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Climate Change of 4°C GlobalWarming above Pre-industrial Levels.

Authors :
Wang, Xiaoxin
Jiang, Dabang
Lang, Xianmei
Source :
Advances in Atmospheric Sciences; Jul2018, Vol. 35 Issue 7, p757-770, 14p
Publication Year :
2018

Abstract

Using a set of numerical experiments from 39 CMIP5 climate models, we project the emergence time for 4◦C global warming with respect to pre-industrial levels and associated climate changes under the RCP8.5 greenhouse gas concentration scenario. Results show that, according to the 39 models, the median year in which 4◦C global warming will occur is 2084. Based on the median results of models that project a 4◦C global warming by 2100, land areas will generally exhibit stronger warming than the oceans annually and seasonally, and the strongest enhancement occurs in the Arctic, with the exception of the summer season. Change signals for temperature go outside its natural internal variabilities globally, and the signal-tonoise ratio averages 9.6 for the annual mean and ranges from 6.3 to 7.2 for the seasonal mean over the globe, with the greatest values appearing at low latitudes because of low noise. Decreased precipitation generally occurs in the subtropics, whilst increased precipitation mainly appears at high latitudes. The precipitation changes in most of the high latitudes are greater than the background variability, and the global mean signal-to-noise ratio is 0.5 and ranges from 0.2 to 0.4 for the annual and seasonal means, respectively. Attention should be paid to limiting global warming to 1.5◦C, in which case temperature and precipitation will experience a far more moderate change than the natural internal variability. Large inter-model disagreement appears at high latitudes for temperature changes and at mid and low latitudes for precipitation changes. Overall, the intermodel consistency is better for temperature than for precipitation. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02561530
Volume :
35
Issue :
7
Database :
Complementary Index
Journal :
Advances in Atmospheric Sciences
Publication Type :
Academic Journal
Accession number :
129685033
Full Text :
https://doi.org/10.1007/s00376-018-7160-4