Impacts of simulated coastal ocean alkalinity enhancement on the seasonal carbon cycle in European waters under a low- and a high-emission scenario

One potentially scalable method to remove CO 2 from the air is ocean alkalinity enhancement (OAE), which works to lower the ocean's CO 2 partial pressure ( p CO 2 ) and accelerate CO 2 sequestration and durable storage. This study explores how OAE might affect the seasonal carbon cycle, which plays a key role in the ocean's annual CO 2 uptake. By analysing Earth System Model simulations of OAE implemented continuously at the European coastline under low and high emissions, it was found that: (a) due to surface alkalinity retention, OAE reduces ocean p CO 2 most strongly in summer, turning the region into a year-round carbon sink; (b) the strongest air-sea CO 2 uptake enhancement takes place in winter; (c) the ocean's carbon sink is increased more strongly in SSP3-7.0 than in SSP1-2.6 due to a lower buffering capacity.

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Publication Details

Journal
Earth System Dynamics
Published
2026-10-07
DOI
https://doi.org/10.5194/esd-17-1513-2026
Primary Topic
Marine and coastal ecosystems
Type
article
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article

Impacts of simulated coastal ocean alkalinity enhancement on the seasonal carbon cycle in European waters under a low- and a high-emission scenario

Neha Mehendale, Tronje P. Kemena, David Peter Keller, Sandy Avrutin et al.
Earth System Dynamics
Marine and coastal ecosystems
article

Impacts of simulated coastal ocean alkalinity enhancement on the seasonal carbon cycle in European waters under a low- and a high-emission scenario

Neha Mehendale, Tronje P. Kemena, David Peter Keller, Sandy Avrutin, Chiara Ciscato
article en

Abstract

One potentially scalable method to remove CO 2 from the air is ocean alkalinity enhancement (OAE), which works to lower the ocean's CO 2 partial pressure ( p CO 2 ) and accelerate CO 2 sequestration and durable storage. This study explores how OAE might affect the seasonal carbon cycle, which plays a key role in the ocean's annual CO 2 uptake. By analysing Earth System Model simulations of OAE implemented continuously at the European coastline under low and high emissions, it was found that: (a) due to surface alkalinity retention, OAE reduces ocean p CO 2 most strongly in summer, turning the region into a year-round carbon sink; (b) the strongest air-sea CO 2 uptake enhancement takes place in winter; (c) the ocean's carbon sink is increased more strongly in SSP3-7.0 than in SSP1-2.6 due to a lower buffering capacity.

Earth System DynamicsVol. 17(5)
University of Bremen (DE), GEOMAR Helmholtz Centre for Ocean Research Kiel (DE), CMCC Foundation - Euro-Mediterranean Center on Climate Change (IT)
Openalex Percentile: Top 16%
Marine and coastal ecosystems
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Impacts of simulated coastal ocean alkalinity enhancement on the seasonal carbon cycle in European waters under a low- and a high-emission scenario — Neha Mehendale, Tronje P. Kemena, et al. · Earth System Dynamics (2026) | TGRS Research Map | TGRS