Multivariate Estimations of Equilibrium Climate Sensitivity from Short Transient Warming Simulations

Publication date

2021-01-16

Authors

Bastiaansen, RobbinISNI 0000000492835856
Dijkstra, HenkISNI 0000000023267948
von der Heydt, AnnaORCID 0000-0002-5557-3282ISNI 0000000395085782

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Article
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Abstract

One of the most used metrics to gauge the effects of climate change is the equilibrium climate sensitivity, defined as the long‐term (equilibrium) temperature increase resulting from instantaneous doubling of atmospheric CO2. Since global climate models cannot be fully equilibrated in practice, extrapolation techniques are used to estimate the equilibrium state from transient warming simulations. Because of the abundance of climate feedbacks—spanning a wide range of temporal scales—it is hard to extract long‐term behavior from short‐time series; predominantly used techniques are only capable of detecting the single most dominant eigenmode, thus hampering their ability to give accurate long‐term estimates. Here, we present an extension to those methods by incorporating data from multiple observables in a multicomponent linear regression model. This way, not only the dominant but also the next‐dominant eigenmodes of the climate system are captured, leading to better long‐term estimates from short, nonequilibrated time series.

Keywords

CMIP5, climate dynamics, climate feedbacks, climate models, equilibrium climate sensitivity, global warming, Geophysics, General Earth and Planetary Sciences, SDG 13 - Climate Action

Citation

Bastiaansen, R, Dijkstra, H A & Von Der Heydt, A S 2021, 'Multivariate Estimations of Equilibrium Climate Sensitivity from Short Transient Warming Simulations', Geophysical Research Letters, vol. 48, no. 1, e2020GL091090. https://doi.org/10.1029/2020GL091090