Logo Lanfrica
  • Home
  • Atlas
  • Insights
  • Docs
  • Sign in

© 2026 Lanfrica. All rights reserved. All copyrights of the resources shown on the Lanfrica website belong to the original copyright holders, unless explicitly stated otherwise.

Tracking mesoscale convective systems in central equatorial Africa

Domain:

climate
Creator:
Ada
Publisher:
WILEY
Host:
Abstract The Congo basin in central equatorial Africa is home to some of the most intense convection in the global tropics. Mesoscale convective systems (MCSs) provide much of the annual rainfall over this region during the March–April–May (MAM) and September–October–November (SON) rainy seasons. Features of these systems are essential to rainfall variability in this region and greatly impact human health, agriculture, livestock, and drought monitoring. Knowledge of variability is hindered by the lack of in‐situ observations and meteorological stations. The present study identifies and tracks MCSs for the 33‐year period 1983–2015 for MAM and SON. MCS and environmental parameters are calculated for the rainy seasons using satellite and reanalysis data. Spatial distributions of MCS parameters and diurnal cycles for select MCS parameters are compared to prior research. Statistical significance testing is performed to determine if there are meaningful differences between the seasons. Seasonal differences are briefly discussed. 650 hPa relative vorticity patterns suggest localized terrain effects may play a role near a local maximum in MCS initiation frequency in the lee of the Great Rift Valley. Spatial distributions of 33‐year MCS counts, trajectories, speeds, sizes, maximum intensities, and durations, based on initiation locations, agree well with prior research. Differences between seasons are statistically significant and variable and latitude dependent. There is high interannual variability among all MCS and environmental parameters.

Visit

doi.org

Licenses

http://creativecommons.org/licenses/by/4.0/http://creativecommons.org/licenses/by/4.0/

Similar

Effects of vertical wind shear on intensities of mesoscale convective systems over West and Central AfricaTAMS: A Tracking, Classifying, and Variable-Assigning Algorithm for Mesoscale Convective Systems in Simulated and Satellite-Derived DatasetsUsing land surface information to improve nowcasts of mesoscale convective systems in West AfricaObserved Effects of Vertical wind shear on the intensities of Mesoscale Convective Systems in West Africa.Mesoscale Convective Systems: A Case Scenario of the ‘Heavy Rainfall’ Event of 15–20 January 2013 over Southern AfricaA nudging scheme to assimilate satellite brightness temperature in a meteorological model: Impact on representation of African mesoscale convective systems

Effects of vertical wind shear on intensities of mesoscale convective systems over West and Central Africa

Abstract Vertical wind shear is known to play a key role in the organization and intensity of mesos

TAMS: A Tracking, Classifying, and Variable-Assigning Algorithm for Mesoscale Convective Systems in Simulated and Satellite-Derived Datasets

Abstract. The Tracking Algorithm for Mesoscale Convective Systems (TAMS) is a tracking, classifying,

Using land surface information to improve nowcasts of mesoscale convective systems in West Africa

<p>Mesoscale convective systems (MCSs) dominate rainfall and its extremes in most part

Observed Effects of Vertical wind shear on the intensities of Mesoscale Convective Systems in West Africa.

<p>Vertical wind shear plays a key role in the organisation and intensification of Mes

Mesoscale Convective Systems: A Case Scenario of the ‘Heavy Rainfall’ Event of 15–20 January 2013 over Southern Africa

Southern east Africa is prone to some extreme weather events and interannual variability of the hydr

A nudging scheme to assimilate satellite brightness temperature in a meteorological model: Impact on representation of African mesoscale convective systems

Abstract The study presents the implementation of a nudging procedure in a mesoscale meteorological