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Multimodel projections of stratospheric ozone in the 21st century
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scholarly article
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title
Multimodel projections of stratospheric ozone in the 21st century
(English)
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main subject
stratosphere
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based on heuristic
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author
Eva Mancini
object named as
E. Mancini
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21
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Veronika Eyring
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V. Eyring
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1
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Eugene Rozanov
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E. Rozanov
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31
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Martyn P. Chipperfield
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12
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M. P. Chipperfield
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Martin Dameris
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M. Dameris
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13
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Steven Pawson
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28
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S. Pawson
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Giovanni Pitari
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29
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G. Pitari
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Andrew Gettelman
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18
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A. Gettelman
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author name string
D. W. Waugh
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2
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G. E. Bodeker
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3
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E. Cordero
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4
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H. Akiyoshi
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5
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J. Austin
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6
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S. R. Beagley
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7
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B. A. Boville
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8
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P. Braesicke
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9
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C. Brühl
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10
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N. Butchart
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11
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R. Deckert
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14
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M. Deushi
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15
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S. M. Frith
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16
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R. R. Garcia
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M. A. Giorgetta
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D. E. Kinnison
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20
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E. Manzini
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D. R. Marsh
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23
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S. Matthes
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24
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T. Nagashima
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P. A. Newman
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26
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J. E. Nielsen
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27
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D. A. Plummer
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30
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M. Schraner
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32
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J. F. Scinocca
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33
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K. Semeniuk
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34
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T. G. Shepherd
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35
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K. Shibata
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36
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B. Steil
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37
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R. S. Stolarski
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W. Tian
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39
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M. Yoshiki
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40
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language of work or name
English
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publication date
21 August 2007
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published in
Journal of Geophysical Research
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volume
112
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issue
D16
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cites work
Uncertainties and assessments of chemistry-climate models of the stratosphere
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Removal of chlorofluorocarbons by increased mass exchange between the stratosphere and troposphere in a changing climate
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A New Look at Stratospheric Sudden Warmings. Part I: Climatology and Modeling Benchmarks
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Comment on: Stratospheric Ozone Depletion at northern mid-latitudes in the 21st century: The importance of future concentrations of greenhouse gases nitrous oxide and methane
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Arctic ozone loss and climate sensitivity: Updated three-dimensional model study
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Long-term changes and variability in a transient simulation with a chemistry-climate model employing realistic forcing
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Chemistry-climate model SOCOL: a validation of the present-day climatology
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A Strategy for Process-Oriented Validation of Coupled Chemistry–Climate Models
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Assessment of temperature, trace species, and ozone in chemistry-climate model simulations of the recent past
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Toward a better quantitative understanding of polar stratospheric ozone loss
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Temporal decrease in upper atmospheric chlorine
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Simulation of secular trends in the middle atmosphere, 1950–2003
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An improved measure of ozone depletion in the Antarctic stratosphere
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The New Hadley Centre Climate Model (HadGEM1): Evaluation of Coupled Simulations
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The effect of climate change on ozone depletion through changes in stratospheric water vapour
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Effects of atmospheric sphericity on stratospheric chemistry and dynamics over Antarctica
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Evolution of the Sun's Spectral Irradiance Since the Maunder Minimum
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Chemical ozone loss in a chemistry-climate model from 1960 to 1999
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When will the Antarctic ozone hole recover?
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Global analyses of sea surface temperature, sea ice, and night marine air temperature since the late nineteenth century
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Arctic ozone loss and climate change
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Assessment of the ozone and temperature variability during 1979–1993 with the chemistry-climate model SOCOL
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Anthropogenic and natural forcing impacts on ENSO-like decadal variability during the second half of the 20th century
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A Simulation of the Separate Climate Effects of Middle-Atmospheric and Tropospheric CO2Doubling
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A new interactive chemistry-climate model: 1. Present-day climatology and interannual variability of the middle atmosphere using the model and 9 years of HALOE/UARS data
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Trends in Stratospheric Ozone: Lessons Learned from a 3D Chemical Transport Model
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Quantifying denitrification and its effect on ozone recovery
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A new coupled chemistry–climate model for the stratosphere: The importance of coupling for future O 3 -climate predictions
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1 reference
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Crossref
reference URL
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retrieved
7 January 2021
based on heuristic
inferred from DOI database lookup
Identifiers
DOI
10.1029/2006JD008332
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ADS bibcode
2007JGRD..11216303E
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