NASA Logo

NTRS

NTRS - NASA Technical Reports Server

Press Enter or click the Search button to begin your search.

Back to Results
Intergenerational Inequities in Exposure to Climate Extremes: Young Generations Are Severely Threatened By Climate ChangeUnder continued global warming, extreme events such as heat waves will continue to rise in frequency, intensity, duration, and spatial extent over the next decades. Younger generations are therefore expected to face more such events across their lifetimes compared with older generations. This raises important issues of solidarity and fairness across generations that have fueled a surge of climate protests led by young people in recent years and that underpin issues of intergenerational equity raised in recent climate litigation. However, the standard scientific paradigm is to assess climate change in discrete time windows or at discrete levels of warming, a “period” approach that inhibits quantification of how much more extreme events a particular generation will experience over its lifetime compared with another. By developing a “cohort” perspective to quantify changes in lifetime exposure to climate extremes and compare across generations (see the first figure), we estimate that children born in 2020 will experience a two- to sevenfold increase in extreme events, particularly heat waves, compared with people born in 1960, under current climate policy pledges. Our results highlight a severe threat to the safety of young generations and call for drastic emission reductions to safeguard their future.

Meteorological extremes, hazards, or climate change impacts are mostly studied as they evolve over time under varying emission scenarios and socioeconomic pathways. For example, applying a heat wave indicator (see table S1) to four bias-adjusted global climate models indicates that the land area annually affected by such heat waves will increase from ~15% around 2020 to ~22% by 2100 under a scenario compatible with limiting global warming to 1.5°C, and to ~46% under a scenario in line with current emission reduction pledges (see the first figure). Recent studies extended this approach, studying aspects of climate change as a function of global mean temperature (GMT) increments, highlighting the scenario-independence of several extreme event indicators but remaining, in essence, a comparison of time windows.

By contrast, we performed a birth cohort analysis by combining a collection of multimodel extreme event projections with country-scale life expectancy information, gridded population data, and future global temperature trajectories from the Intergovernmental Panel on Climate Change (IPCC) Special Report on Global Warming of 1.5°C (see supplementary materials). By integrating the exposure of an average person in a country or region to extreme events across their lifetime, we encapsulate spatiotemporal changes in climate hazards, population density, cohort size, and life expectancy (see the first figure).
Document ID
20210022743
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Wim Thiery ORCID
(Vrije Universiteit Brussel Brussels, Belgium)
Stefan Lange ORCID
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
Joeri Rogelj ORCID
(Imperial College London London, Westminster, United Kingdom)
Carl-Friedrich Schleussner ORCID
(Humboldt University of Berlin Berlin, Germany)
Lukas Gudmundsson
(ETH Zurich Zurich, Switzerland)
Sonia I Seneviratne ORCID
(ETH Zurich Zurich, Switzerland)
Marina Andrijevic
(Humboldt University of Berlin Berlin, Germany)
Katja Frieler ORCID
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
Kerry Emanuel
(Massachusetts Institute of Technology Cambridge, Massachusetts, United States)
Tobias Geiger ORCID
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
David N Bresch ORCID
(ETH Zurich Zurich, Switzerland)
Fang Zhao ORCID
(East China Normal University Shanghai, China)
Sven N Willner ORCID
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
Matthias Buechner
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
Jan Volkholz
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
Nico Bauer
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
Jinfeng Chang ORCID
(Zhejiang University Hangzhou, Zhejiang, China)
Philippe Ciais ORCID
(Laboratoire des Sciences du Climat et de l'Environnement Gif-sur-Yvette, France)
Marie Dury
(University of Liège Liège, Belgium)
Louis Francois
(University of Liège Liège, Belgium)
Manolis Grillakis ORCID
(Institute of Studies on Mediterranean Societies Naples, Italy)
Simon N Gosling ORCID
(University of Nottingham Nottingham, Nottingham, United Kingdom)
Naota Hanasaki ORCID
(National Institute for Environmental Studies Tsukuba, Japan)
Thomas Hickler ORCID
(Goethe University Frankfurt Frankfurt am Main, Hessen, Germany)
Veronika Huber ORCID
(Pablo de Olavide University Seville, Andalucía, Spain)
Akihiko Ito ORCID
(National Institute for Environmental Studies Tsukuba, Japan)
Jonas Jaegermeyr
(Columbia University New York, New York, United States)
Nikolay Khabarov ORCID
(International Institute for Applied Systems Analysis Laxenburg, Austria)
Aristeidis Koutroulis ORCID
(Technical University of Crete Chania, Greece)
Wenfeng Liu ORCID
(China Agricultural University Beijing, China)
Wolfgang Lutz
(University of Vienna Vienna, Austria)
Matthias Mengel
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
Christoph Mueller
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
Sebastian Ostberg ORCID
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
Christopher P O Reyer ORCID
(Potsdam Institute for Climate Impact Research Potsdam, Germany)
Tobias Stacke ORCID
(Helmholtz-Zentrum Geesthacht Centre for Materials and Coastal Research Geesthacht, Schleswig-Holstein, Germany)
Yoshihide Wada ORCID
(International Institute for Applied Systems Analysis Laxenburg, Austria)
Date Acquired
October 13, 2021
Publication Date
September 26, 2021
Publication Information
Publication: Science
Publisher: American Association For The Advancement of Science
Volume: 374
Issue: 6564
Issue Publication Date: October 8, 2021
ISSN: 0036-8075
e-ISSN: 1095-9203
Subject Category
Meteorology And Climatology
Funding Number(s)
CONTRACT_GRANT: 80NSSC20M0282
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
global warming
extreme events
climate extremes
generations
lifetime exposure
heat waves
No Preview Available