Javascript must be enabled to continue!
Decadal oxygen change in the eastern tropical North Atlantic
View through CrossRef
Abstract. Repeat shipboard and multi-year moored observations obtained in the oxygen minimum zone (OMZ) of the eastern tropical North Atlantic (ETNA) were used to study the decadal change in oxygen for the period 2006–2015. At the depth of the deep oxycline (200–400 m), oxygen decreased with a rate of −6.2 ± 3.8 μmol kg−1 decade−1, while below the OMZ core (400–1,000 m) oxygen increased by 4.1 ± 1.7 μmol kg−1 decade−1 on average. The inclusion of these decadal oxygen trends in the recently estimated oxygen budget for the ETNA OMZ showed a weakened ventilation of the upper 400 m, whereas the ventilation strengthened homogeneously over depth below 400 m. This resulted in a shoaling of the ETNA OMZ of −0.03 ± 0.02 kg m−3 decade−1 in density space, which was only partly compensated by a deepening of isopycnal surfaces, thus pointing to a shoaling of the OMZ in depth space as well. Shipboard, float and satellite observations of velocity and hydrography indicate different regional as well as remote changes in the circulation pattern to be responsible for the change in the ventilation of the ETNA. The reduced ventilation in the upper 400 m may have been induced by a southward shift of the wind-driven circulation or by a change of the composition of South Atlantic Central Water. There are hints that below 400 m, latitudinally alternating zonal jets have strengthened, thus contributing to the increased ventilation. Nevertheless, temporal changes in isopycnal eddy supply or diapycnal supply (diapycnal mixing as well as diapycnal advection) cannot be excluded in having contributed to the observed oxygen change.
Title: Decadal oxygen change in the eastern tropical North Atlantic
Description:
Abstract.
Repeat shipboard and multi-year moored observations obtained in the oxygen minimum zone (OMZ) of the eastern tropical North Atlantic (ETNA) were used to study the decadal change in oxygen for the period 2006–2015.
At the depth of the deep oxycline (200–400 m), oxygen decreased with a rate of −6.
2 ± 3.
8 μmol kg−1 decade−1, while below the OMZ core (400–1,000 m) oxygen increased by 4.
1 ± 1.
7 μmol kg−1 decade−1 on average.
The inclusion of these decadal oxygen trends in the recently estimated oxygen budget for the ETNA OMZ showed a weakened ventilation of the upper 400 m, whereas the ventilation strengthened homogeneously over depth below 400 m.
This resulted in a shoaling of the ETNA OMZ of −0.
03 ± 0.
02 kg m−3 decade−1 in density space, which was only partly compensated by a deepening of isopycnal surfaces, thus pointing to a shoaling of the OMZ in depth space as well.
Shipboard, float and satellite observations of velocity and hydrography indicate different regional as well as remote changes in the circulation pattern to be responsible for the change in the ventilation of the ETNA.
The reduced ventilation in the upper 400 m may have been induced by a southward shift of the wind-driven circulation or by a change of the composition of South Atlantic Central Water.
There are hints that below 400 m, latitudinally alternating zonal jets have strengthened, thus contributing to the increased ventilation.
Nevertheless, temporal changes in isopycnal eddy supply or diapycnal supply (diapycnal mixing as well as diapycnal advection) cannot be excluded in having contributed to the observed oxygen change.
Related Results
Multi-decadal river flows variations in France
Multi-decadal river flows variations in France
Abstract. In this article, multi-decadal variations in French hydroclimate are investigated, with a specific focus on river flows. Based on long observed series, it is shown that r...
The Atlantic sibling: a reconciling vision on the nature of El Niño’s “little brother” 
The Atlantic sibling: a reconciling vision on the nature of El Niño’s “little brother” 
The Atlantic Niño, also referred to as Atlantic zonal mode, equatorial Atlantic mode or, sometimes, El Niño’s little brother, is an important source of ...
The Atlantic sibling: a reconciling vision on the nature of El Niño’s ‘Little Brother’
The Atlantic sibling: a reconciling vision on the nature of El Niño’s ‘Little Brother’
The Atlantic Niño is an important source of the year-to-year variability
of the tropical Atlantic, consisting in an irregular oscillation of the
Sea Surface Temperature (SST) in th...
The Atlantic Niño Mode: A Thermodynamic or a Dynamic Phenomenon?
The Atlantic Niño Mode: A Thermodynamic or a Dynamic Phenomenon?
AbstractThe Atlantic Niño is an important source of the year‐to‐year variability of the tropical Atlantic, consisting in an irregular oscillation of the Sea Surface Temperature (SS...
Estimating the decadal-scale climate predictability limit using optimal local dynamic analogues
Estimating the decadal-scale climate predictability limit using optimal local dynamic analogues
Abstract
Accurately estimating decadal predictability limits (PLs) is essential for advancing long-term climate predictions and understanding decadal-scale variability. Thi...
Decadal oxygen change in the eastern tropical North Atlantic
Decadal oxygen change in the eastern tropical North Atlantic
Abstract. Repeat shipboard and multi-year moored observations obtained in the oxygen minimum zone (OMZ) of the eastern tropical North Atlantic (ETNA) were used to study the decadal...
High Concentration Oxygen and Hypercapnia in Respiratory Disease
High Concentration Oxygen and Hypercapnia in Respiratory Disease
<p>Oxygen-induced elevations in arterial carbon dioxide tension have been demonstrated in patients with chronic obstructive pulmonary disease (COPD), asthma, pneumonia, obesi...
Multidecadal Variability of Ocean Climate and Circulation of the North Atlantic Ocean
Multidecadal Variability of Ocean Climate and Circulation of the North Atlantic Ocean
The North Atlantic's surface has been heating up for decades. There was concern that the thermohaline circulation and essential climate variables, such as the seawater temperature ...

