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Dynamical response of Mediterranean precipitation to greenhouse gases and aerosols

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Title: Dynamical response of Mediterranean precipitation to greenhouse gases and aerosols
Authors: Tang, T
Shindell, D
Samset, BH
Boucher, O
Forster, PM
Hodnebrog, O
Myhre, G
Sillmann, J
Voulgarakis, A
Andrews, T
Faluvegi, G
Flaschner, D
Iversen, T
Kasoar, M
Kharin, V
Kirkevag, A
Lamarque, J-F
Olivie, D
Richardson, T
Stjern, CW
Takemura, T
Item Type: Journal Article
Abstract: Atmospheric aerosols and greenhouse gases affect cloud properties, radiative balance and, thus, the hydrological cycle. Observations show that precipitation has decreased in the Mediterranean since the beginning of the 20th century, and many studies have investigated possible mechanisms. So far, however, the effects of aerosol forcing on Mediterranean precipitation remain largely unknown. Here we compare the modeled dynamical response of Mediterranean precipitation to individual forcing agents in a set of global climate models (GCMs). Our analyses show that both greenhouse gases and aerosols can cause drying in the Mediterranean and that precipitation is more sensitive to black carbon (BC) forcing than to well-mixed greenhouse gases (WMGHGs) or sulfate aerosol. In addition to local heating, BC appears to reduce precipitation by causing an enhanced positive sea level pressure (SLP) pattern similar to the North Atlantic Oscillation–Arctic Oscillation, characterized by higher SLP at midlatitudes and lower SLP at high latitudes. WMGHGs cause a similar SLP change, and both are associated with a northward diversion of the jet stream and storm tracks, reducing precipitation in the Mediterranean while increasing precipitation in northern Europe. Though the applied forcings were much larger, if forcings are scaled to those of the historical period of 1901–2010, roughly one-third (31±17%) of the precipitation decrease would be attributable to global BC forcing with the remainder largely attributable to WMGHGs, whereas global scattering sulfate aerosols would have negligible impacts. Aerosol–cloud interactions appear to have minimal impacts on Mediterranean precipitation in these models, at least in part because many simulations did not fully include such processes; these merit further study. The findings from this study suggest that future BC and WMGHG emissions may significantly affect regional water resources, agricultural practices, ecosystems and the economy in the Mediterranean region.
Issue Date: 15-Jun-2018
Date of Acceptance: 5-Jun-2018
URI: http://hdl.handle.net/10044/1/62918
DOI: https://dx.doi.org/10.5194/acp-18-8439-2018
ISSN: 1680-7316
Publisher: COPERNICUS GESELLSCHAFT MBH
Start Page: 8439
End Page: 8452
Journal / Book Title: ATMOSPHERIC CHEMISTRY AND PHYSICS
Volume: 18
Issue: 11
Copyright Statement: © 2018 Author(s). This work is distributed under the Creative Commons Attribution 4.0 License (https://creativecommons.org/licenses/by/4.0/).
Keywords: Science & Technology
Physical Sciences
Meteorology & Atmospheric Sciences
EARTH SYSTEM MODEL
BLACK CARBON AEROSOLS
CLIMATE RESPONSE
HYDROLOGICAL CYCLE
VARIABILITY
SIMULATION
TRENDS
FUTURE
CMIP5
PROJECTIONS
0401 Atmospheric Sciences
0201 Astronomical And Space Sciences
Publication Status: Published
Open Access location: https://www.atmos-chem-phys.net/18/8439/2018/acp-18-8439-2018.pdf
Online Publication Date: 2018-06-15
Appears in Collections:Space and Atmospheric Physics
Physics
Centre for Environmental Policy