Ocean (de)oxygenation from the Last Glacial Maximum to the twenty-first century: insights from Earth System models

Author:

Bopp L.12ORCID,Resplandy L.3,Untersee A.2,Le Mezo P.4,Kageyama M.4

Affiliation:

1. LMD/IPSL, CNRS/ENS/Ecole Polytechnique/UPMC, Paris, France

2. Ecole Normale Supérieure, Département de Géosciences, Paris, France

3. Princeton University, Geosciences Department, Princeton Environmental Institute, Princeton, NJ, USA

4. LSCE/IPSL, CNRS/CEA/ UVSQ, CE Saclay, Gif sur Yvette, France

Abstract

All Earth System models project a consistent decrease in the oxygen content of oceans for the coming decades because of ocean warming, reduced ventilation and increased stratification. But large uncertainties for these future projections of ocean deoxygenation remain for the subsurface tropical oceans where the major oxygen minimum zones are located. Here, we combine global warming projections, model-based estimates of natural short-term variability, as well as data and model estimates of the Last Glacial Maximum (LGM) ocean oxygenation to gain some insights into the major mechanisms of oxygenation changes across these different time scales. We show that the primary uncertainty on future ocean deoxygenation in the subsurface tropical oceans is in fact controlled by a robust compensation between decreasing oxygen saturation (O 2sat ) due to warming and decreasing apparent oxygen utilization (AOU) due to increased ventilation of the corresponding water masses. Modelled short-term natural variability in subsurface oxygen levels also reveals a compensation between O 2sat and AOU, controlled by the latter. Finally, using a model simulation of the LGM, reproducing data-based reconstructions of past ocean (de)oxygenation, we show that the deoxygenation trend of the subsurface ocean during deglaciation was controlled by a combination of warming-induced decreasing O 2sat and increasing AOU driven by a reduced ventilation of tropical subsurface waters. This article is part of the themed issue ‘Ocean ventilation and deoxygenation in a warming world’.

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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