TY - JOUR
T1 - The CESM2 Single-Forcing Large Ensemble and Comparison to CESM1
T2 - Implications for Experimental Design
AU - Simpson, Isla R.
AU - Rosenbloom, Nan
AU - Danabasoglu, Gokhan
AU - Deser, Clara
AU - Yeager, Stephen G.
AU - McCluskey, Christina S.
AU - Yamaguchi, Ryohei
AU - Lamarque, Jean Francois
AU - Tilmes, Simone
AU - Mills, Michael J.
AU - Rodgers, Keith B.
N1 - Publisher Copyright:
© 2023 American Meteorological Society.
PY - 2023/9/1
Y1 - 2023/9/1
N2 - Single-forcing large ensembles are a relatively new tool for quantifying the contributions of different anthropogenic and natural forcings to the historical and future projected evolution of the climate system. This study introduces a new single-forcing large ensemble with the Community Earth System Model, version 2 (CESM2), which can be used to separate the influences of greenhouse gases, anthropogenic aerosols, biomass burning aerosols, and all remaining forcings on the evolution of the Earth system from 1850 to 2050. Here, the forced responses of global near-surface temperature and associated drivers are examined in CESM2 and compared with those in a single-forcing large ensemble with CESM2’s predecessor, CESM1. The experimental design, the imposed forcing, and the model physics all differ between the CESM1 and CESM2 ensembles. In CESM1, an “all-but-one” approach was used whereby everything except the forcing of interest is time evolving, while in CESM2 an “only” approach is used, whereby only the forcing of interest is time evolving. This experimental design choice is shown to matter considerably for anthropogenic aerosol-forced change in CESM2, due to state dependence of cryospheric albedo feedbacks and nonlinearity in the Atlantic meridional overturning circulation (AMOC) response to forcing. This impact of experimental design is, however, strongly dependent on the model physics and/or the imposed forcing, as the same sensitivity to experimental design is not found in CESM1, which appears to be an inherently less nonlinear model in both its AMOC behavior and cryospheric feedbacks.
AB - Single-forcing large ensembles are a relatively new tool for quantifying the contributions of different anthropogenic and natural forcings to the historical and future projected evolution of the climate system. This study introduces a new single-forcing large ensemble with the Community Earth System Model, version 2 (CESM2), which can be used to separate the influences of greenhouse gases, anthropogenic aerosols, biomass burning aerosols, and all remaining forcings on the evolution of the Earth system from 1850 to 2050. Here, the forced responses of global near-surface temperature and associated drivers are examined in CESM2 and compared with those in a single-forcing large ensemble with CESM2’s predecessor, CESM1. The experimental design, the imposed forcing, and the model physics all differ between the CESM1 and CESM2 ensembles. In CESM1, an “all-but-one” approach was used whereby everything except the forcing of interest is time evolving, while in CESM2 an “only” approach is used, whereby only the forcing of interest is time evolving. This experimental design choice is shown to matter considerably for anthropogenic aerosol-forced change in CESM2, due to state dependence of cryospheric albedo feedbacks and nonlinearity in the Atlantic meridional overturning circulation (AMOC) response to forcing. This impact of experimental design is, however, strongly dependent on the model physics and/or the imposed forcing, as the same sensitivity to experimental design is not found in CESM1, which appears to be an inherently less nonlinear model in both its AMOC behavior and cryospheric feedbacks.
KW - Anthropogenic effects/forcing
KW - Climate models
KW - Ensembles
UR - https://www.scopus.com/pages/publications/85167872641
U2 - 10.1175/JCLI-D-22-0666.1
DO - 10.1175/JCLI-D-22-0666.1
M3 - Article
AN - SCOPUS:85167872641
SN - 0894-8755
VL - 36
SP - 5687
EP - 5711
JO - Journal of Climate
JF - Journal of Climate
IS - 17
ER -