Published June 28, 2022 | Version v1

Tightly linked zonal and meridional sea surface temperature gradients over the past five million years

  • 1. George Mason University
  • 2. Yale University
  • 3. Lafayette College
  • 4. Luther College

Description

Climatologies for the climate model simulations performed by Fedorov et al., Nature Geoscience, https://www.nature.com/articles/ngeo2577. This table shows how the names of the simulation files provided in this dataset relate to the experiment names provided in Table S2 of Fedorov et al., (2015, Nature Geoscience). Note that experiments 1-26 are from Burls and Fedorov (2014) and published in https://doi.org/10.5281/zenodo.6762450

Experiment # in Article (Table S2) Name of Files
27

abrupt2xCO2_T31_gx3v7*.nc

28

abrupt4xCO2_T31_gx3v7*.nc

29

abrupt8xCO2_T31_gx3v7*.nc

30

abrupt16xCO2_T31_gx3v7*.nc

Extended Exp 11 40p_ILWP_1590deg_tropx2_T31_gx3v7*.nc
Extended Exp 16 60p_ILWP_1590deg_tropx4_T31_gx3v7*.nc

Article abstract:

The climate of the tropics and surrounding regions is defined by pronounced zonal (east–west) and meridional (equator to mid-latitudes) gradients in sea surface temperature. These gradients control zonal and meridional atmospheric circulations, and thus the Earth’s climate. Global cooling over the past five million years, since the early Pliocene epoch, was accompanied by the gradual strengthening of these temperature gradients. Here we use records from the Atlantic and Pacific oceans, including a new alkenone palaeotemperature record from the South Pacific, to reconstruct changes in zonal and meridional sea surface temperature gradients since the Pliocene, and assess their connection using a comprehensive climate model. We find that the reconstructed zonal and meridional temperature gradients vary coherently over this time frame, showing a one-to-one relationship between their changes. In our model simulations, we systematically reduce the meridional sea surface temperature gradient by modifying the latitudinal distribution of cloud albedo or atmospheric CO2 concentration. The simulated zonal temperature gradient in the equatorial Pacific adjusts proportionally. These experiments and idealized modelling indicate that the meridional temperature gradient controls upper-ocean stratification in the tropics, which in turn controls the zonal gradient along the equator, as well as heat export from the tropical oceans. We conclude that this tight linkage between the two sea surface temperature gradients posits a fundamental constraint on both past and future climates.

Files

Files (867.7 MB)

Name Size
md5:5419229b3f65ed464c3a7c92cc8dde50
13.0 MB Download
md5:9d63573c635f85ee0b04cc178ccd3bdc
121.5 MB Download
md5:3855cf372afdb319de28dffb4b6f2524
10.3 MB Download
md5:55f669eaf145f7128f348010dbccf259
13.0 MB Download
md5:0c26abba551546990691841764080b0f
121.5 MB Download
md5:1d38aeeeddcd3cfb0568db1ba6e2b402
10.3 MB Download
md5:080552d9b0b0dd4ec9cce1b4b6cc0f6d
12.9 MB Download
md5:58bf03803c26cf36474ef62fcf72f6f5
121.5 MB Download
md5:d412b8b7a4aef3f75c9661b038a0b931
10.2 MB Download
md5:d09fe130a430241044fefec44fb108b2
12.9 MB Download
md5:60621a4289522519eb14da61872c0f94
121.5 MB Download
md5:aa1da6bd71e8d7fc1b2a37f85a93b9c8
10.2 MB Download
md5:c323e83ee15ccf989fee1a339b60d0f0
12.9 MB Download
md5:b37d981a99dbba3a35e7dd4114c38a8a
121.5 MB Download
md5:0dc9b6520422344872c548cba8ef2842
10.2 MB Download
md5:6739045f29c478c2c23caeeb819aa1f1
12.9 MB Download
md5:75c6252436a3b67e3a09c9b7c27dbf7c
121.5 MB Download
md5:ecbc9dbc89a2fec4e7ae431cfddd89fe
10.2 MB Download

Additional details

Related works

Is described by
Journal article: 10.1038/ngeo2577 (DOI)

References

  • Fedorov, A. V., Burls, N. J., Lawrence, K. T., & Peterson, L. C. (2015). Tightly linked zonal and meridional sea surface temperature gradients over the past five million years. Nature Geoscience, 8(12), 975-980.