On the Precursor Environments to Mountain Lee Wave Clouds in Central Iberia under CMIP6 Projections

Author:

Díaz-Fernández Javier12ORCID,Calvo-Sancho Carlos2ORCID,Bolgiani Pedro1,González-Alemán Juan Jesús3,Farrán José Ignacio2,Sastre Mariano1ORCID,Martín María Luisa24

Affiliation:

1. Department of Earth Physics and Astrophysics, Faculty of Physics, Complutense University of Madrid, 28040 Madrid, Spain

2. Department of Applied Mathematics, Faculty of Computer Engineering, University of Valladolid, 40005 Segovia, Spain

3. State Meteorological Agency (AEMET), 28040 Madrid, Spain

4. Institute of Interdisciplinary Mathematics (IMI), Complutense University of Madrid, 28040 Madrid, Spain

Abstract

Mountain lee waves present significant hazards to aviation, often inducing turbulence and aircraft icing. The current study focuses on understanding the potential impact of global climate change on the precursor environments to mountain lee wave cloud episodes over central Iberia. We examine the suitability of several Global Climate Models (GCMs) from CMIP6 in predicting these environments using the ERA5 reanalysis as a benchmark for performance. The dataset is divided into two periods: historical data (2001–2014) and projections for the SSP5–8.5 future climate scenario (2015–2100). The variations and trends in precursor environments between historical data and future climate scenarios are exposed, with a particular focus on the expansion of the Azores High towards the Iberian Peninsula, resulting in increased zonal winds throughout the Iberian Peninsula in the future. However, the increase in zonal wind is insufficient to modify the wind pattern, so future mountain lee wave cloud events will not vary significantly. The relative humidity trends reveal no significant changes. Moreover, the risk of icing precursor environments connected with mountain lee wave clouds is expected to decrease in the future, due to rising temperatures. Our results highlight that the EC-EARTH3 GCM reveals the closest alignment with ERA5 data, and statistically significant differences between the historical and future climate scenario periods are presented, making EC-EARTH3 a robust candidate for conducting future studies on the precursor environments to mountain lee wave cloud events.

Funder

Ministerio de Ciencia e Innovación of Spain

Publisher

MDPI AG

Reference43 articles.

1. Buck, R. (2000). Aircraft Icing Handbook, Safety Education and Publishing Unit.

2. Analysis and numerical simulation of an aircraft icing episode near Adolfo Suárez Madrid-Barajas International Airport;Bolgiani;Atmos. Res.,2018

3. European Union Aviation Safety Agency (2022). Annual Safety Review, European Union Aviation Safety Agency (EASA).

4. Wallace, J.M., and Hobbs, P.V. (2006). Atmospheric Science: An Introductory Survey, Elsevier.

5. Freezing drizzle formation in stably stratified layer clouds. Part II: The role of giant nuclei and aerosol particle size distribution and solubility;Geresdi;J. Atmos. Sci.,2005

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