TY - JOUR
T1 - Above-ground forest biomass is not consistently related to wood density in tropical forests
AU - Stegen, James C.
AU - Swenson, Nathan G.
AU - Valencia, Renato
AU - Enquist, Brian J.
AU - Thompson, Jill
PY - 2009
Y1 - 2009
N2 - Aim: It is increasingly accepted that the mean wood density of trees within a forest is tightly coupled to above-ground forest biomass. It is unknown, however, if a positive relationship between forest biomass and mean community wood density is a general phenomenon across forests. Understanding spatial variation in biomass as a function of wood density both within and among forests is important for predicting changes in stored carbon in response to global change, and here we evaluated the generality of a positive biomass-wood density relationship within and among six tropical forests. Location: Costa Rica, Panama, Puerto Rico and Ecuador. Methods: Individual stem data, including diameter at breast height and spatial position, for six forest dynamics plots were merged with an extensive wood density database. Individual stem biomass values were calculated from these data using published statistical models. Total above ground biomass, total basal area and mean community wood density were also quantified across a range of subcommunity plot sizes within each forest. Results: Among forests, biomass did not vary with mean community wood density. The relationship between subcommunity biomass and mean wood density within a forest varied from negative to null to positive depending on the size of subcommunities and forest identity. The direction of correlation was determined by the associated total basal area-mean wood density correlation, the slope of which increased strongly with whole forest mean wood density. Main conclusions: There is no general relationship between forest biomass and wood density, and in some forests, stored carbon is highest where wood density is lowest. Our results suggest that declining wood density, due to global change, will result in decreased or increased stored carbon in forests with high or low mean wood density, respectively.
AB - Aim: It is increasingly accepted that the mean wood density of trees within a forest is tightly coupled to above-ground forest biomass. It is unknown, however, if a positive relationship between forest biomass and mean community wood density is a general phenomenon across forests. Understanding spatial variation in biomass as a function of wood density both within and among forests is important for predicting changes in stored carbon in response to global change, and here we evaluated the generality of a positive biomass-wood density relationship within and among six tropical forests. Location: Costa Rica, Panama, Puerto Rico and Ecuador. Methods: Individual stem data, including diameter at breast height and spatial position, for six forest dynamics plots were merged with an extensive wood density database. Individual stem biomass values were calculated from these data using published statistical models. Total above ground biomass, total basal area and mean community wood density were also quantified across a range of subcommunity plot sizes within each forest. Results: Among forests, biomass did not vary with mean community wood density. The relationship between subcommunity biomass and mean wood density within a forest varied from negative to null to positive depending on the size of subcommunities and forest identity. The direction of correlation was determined by the associated total basal area-mean wood density correlation, the slope of which increased strongly with whole forest mean wood density. Main conclusions: There is no general relationship between forest biomass and wood density, and in some forests, stored carbon is highest where wood density is lowest. Our results suggest that declining wood density, due to global change, will result in decreased or increased stored carbon in forests with high or low mean wood density, respectively.
KW - Atmosphere-biosphere feedbacks
KW - Carbon cycle
KW - Carbon storage
KW - Forest dynamics plot
KW - Fragmentation
KW - Functional traits
KW - Global change
KW - Lianas
KW - Nitrogen deposition
KW - Tropical forests
UR - https://www.scopus.com/pages/publications/68549092777
U2 - 10.1111/j.1466-8238.2009.00471.x
DO - 10.1111/j.1466-8238.2009.00471.x
M3 - Article
AN - SCOPUS:68549092777
SN - 1466-822X
VL - 18
SP - 617
EP - 625
JO - Global Ecology and Biogeography
JF - Global Ecology and Biogeography
IS - 5
ER -