Cargando…
Effects of the tropospheric large‐scale circulation on European winter temperatures during the period of amplified Arctic warming
We investigate factors influencing European winter (DJFM) air temperatures for the period 1979–2015 with the focus on changes during the recent period of rapid Arctic warming (1998–2015). We employ meteorological reanalyses analysed with a combination of correlation analysis, two pattern clustering...
Autores principales: | , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
John Wiley & Sons, Ltd
2019
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6988488/ https://www.ncbi.nlm.nih.gov/pubmed/32025090 http://dx.doi.org/10.1002/joc.6225 |
_version_ | 1783492273471750144 |
---|---|
author | Vihma, Timo Graversen, Rune Chen, Linling Handorf, Dörthe Skific, Natasa Francis, Jennifer A. Tyrrell, Nicholas Hall, Richard Hanna, Edward Uotila, Petteri Dethloff, Klaus Karpechko, Alexey Y. Björnsson, Halldor Overland, James E. |
author_facet | Vihma, Timo Graversen, Rune Chen, Linling Handorf, Dörthe Skific, Natasa Francis, Jennifer A. Tyrrell, Nicholas Hall, Richard Hanna, Edward Uotila, Petteri Dethloff, Klaus Karpechko, Alexey Y. Björnsson, Halldor Overland, James E. |
author_sort | Vihma, Timo |
collection | PubMed |
description | We investigate factors influencing European winter (DJFM) air temperatures for the period 1979–2015 with the focus on changes during the recent period of rapid Arctic warming (1998–2015). We employ meteorological reanalyses analysed with a combination of correlation analysis, two pattern clustering techniques, and back‐trajectory airmass identification. In all five selected European regions, severe cold winter events lasting at least 4 days are significantly correlated with warm Arctic episodes. Relationships during opposite conditions of warm Europe/cold Arctic are also significant. Correlations have become consistently stronger since 1998. Large‐scale pattern analysis reveals that cold spells are associated with the negative phase of the North Atlantic Oscillation (NAO‐) and the positive phase of the Scandinavian (SCA+) pattern, which in turn are correlated with the divergence of dry‐static energy transport. Warm European extremes are associated with opposite phases of these patterns and the convergence of latent heat transport. Airmass trajectory analysis is consistent with these findings, as airmasses associated with extreme cold events typically originate over continents, while warm events tend to occur with prevailing maritime airmasses. Despite Arctic‐wide warming, significant cooling has occurred in northeastern Europe owing to a decrease in adiabatic subsidence heating in airmasses arriving from the southeast, along with increased occurrence of circulation patterns favouring low temperature advection. These dynamic effects dominated over the increased mean temperature of most circulation patterns. Lagged correlation analysis reveals that SCA‐ and NAO+ are typically preceded by cold Arctic anomalies during the previous 2–3 months, which may aid seasonal forecasting. |
format | Online Article Text |
id | pubmed-6988488 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | John Wiley & Sons, Ltd |
record_format | MEDLINE/PubMed |
spelling | pubmed-69884882020-02-03 Effects of the tropospheric large‐scale circulation on European winter temperatures during the period of amplified Arctic warming Vihma, Timo Graversen, Rune Chen, Linling Handorf, Dörthe Skific, Natasa Francis, Jennifer A. Tyrrell, Nicholas Hall, Richard Hanna, Edward Uotila, Petteri Dethloff, Klaus Karpechko, Alexey Y. Björnsson, Halldor Overland, James E. Int J Climatol Research Articles We investigate factors influencing European winter (DJFM) air temperatures for the period 1979–2015 with the focus on changes during the recent period of rapid Arctic warming (1998–2015). We employ meteorological reanalyses analysed with a combination of correlation analysis, two pattern clustering techniques, and back‐trajectory airmass identification. In all five selected European regions, severe cold winter events lasting at least 4 days are significantly correlated with warm Arctic episodes. Relationships during opposite conditions of warm Europe/cold Arctic are also significant. Correlations have become consistently stronger since 1998. Large‐scale pattern analysis reveals that cold spells are associated with the negative phase of the North Atlantic Oscillation (NAO‐) and the positive phase of the Scandinavian (SCA+) pattern, which in turn are correlated with the divergence of dry‐static energy transport. Warm European extremes are associated with opposite phases of these patterns and the convergence of latent heat transport. Airmass trajectory analysis is consistent with these findings, as airmasses associated with extreme cold events typically originate over continents, while warm events tend to occur with prevailing maritime airmasses. Despite Arctic‐wide warming, significant cooling has occurred in northeastern Europe owing to a decrease in adiabatic subsidence heating in airmasses arriving from the southeast, along with increased occurrence of circulation patterns favouring low temperature advection. These dynamic effects dominated over the increased mean temperature of most circulation patterns. Lagged correlation analysis reveals that SCA‐ and NAO+ are typically preceded by cold Arctic anomalies during the previous 2–3 months, which may aid seasonal forecasting. John Wiley & Sons, Ltd 2019-08-11 2020-01 /pmc/articles/PMC6988488/ /pubmed/32025090 http://dx.doi.org/10.1002/joc.6225 Text en © 2019 The Authors. International Journal of Climatology published by John Wiley & Sons Ltd on behalf of the Royal Meteorological Society. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes. |
spellingShingle | Research Articles Vihma, Timo Graversen, Rune Chen, Linling Handorf, Dörthe Skific, Natasa Francis, Jennifer A. Tyrrell, Nicholas Hall, Richard Hanna, Edward Uotila, Petteri Dethloff, Klaus Karpechko, Alexey Y. Björnsson, Halldor Overland, James E. Effects of the tropospheric large‐scale circulation on European winter temperatures during the period of amplified Arctic warming |
title | Effects of the tropospheric large‐scale circulation on European winter temperatures during the period of amplified Arctic warming |
title_full | Effects of the tropospheric large‐scale circulation on European winter temperatures during the period of amplified Arctic warming |
title_fullStr | Effects of the tropospheric large‐scale circulation on European winter temperatures during the period of amplified Arctic warming |
title_full_unstemmed | Effects of the tropospheric large‐scale circulation on European winter temperatures during the period of amplified Arctic warming |
title_short | Effects of the tropospheric large‐scale circulation on European winter temperatures during the period of amplified Arctic warming |
title_sort | effects of the tropospheric large‐scale circulation on european winter temperatures during the period of amplified arctic warming |
topic | Research Articles |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6988488/ https://www.ncbi.nlm.nih.gov/pubmed/32025090 http://dx.doi.org/10.1002/joc.6225 |
work_keys_str_mv | AT vihmatimo effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT graversenrune effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT chenlinling effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT handorfdorthe effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT skificnatasa effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT francisjennifera effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT tyrrellnicholas effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT hallrichard effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT hannaedward effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT uotilapetteri effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT dethloffklaus effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT karpechkoalexeyy effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT bjornssonhalldor effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming AT overlandjamese effectsofthetroposphericlargescalecirculationoneuropeanwintertemperaturesduringtheperiodofamplifiedarcticwarming |