Enregistré dans:
Détails bibliographiques
Auteurs principaux: Schoofs, Jozefien, Vandelanotte, Kobe, Van de Vyver, Hans, Van Der Sichel, Line, Vandersteene, Matthias, Serras, Fien, van Lipzig, Nicole P. M., Van Schaeybroeck, Bert
Format: Preprint
Publié: 2025
Sujets:
Accès en ligne:https://arxiv.org/abs/2502.02436
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1866909985171046400
author Schoofs, Jozefien
Vandelanotte, Kobe
Van de Vyver, Hans
Van Der Sichel, Line
Vandersteene, Matthias
Serras, Fien
van Lipzig, Nicole P. M.
Van Schaeybroeck, Bert
author_facet Schoofs, Jozefien
Vandelanotte, Kobe
Van de Vyver, Hans
Van Der Sichel, Line
Vandersteene, Matthias
Serras, Fien
van Lipzig, Nicole P. M.
Van Schaeybroeck, Bert
contents Extreme precipitation is projected to become more frequent and more intense due to climate change and associated thermodynamical effects, but the local response of atmospheric circulation under future climate scenarios remains uncertain due mainly to dynamical differences. In this study, we outline a methodology for a regional assessment of future extreme precipitation based on the Lamb Weather Type classification and to evaluate future changes in weather patterns. While anticyclonic days occur most frequently over Belgium, extreme rainfall is mostly associated with days of cyclonic, westerly and south-westerly weather patterns. GCMs from CMIP6 are first selected based on their reliability in representing local atmospheric circulation patterns during days with extreme rainfall days. It was found that for our case study over Belgium, the future (end-of-the-century SSP3-7.0) changes in intensity and likelihood of rainfall extremes can be primarily attributed to thermodynamic factors, with minimal contribution from changes in atmospheric dynamics. Both intensity and probability of extreme rainfall increase for all seasons. While extreme-rainfall probabilities mostly increase in fall and winter, the associated intensity changes are dominated by positive changes in spring and summer. Additionally, the weather patterns that are historically associated with extreme rainfall, disproportionally contribute to these changes, especially to thermodynamic changes. More specifically, robust changes arise from an increased extreme-rainfall occurrence probability in case of cyclonic, south-westerly and westerly circulation types.
format Preprint
id arxiv_https___arxiv_org_abs_2502_02436
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Dynamic and thermodynamic contributions to future extreme-rainfall intensification: a case study for Belgium
Schoofs, Jozefien
Vandelanotte, Kobe
Van de Vyver, Hans
Van Der Sichel, Line
Vandersteene, Matthias
Serras, Fien
van Lipzig, Nicole P. M.
Van Schaeybroeck, Bert
Atmospheric and Oceanic Physics
Extreme precipitation is projected to become more frequent and more intense due to climate change and associated thermodynamical effects, but the local response of atmospheric circulation under future climate scenarios remains uncertain due mainly to dynamical differences. In this study, we outline a methodology for a regional assessment of future extreme precipitation based on the Lamb Weather Type classification and to evaluate future changes in weather patterns. While anticyclonic days occur most frequently over Belgium, extreme rainfall is mostly associated with days of cyclonic, westerly and south-westerly weather patterns. GCMs from CMIP6 are first selected based on their reliability in representing local atmospheric circulation patterns during days with extreme rainfall days. It was found that for our case study over Belgium, the future (end-of-the-century SSP3-7.0) changes in intensity and likelihood of rainfall extremes can be primarily attributed to thermodynamic factors, with minimal contribution from changes in atmospheric dynamics. Both intensity and probability of extreme rainfall increase for all seasons. While extreme-rainfall probabilities mostly increase in fall and winter, the associated intensity changes are dominated by positive changes in spring and summer. Additionally, the weather patterns that are historically associated with extreme rainfall, disproportionally contribute to these changes, especially to thermodynamic changes. More specifically, robust changes arise from an increased extreme-rainfall occurrence probability in case of cyclonic, south-westerly and westerly circulation types.
title Dynamic and thermodynamic contributions to future extreme-rainfall intensification: a case study for Belgium
topic Atmospheric and Oceanic Physics
url https://arxiv.org/abs/2502.02436