Everyday weather in a warmer world

How would the weather of a year from history be experienced in a warmer world? We reconstruct the weather of 1903 using a reanalysis system that assimilates only surface pressure observations (20CRv3) with observed SSTs, and then reconstruct it again with increased SSTs and atmospheric CO 2 levels. By assimilating the same pressure observations, the reanalysis experiments produce the same weather patterns, and so we translate the weather of 1903 into a warmer context. We focus on changes in the everyday weather of four regions with a high density of historical pressure observations, where the circulation is constrained and differences between the experiments are due to the thermodynamic component of climate change. In these regions, nearly all days are warmer in the warmer world experiments, but the largest increases occur on cold days (below freezing) and hot days (above 20 °C). Daily rainfall becomes more variable, even in regions where total rainfall is reduced. Fewer days experience light rain while more days experience heavy rain, and rainfall only increases on less than 1 d in 10. This single year pair of reanalysis experiments also recovers common patterns of observed and projected long-term changes. For example, Western Mediterranean precipitation declines outside winter, but shows a small increase in winter in the absence of storm track shifts. By anchoring our analysis in weather patterns that have actually occurred, the reanalysis experiments point to how our day-to-day experience of the same weather patterns may change in a warmer world, even if the weather patterns themselves do not.

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Publication Details

Journal
Earth System Dynamics
Published
2026-09-25
DOI
https://doi.org/10.5194/esd-17-1365-2026
Primary Topic
Climate variability and models
Type
article
Field-Weighted Citation Impact
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article

Everyday weather in a warmer world

Vikki Thompson, Andrew Schurer, Laura Slivinski, Gilbert P. Compo et al.
Earth System Dynamics
Climate variability and models
article

Everyday weather in a warmer world

Vikki Thompson, Andrew Schurer, Laura Slivinski, Gilbert P. Compo, Ed Hawkins, Rhidian Thomas, Steven E. George, Theodore G. Shepherd, Gabriele C. Hegerl
article en

Abstract

How would the weather of a year from history be experienced in a warmer world? We reconstruct the weather of 1903 using a reanalysis system that assimilates only surface pressure observations (20CRv3) with observed SSTs, and then reconstruct it again with increased SSTs and atmospheric CO 2 levels. By assimilating the same pressure observations, the reanalysis experiments produce the same weather patterns, and so we translate the weather of 1903 into a warmer context. We focus on changes in the everyday weather of four regions with a high density of historical pressure observations, where the circulation is constrained and differences between the experiments are due to the thermodynamic component of climate change. In these regions, nearly all days are warmer in the warmer world experiments, but the largest increases occur on cold days (below freezing) and hot days (above 20 °C). Daily rainfall becomes more variable, even in regions where total rainfall is reduced. Fewer days experience light rain while more days experience heavy rain, and rainfall only increases on less than 1 d in 10. This single year pair of reanalysis experiments also recovers common patterns of observed and projected long-term changes. For example, Western Mediterranean precipitation declines outside winter, but shows a small increase in winter in the absence of storm track shifts. By anchoring our analysis in weather patterns that have actually occurred, the reanalysis experiments point to how our day-to-day experience of the same weather patterns may change in a warmer world, even if the weather patterns themselves do not.

Earth System DynamicsVol. 17(5)
Cooperative Institute for Research in Environmental Sciences (US), Reading Museum (GB), National Centre for Atmospheric Science (GB), NOAA Physical Sciences Laboratory (US), University of Reading (GB), University of Edinburgh (GB)
Climate action
Openalex Percentile: Top 14%
Climate variability and models
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