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The physical drivers of historical and 21st century global precipitation changes

Datos Bibliográficos

ID15545274
AutoresLivia Thorpe (Met Office, autor de correspondencia), Timothy Andrews (0000-0002-8248-8753, Met Office)
Año2014
Volumen9
Número6
Páginas064024-064024
Fecha de publicación2014-05-01
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaEnvironmental Research Letters (JOURNAL)
Identificadores de la revistaISSN: 1748-9326 • E-ISSN: 1748-9326
EditorialIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/9/6/064024
OpenAlexW2077975734
IdiomaEN
Citas recibidas2
Referencias citadas27

Historical and 21st century global precipitation changes are investigated using data from the fifth Coupled Model Intercomparison Project (CMIP5) Atmosphere-Ocean-General-Circulation-Models (AOGCMs) and a simple energy-balance model. In the simple model, precipitation change in response to a given top-of-atmosphere radiative forcing is calculated as the sum of a response to the surface warming and a direct ‘adjustment’ response to the atmospheric radiative forcing. This simple model allows the adjustment in global mean precipitation to atmospheric radiative forcing from different forcing agents to be examined separately and emulates the AOGCMs well. During the historical period the AOGCMs simulate little global precipitation change despite an increase in global temperature—at the end of the historical period, global multi-model mean precipitation has increased by about 0.03 mm day ^−1 , while the global multi-model mean surface temperature has warmed by about 1 K, both relative to the pre-industrial control means. This is because there is a large direct effect from CO _2 and black carbon atmospheric forcing that opposes the increase in precipitation from surface warming. In the 21st century scenarios, the opposing effect from black carbon declines and the increase in global precipitation due to surface warming dominates. The cause of the spread between models in the global precipitation projections (which can be up to 0.25 mm day ^−1 ) is examined and found to come mainly from uncertainty in the climate sensitivity. The spatial distribution of precipitation change is found to be dominated by the response to surface warming. It is concluded that AOGCM global precipitation projections are in line with expectations based on our understanding of how the energy and water cycles are physically linked

Atmospheric sciences · Climate change · Climate model · Climate sensitivity · Climatology · Coupled model intercomparison project · Forcing (mathematics · Geography · Global change · Global warming · Meteorology · Precipitation · Radiative forcing · Atmospheric and Environmental Gas Dynamics · Climate variability and models · Environmental Science · Meteorological Phenomena and Simulations · Geology

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    Open Access•A J Ferraro, Hannah Griffiths et al.•Environmental Research Letters•2016

  • Do responses to different anthropogenic forcings add linearly in climate models

    Open Access•Kate Marvel, Gavin A Schmidt et al.•Environmental Research Letters•2015

  • The RCP greenhouse gas concentrations and their extensions from 1765 to 2300

    Open Access•Malte Meinshausen, Steven J Smith et al.•Climatic Change•2011

  • Constraints on future changes in climate and the hydrologic cycle

    Open Access•Myles R Allen, William Ingram et al.•Nature•2002

  • The observed sensitivity of the global hydrological cycle to changes in surface temperature

    Open Access•Phillip A Arkin, Thomas M Smith et al.•Environmental Research Letters•2010

  • Radiative feedbacks on global precipitation

    Open Access•Michael Previdi•Environmental Research Letters•2010

Obras citantes distintas2
Citas por año0,18
Intervalo de citas2015 - 2016 (2)
Velocidad de citaciónhistorical
Altamente citadoNo
Tipos de citaNeutras: 2
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