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Scenarios towards limiting global mean temperature increase below 1.5 °C
Nature Climate Change · 2018 · Vol. 8(4) · pp. 325–332
Joeri Rogelj✉(International Institute for Applied Systems Analysis)Alexander Popp(Leibniz Association)Katherine Calvin(Joint Global Change Research Institute)Gunnar Luderer(Leibniz Association)Johannes Emmerling(CMCC Foundation - Euro-Mediterranean Center on Climate Change)David Gernaat(Netherlands Environmental Assessment Agency)Shinichiro Fujimori(International Institute for Applied Systems Analysis)Jessica Strefler(Leibniz Association)Tomoko Hasegawa(International Institute for Applied Systems Analysis)Giacomo Marangoni(CMCC Foundation - Euro-Mediterranean Center on Climate Change)Volker Krey(International Institute for Applied Systems Analysis)Elmar Kriegler(Leibniz Association)Keywan Riahi(International Institute for Applied Systems Analysis)Detlef P. van Vuuren(Netherlands Environmental Assessment Agency)Jonathan Doelman(Netherlands Environmental Assessment Agency)Laurent Drouet(CMCC Foundation - Euro-Mediterranean Center on Climate Change)Jae Edmonds(Joint Global Change Research Institute)Oliver Fricko(International Institute for Applied Systems Analysis)Mathijs Harmsen(Netherlands Environmental Assessment Agency)Peter Havlík(International Institute for Applied Systems Analysis)Florian Humpenöder(Leibniz Association)Elke Stehfest(Netherlands Environmental Assessment Agency)Massimo Tavoni(CMCC Foundation - Euro-Mediterranean Center on Climate Change)
Atmospheric and Environmental Gas DynamicsClimate Change Policy and EconomicsAtmospheric chemistry and aerosolsRadiative forcingRepresentative Concentration PathwaysGlobal temperatureFossil fuelEnvironmental scienceLimitingClimate changeMean radiant temperatureGlobal warmingBaseline (sea)
Funding
- European Commission
- Deutsche Forschungsgemeinschaft
- Ministry of Environment
- International Institute for Applied Systems Analysis
- Japan Society for the Promotion of Science
Citations
1,304
FWCI
74.61
field-weighted impact
References
58
Percentile
100%
vs. same field & year
Citations per year
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References
Energy system transformations for limiting end-of-century warming to below 1.5 °C
Nature Climate Change · 2015 · 869 citations
A new scenario framework for climate change research: the concept of shared socioeconomic pathways
Climatic Change · 2013 · 2,688 citations
A new scenario framework for Climate Change Research: scenario matrix architecture
Climatic Change · 2013 · 798 citations
The representative concentration pathways: an overview
Climatic Change · 2011 · 7,889 citations
Emulating coupled atmosphere-ocean and carbon cycle models with a simpler model, MAGICC6 – Part 1: Model description and calibration
Atmospheric chemistry and physics · 2011 · 877 citations
An Overview of CMIP5 and the Experiment Design
Bulletin of the American Meteorological Society · 2011 · 14,669 citations
The RCP greenhouse gas concentrations and their extensions from 1765 to 2300
Climatic Change · 2011 · 3,728 citations
Biophysical and economic limits to negative CO2 emissions
Nature Climate Change · 2015 · 1,412 citations
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Scenarios towards limiting global mean temperature increase below 1.5 °C
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