Several theories predict whole-tree function on the basis of allometric scaling relationships assumed to emerge from traits of branching networks. To test this key assumption, and more generally, to explore patterns of external architecture within and across trees, we measure branch traits (radii/lengths) and calculate scaling exponents from five functionally divergent species. Consistent with leading theories, including metabolic scaling theory, branching is area preserving and statistically self-similar within trees. However, differences among scaling exponents calculated at node- and whole-tree levels challenge the assumption of an optimised, symmetrically branching tree. Furthermore, scaling exponents estimated for branch length change ...
Theoretical models of allometric scaling provide frameworks for understanding and predicting how and...
Theoretical models of allometric scaling provide frameworks for understanding and predicting how and...
Vascular plants vary over 12 orders of magnitude in body mass and exhibit complex branching. We prov...
The West, Brown, Enquist (WBE) model derives symmetrically self-similar branching to predict metabol...
Metabolic scaling theory predicts how tree water flow rate (Q) scales with tree mass (M) and assumes...
We evaluated allometric relationships in length, diameter, and mass of branches for two variably man...
As the application of allometry continues to expand, the variability in the allometry exponent has g...
Plant vascular networks are central to botanical form, function, and diversity. Here, we develop a t...
There are two theories about how allocation of metabolic products occurs. The allometric biomass par...
As the application of allometry continues to expand, the variability in the allometry exponent has g...
Theoretical models of allometric scaling provide frameworks for understanding and predicting how and...
The Metabolic Ecology Model predicts that tree diameter (D) growth (dD/dt) scales with D1/3. Using d...
The Metabolic Ecology Model predicts that tree diameter (D) growth (dD/dt) scales with D1/3. Using d...
The Metabolic Ecology Model predicts that tree diameter (D) growth (dD/dt) scales with D1/3. Using d...
Theoretical models of allometric scaling provide frameworks for understanding and predicting how and...
Theoretical models of allometric scaling provide frameworks for understanding and predicting how and...
Theoretical models of allometric scaling provide frameworks for understanding and predicting how and...
Vascular plants vary over 12 orders of magnitude in body mass and exhibit complex branching. We prov...
The West, Brown, Enquist (WBE) model derives symmetrically self-similar branching to predict metabol...
Metabolic scaling theory predicts how tree water flow rate (Q) scales with tree mass (M) and assumes...
We evaluated allometric relationships in length, diameter, and mass of branches for two variably man...
As the application of allometry continues to expand, the variability in the allometry exponent has g...
Plant vascular networks are central to botanical form, function, and diversity. Here, we develop a t...
There are two theories about how allocation of metabolic products occurs. The allometric biomass par...
As the application of allometry continues to expand, the variability in the allometry exponent has g...
Theoretical models of allometric scaling provide frameworks for understanding and predicting how and...
The Metabolic Ecology Model predicts that tree diameter (D) growth (dD/dt) scales with D1/3. Using d...
The Metabolic Ecology Model predicts that tree diameter (D) growth (dD/dt) scales with D1/3. Using d...
The Metabolic Ecology Model predicts that tree diameter (D) growth (dD/dt) scales with D1/3. Using d...
Theoretical models of allometric scaling provide frameworks for understanding and predicting how and...
Theoretical models of allometric scaling provide frameworks for understanding and predicting how and...
Theoretical models of allometric scaling provide frameworks for understanding and predicting how and...
Vascular plants vary over 12 orders of magnitude in body mass and exhibit complex branching. We prov...