Variability in radial sap flux density patterns and sapwood area among seven co-occurring temperate broad-leaved tree species

被引:155
作者
Gebauer, Tobias [1 ]
Horna, Viviana [1 ]
Leuschner, Christoph [1 ]
机构
[1] Univ Gottingen, Albrecht von Haller Inst Plant Sci, D-37073 Gottingen, Germany
关键词
annual growth rings; diffuse-porous; dyes; Fagus sylvatica; Fraxinus excelsior; Granier method; ring-porous; sap flow; Tilia; Weibull function;
D O I
10.1093/treephys/28.12.1821
中图分类号
S7 [林业];
学科分类号
0829 ; 0907 ;
摘要
Forest transpiration estimates are frequently based on xylem sap flux measurements in the outer sections of the hydro-active stem sapwood. We used Granier's constant-heating technique with heating probes at various xylem depths to analyze radial patterns of sap flux density in the sapwood of seven broad-leaved tree species differing in wood density and xylem structure. Study aims were to (1) compare radial sap flux density profiles between diffuse- and ring-porous trees and (2) analyze the relationship between hydro-active sapwood area and stem diameter. In all investigated species except the diffuse-porous beech (Fagus sylvatica L.) and ring-porous ash (Fraxinus excelsior L.), sap flux density peaked at a depth of I to 4 cm beneath the cambium, revealing a hump-shaped curve with species-specific slopes. Beech and ash reached maximum sap flux densities immediately beneath the cambium in the Youngest annual growth rings. Experiments with dyes showed that the hydro-active sapwood occupied 70 to 90% of the stein cross-sectional area in mature trees of diffuse-porous species, whereas it Occupied only about 21% in ring-porous ash. Dendrochronological analyses indicated that vessels in the older sapwood may remain functional for 100 years or more in diffuse-porous species and for up to 27 years in ring-porous ash. We conclude that radial sap flux density patterns are largely dependent on tree species, which may introduce serious bias in sap-flux-derived forest transpiration estimates, if non-specific sap flux profiles are assumed.
引用
收藏
页码:1821 / 1830
页数:10
相关论文
共 64 条
[1]   Temperature effects on xylem sap osmolarity in walnut trees:: evidence for a vitalistic model of winter embolism repair [J].
Améglio, T ;
Decourteix, M ;
Alves, G ;
Valentin, V ;
Sakr, S ;
Julien, JL ;
Petel, G ;
Guilliot, A ;
Lacointe, A .
TREE PHYSIOLOGY, 2004, 24 (07) :785-793
[2]   Regulation of water flux through trunks, branches, and leaves in trees of a lowland tropical forest [J].
Andrade, JL ;
Meinzer, FC ;
Goldstein, G ;
Holbrook, NM ;
Cavelier, J ;
Jackson, P ;
Silvera, K .
OECOLOGIA, 1998, 115 (04) :463-471
[3]  
[Anonymous], ENCY PLANT ANATOMY
[4]  
[Anonymous], 1991, TECHNIQUES APPROACHE
[5]   Eight-year responses of light interception, effective leaf area index, and stemwood production in fertilized stands of interior Douglas-fir (Pseudotsuga menziesii var. glauca) [J].
Balster, NJ ;
Marshall, JD .
CANADIAN JOURNAL OF FOREST RESEARCH-REVUE CANADIENNE DE RECHERCHE FORESTIERE, 2000, 30 (05) :733-743
[6]  
Becker P, 1996, TREE PHYSIOL, V16, P295
[7]   Sapwood as the scaling parameter defining according to xylem water content or radial pattern of sap flow? [J].
Cermak, J ;
Nadezhdina, N .
ANNALES DES SCIENCES FORESTIERES, 1998, 55 (05) :509-521
[8]   RADIAL-VELOCITY PROFILES OF WATER-FLOW IN TRUNKS OF NORWAY SPRUCE AND OAK AND THE RESPONSE OF SPRUCE TO SEVERING [J].
CERMAK, J ;
CIENCIALA, E ;
KUCERA, J ;
HALLGREN, JE .
TREE PHYSIOLOGY, 1992, 10 (04) :367-380
[9]   Sap flow measurements with some thermodynamic methods, flow integration within trees and scaling up from sample trees to entire forest stands [J].
Cermák, J ;
Kucera, J ;
Nadezhdina, N .
TREES-STRUCTURE AND FUNCTION, 2004, 18 (05) :529-546
[10]  
Clearwater MJ, 1999, TREE PHYSIOL, V19, P681