Abstract
Urban heat islands (UHIs) exacerbate the risk of heat-related mortality associated with global climate change. The intensity of UHIs varies with population size and mean annual precipitation, but a unifying explanation for this variation is lacking, and there are no geographically targeted guidelines for heat mitigation. Here we analyse summertime differences between urban and rural surface temperatures (ΔTs) worldwide and find a nonlinear increase in ΔTs with precipitation that is controlled by water or energy limitations on evapotranspiration and that modulates the scaling of ΔTs with city size. We introduce a coarse-grained model that links population, background climate, and UHI intensity, and show that urban–rural differences in evapotranspiration and convection efficiency are the main determinants of warming. The direct implication of these nonlinearities is that mitigation strategies aimed at increasing green cover and albedo are more efficient in dry regions, whereas the challenge of cooling tropical cities will require innovative solutions. Mehr anzeigen
Persistenter Link
https://doi.org/10.3929/ethz-b-000364040Publikationsstatus
publishedExterne Links
Zeitschrift / Serie
NatureBand
Seiten / Artikelnummer
Verlag
NatureOrganisationseinheit
08058 - Singapore-ETH Centre (SEC) / Singapore-ETH Centre (SEC)09625 - Crowther, Thomas Ward / Crowther, Thomas Ward
03473 - Burlando, Paolo / Burlando, Paolo
08060 - FCL / FCL
Anmerkungen
It was possible to publish this article open access thanks to a Swiss National Licence with the publisher.