
D O I
10.1002/eco.20
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Transpiration (E) is regulated over short time periods by stomatal conductance (G(s)) and over multi-year periods by tree- and stand-structural factors such as leaf area, height and density, with upper limits ultimately set by climate. We tested the hypothesis that tree structure, stand structure and G(s) together regulate E per ground area (E-g) within climatic limits using three sites located across a steep climatic gradient: a low-elevation Juniperus woodland, a mid-elevation Pinus forest and a high-elevation Picea forest. We measured leaf area : sapwood area ratio (A(1) : A(s)), height and ecosystem sapwood area : ground area ratio (A(s) : A(g)) to assess long-term structural adjustments, tree-ring carbon isotope ratios (delta C-13) to assess seasonal gas exchange, and whole-tree E and G(s) to assess short-term regulation. We used a hydraulic model based on Darcy's law to interpret the interactive regulation of G(s) and E-g. Common allometric dependencies were found only in the relationship of sapwood area to diameter for pine and spruce; there were strong site differences for allometric relationships of sapwood area to basal area, A(1) : A(s) and A(s) : A(g). On a sapwood area basis, E decreased with increasing elevation, but this pattern was reversed when E was scaled to the crown using A(1) : A(s) . E-g was controlled largely by A(s) : A(g), and both E-g and G(s) declined from high- to low-elevation sites. Observation-model comparisons of E-g, G(s) and delta C-13 were strongest using the hydraulic model parameterized with precipitation, vapour pressure deficit, A(1) : A(s), height, and A(s) : A(g), supporting the concept that climate, G(s), tree- and stand-structure interact to regulate E-g. Copyright (C) 2008 John Wiley & Sons, Ltd.
引用
收藏
页码:193 / 204
页数:12
相关论文
共 79 条
[21]   ON THE RELATIONSHIP BETWEEN CARBON ISOTOPE DISCRIMINATION AND THE INTER-CELLULAR CARBON-DIOXIDE CONCENTRATION IN LEAVES [J].
FARQUHAR, GD ;
OLEARY, MH ;
BERRY, JA .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1982, 9 (02) :121-137
[22]   Changes in whole-tree water relations during ontogeny of Pinus flexilis and Pinus ponderosa in a high-elevation meadow [J].
Fischer, DG ;
Kolb, TE ;
DeWald, LE .
TREE PHYSIOLOGY, 2002, 22 (10) :675-685
[23]   A NEW METHOD OF SAP FLOW MEASUREMENT IN TREE STEMS [J].
GRANIER, A .
ANNALES DES SCIENCES FORESTIERES, 1985, 42 (02) :193-200
[24]   SAP FLOW MEASUREMENTS IN DOUGLAS-FIR TREE TRUNKS BY MEANS OF A NEW THERMAL METHOD [J].
GRANIER, A .
ANNALES DES SCIENCES FORESTIERES, 1987, 44 (01) :1-14
[25]   A multi-species comparison of δ13C from whole wood, extractive-free wood and holocellulose [J].
Harlow, B. A. ;
Marshall, J. D. ;
Robinson, A. P. .
TREE PHYSIOLOGY, 2006, 26 (06) :767-774
[26]   RAPID RECYCLING OF TRIOSE PHOSPHATES IN OAK STEM TISSUE [J].
HILL, SA ;
WATERHOUSE, JS ;
FIELD, EM ;
SWITSUR, VR ;
APREES, T .
PLANT CELL AND ENVIRONMENT, 1995, 18 (08) :931-936
[27]   Stomatal conductance and photosynthesis vary linearly with plant hydraulic conductance in ponderosa pine [J].
Hubbard, RM ;
Ryan, MG ;
Stiller, V ;
Sperry, JS .
PLANT CELL AND ENVIRONMENT, 2001, 24 (01) :113-121
[28]  
Hubbard RM, 1999, TREE PHYSIOL, V19, P165
[29]   Altitude trends in conifer leaf morphology and stable carbon isotope composition [J].
Hultine, KR ;
Marshall, JD .
OECOLOGIA, 2000, 123 (01) :32-40
[30]   Precipitation pulses and carbon fluxes in semiarid and arid ecosystems [J].
Huxman, TE ;
Snyder, KA ;
Tissue, D ;
Leffler, AJ ;
Ogle, K ;
Pockman, WT ;
Sandquist, DR ;
Potts, DL ;
Schwinning, S .
OECOLOGIA, 2004, 141 (02) :254-268