Skip to main content
Have a personal or library account? Click to login
The Climatic Role of Interactive Leaf Phenology in the Vegetation- Atmosphere System of Radiative-Convective Equilibrium Storm-Resolving Simulations Cover

The Climatic Role of Interactive Leaf Phenology in the Vegetation- Atmosphere System of Radiative-Convective Equilibrium Storm-Resolving Simulations

Open Access
|Jun 2022

Abstract

Storm-resolving simulations where deep convection can be explicitly resolved are performed in the idealized radiative-convective equilibrium framework to explore the climatic role of interactive leaf phenology. By initializing the system with different initial soil moisture and leaf area index (LAI) conditions, we find three categories of potential equilibrium climatic and vegetation states: a hot desert planet without vegetation, an intermediate sparsely vegetated planet, and a wet fully vegetated planet. The wet fully vegetated equilibrium category occurs over the widest range of initial soil moisture as it occurs as soon as soil saturation is 19% higher than the permanent wilting point (35%). This indicates that a quite harsh environment is needed in our modeling system to force leaves to be shed. The attained equilibrium states are only dependent upon the initial soil moisture, not the initial LAI. However, interactive leaves do allow an earlier transition from the intermediate to the wet vegetated equilibrium category. Hence, interactive leaves make the vegetation-atmosphere system more stable and more resilient to drying. This effect could be well approximated by just prescribing the LAI to its maximum value. Finally, our sensitivity experiments reveal that leaves influence the climate equally through their controls on canopy conductance and vegetation cover, whereas albedo changes play a negligible role.

DOI: https://doi.org/10.16993/tellusb.26 | Journal eISSN: 1600-0889
Language: English
Page range: 164 - 175
Submitted on: Jan 26, 2022
Accepted on: May 2, 2022
Published on: Jun 21, 2022
Published by: Stockholm University Press
In partnership with: Paradigm Publishing Services

© 2022 Junhong Lee, Cathy Hohenegger, Andreas Chlond, Reiner Schnur, published by Stockholm University Press
This work is licensed under the Creative Commons Attribution 4.0 License.