Logo Lanfrica
  • Accueil
  • Atlas
  • Analyses
  • Documentation
  • Sign in

© 2026 Lanfrica. Tous droits réservés. Tous les droits d'auteur des ressources affichées sur le site Web Lanfrica appartiennent aux détenteurs de droits d'auteur d'origine, sauf indication contraire explicite.

On the Connection between Continental-Scale Land Surface Processes and the Tropical Climate in a Coupled Ocean–Atmosphere–Land System

Domaine:

climate

Type de record:

paper
Créateur:
HsiC. YonHen
Éditeur:
Ame
Hôte:
Abstract An evaluation is presented of the impact on tropical climate of continental-scale perturbations given by different representations of land surface processes (LSPs) in a general circulation model that includes atmosphere–ocean interactions. One representation is a simple land scheme, which specifies climatological albedos and soil moisture availability. The other representation is the more comprehensive Simplified Simple Biosphere Model, which allows for interactive soil moisture and vegetation biophysical processes. The results demonstrate that such perturbations have strong impacts on the seasonal mean states and seasonal cycles of global precipitation, clouds, and surface air temperature. The impact is especially significant over the tropical Pacific Ocean. To explore the mechanisms for such impact, model experiments are performed with different LSP representations confined to selected continental-scale regions where strong interactions of climate–vegetation biophysical processes are present. The largest impact found over the tropical Pacific is mainly from perturbations in the tropical African continent where convective heating anomalies associated with perturbed surface heat fluxes trigger global teleconnections through equatorial wave dynamics. In the equatorial Pacific, the remote impacts of the convection anomalies are further enhanced by strong air–sea coupling between surface wind stress and upwelling, as well as by the effects of ocean memory. LSP perturbations over South America and Asia–Australia have much weaker global impacts. The results further suggest that correct representations of LSP, land use change, and associated changes in the deep convection over tropical Africa are crucial to reducing the uncertainty of future climate projections with global climate models under various climate change scenarios.

Visit

doi.org

Similaires

Dynamical Seasonal Climate Prediction Using an Ocean–Atmosphere Coupled Climate Model Developed in Partnership between South Africa and the IRICoupled Land–Atmosphere Intraseasonal Variability of the West African Monsoon in a GCMImpact of different convective cloud schemes on the simulation of the tropical seasonal cycle in a coupled ocean-atmosphere model.Impact of Land–Atmosphere Interactions on Sahel ClimateCoupled Climate and Land-use Controls on Hydrology in a Small Tropical Watershed Evidence from the Mulunguzi River Basin in MalawiRainfall variability over Zimbabwe and its relation to large‐scale atmosphere–ocean processes

Dynamical Seasonal Climate Prediction Using an Ocean–Atmosphere Coupled Climate Model Developed in Partnership between South Africa and the IRI

Abstract The recent increase in availability of high-performance computing (HPC) re

Coupled Land–Atmosphere Intraseasonal Variability of the West African Monsoon in a GCM

Abstract Recent observational studies have suggested a role for soil moisture and l

Impact of different convective cloud schemes on the simulation of the tropical seasonal cycle in a coupled ocean-atmosphere model.

International audience The simulation of the mean seasonal cycle of sea surface tempe

Impact of Land–Atmosphere Interactions on Sahel Climate

Abstract The Sahel of Africa has been identified as having the strongest land–at

Coupled Climate and Land-use Controls on Hydrology in a Small Tropical Watershed Evidence from the Mulunguzi River Basin in Malawi

Hydrological processes in tropical watersheds are increasingly influenced by land use/land cover (LU

Rainfall variability over Zimbabwe and its relation to large‐scale atmosphere–ocean processes

ABSTRACT The relationship between interannual variability of Zimbabwe rainfall and atmosphere–ocean