Southern Hemisphere westerlies as a driver of the early deglacial atmospheric CO<sub>2</sub> rise.

Menviel, L; Spence, P; Yu, J; Chamberlain, M A; Matear, R J; Meissner, K J; England, M H · Nat Commun · 2018

basic_science · Level V

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Abstract

The early part of the last deglaciation is characterised by a ~40 ppm atmospheric CO<sub>2</sub> rise occurring in two abrupt phases. The underlying mechanisms driving these increases remain a subject of intense debate. Here, we successfully reproduce changes in CO<sub>2</sub>, δ<sup>13</sup>C and Δ<sup>14</sup>C as recorded by paleo-records during Heinrich stadial 1 (HS1). We show that HS1 CO<sub>2</sub> increase can be explained by enhanced Southern Ocean upwelling of carbon-rich Pacific deep and intermediate waters, resulting from intensified Southern Ocean convection and Southern Hemisphere (SH) westerlies. While enhanced Antarctic Bottom Water formation leads to a millennial CO<sub>2</sub> outgassing, intensified SH westerlies induce a multi-decadal atmospheric CO<sub>2</sub> rise. A strengthening of SH westerlies in a global eddy-permitting ocean model further supports a multi-decadal CO<sub>2</sub> outgassing from the Southern Ocean. Our results highlight the crucial role of SH westerlies in the global climate and carbon cycle system with important implications for future climate projections.