Five million years of Antarctic Circumpolar Current strength variability.

Lamy, Frank; Winckler, Gisela; Arz, Helge W; Farmer, Jesse R; Gottschalk, Julia; Lembke-Jene, Lester; Middleton, Jennifer L; van der Does, Michèlle et al. · Nature · 2024

basic_science · Level V

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Abstract

The Antarctic Circumpolar Current (ACC) represents the world's largest ocean-current system and affects global ocean circulation, climate and Antarctic ice-sheet stability<sup>1-3</sup>. Today, ACC dynamics are controlled by atmospheric forcing, oceanic density gradients and eddy activity<sup>4</sup>. Whereas palaeoceanographic reconstructions exhibit regional heterogeneity in ACC position and strength over Pleistocene glacial-interglacial cycles<sup>5-8</sup>, the long-term evolution of the ACC is poorly known. Here we document changes in ACC strength from sediment cores in the Pacific Southern Ocean. We find no linear long-term trend in ACC flow since 5.3 million years ago (Ma), in contrast to global cooling<sup>9</sup> and increasing global ice volume<sup>10</sup>. Instead, we observe a reversal on a million-year timescale, from increasing ACC strength during Pliocene global cooling to a subsequent decrease with further Early Pleistocene cooling. This shift in the ACC regime coincided with a Southern Ocean reconfiguration that altered the sensitivity of the ACC to atmospheric and oceanic forcings<sup>11-13</sup>. We find ACC strength changes to be closely linked to 400,000-year eccentricity cycles, probably originating from modulation of precessional changes in the South Pacific jet stream linked to tropical Pacific temperature variability<sup>14</sup>. A persistent link between weaker ACC flow, equatorward-shifted opal deposition and reduced atmospheric CO<sub>2</sub> during glacial periods first emerged during the Mid-Pleistocene Transition (MPT). The strongest ACC flow occurred during warmer-than-present intervals of the Plio-Pleistocene, providing evidence of potentially increasing ACC flow with future climate warming.