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A re-evaluation of the Earth’s surface temperature response to radiative forcing

Datos Bibliográficos

ID15545232
AutoresPeter C Young (0000-0002-9984-3432, Lancaster University, autor de correspondencia), P G Allen (0000-0003-3676-5497, University of Massachusetts Amherst), John T Bruun (0000-0003-1307-6103, University of Exeter)
Año2021
Volumen16
Número5
Páginas054068-054068
Fecha de publicación2021-04-22
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaEnvironmental Research Letters (JOURNAL)
Identificadores de la revistaISSN: 1748-9326 • E-ISSN: 1748-9326
EditorialIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/abfa50
OpenAlexW3158797772
IdiomaEN
Referencias citadas32

There is much current debate about the way in which the earth’s climate and temperature are responding to anthropogenic and natural forcing. In this paper we re-assess the current evidence at the globally averaged level by adopting a generic ‘data-based mechanistic’ modelling strategy that incorporates statistically efficient parameter estimation. This identifies a low order, differential equation model that explains how the global average surface temperature variation responds to the influences of total radiative forcing (TRF). The model response includes a novel, stochastic oscillatory component with a period of about 55 years (range 51.6–60 years) that appears to be associated with heat energy interchange between the atmosphere and the ocean. These ‘quasi-cycle’ oscillations, which account for the observed pauses in global temperature increase around 1880, 1940 and 2001, appear to be related to ocean dynamic responses, particularly the Atlantic multidecadal oscillation. The model explains 90% of the variance in the global average surface temperature anomaly and yields estimates of the equilibrium climate sensitivity (ECS) (2.29 ∘ C with 5%–95% range 2.11 ∘ C to 2.49 ∘ C) and the transient climate response (TCR) (1.56 ∘ C with 5%–95% range 1.43 ∘ C to 1.68 ∘ C), both of which are smaller than most previous estimates. When a high level of uncertainty in the TRF is taken into account, the ECS and TCR estimates are unchanged but the ranges are increased to 1.43 ∘ C to 3.14 ∘ C and 0.99 ∘ C to 2.16 ∘ C, respectively

Anomaly (physics · Atlantic multidecadal oscillation · Atmosphere (unit · Atmospheric sciences · Climate change · Climate model · Climate sensitivity · Climatology · Current (fluid · Forcing (mathematics · Global temperature · Global warming · Meteorology · Oscillation (cell signaling · Physics · Radiative forcing · Radiative transfer · Range (aeronautics · Sea surface temperature · Thermodynamics · Atmospheric and Environmental Gas Dynamics · Chemistry · Climate Change Policy and Economics · Climate variability and models · Environmental Science · Materials Science · Geology · Oceanography

  • An Assessment of Earth's Climate Sensitivity Using Multiple Lines of Evidence

    Open Access•Steven C Sherwood, M J Webb et al.•Reviews of Geophysics•2020

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    Open Access•Michael E Schlesinger, Navin Ramankutty•Nature•1994

  • Uncertainty, Complexity and Concepts of Good Science in Climate Change Modelling

    Open Access•Simon Shackley, Peter Young et al.•Climatic Change•1998

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