Characterizing, modelling and understanding the climate variability of the deep water formation in the North-Western Mediterranean Sea
Характеризация, моделирование и понимание климатической изменчивости формирования глубинных вод в северо-западной части Средиземного моря
2016-08-27
SCID: 54.1/2p3jsbxs
Discuss with AI
North-Western Mediterranean Seadeep water formationmixed layer depthregional climate system modelwinter-integrated buoyancy loss
Figures from the paper
Abstract (AI)
Observing, modelling and understanding the climate-scale variability of the deep water formation (DWF) in the North-Western Mediterranean Sea remains today very challenging. In this study, we first characterize the interannual variability of this phenomenon by a thorough reanalysis of observations in order to establish reference time series. These quantitative indicators include 31 observed years for the yearly maximum mixed layer depth over the period 1980–2013 and a detailed multi-indicator description of the period 2007–2013. Then a 1980–2013 hindcast simulation is performed with a fully-coupled regional climate system model including the high-resolution representation of the regional atmosphere, ocean, land-surface and rivers. The simulation reproduces quantitatively well the mean behaviour and the large interannual variability of the DWF phenomenon. The model shows convection deeper than 1000 m in 2/3 of the modelled winters, a mean DWF rate equal to 0.35 Sv with maximum values of 1.7 (resp. 1.6) Sv in 2013 (resp. 2005). Using the model results, the winter-integrated buoyancy loss over the Gulf of Lions is identified as the primary driving factor of the DWF interannual variability and explains, alone, around 50 % of its variance. It is itself explained by the occurrence of few stormy days during winter. At daily scale, the Atlantic ridge weather regime is identified as favourable to strong buoyancy losses and therefore DWF, whereas the positive phase of the North Atlantic oscillation is unfavourable. The driving role of the vertical stratification in autumn, a measure of the water column inhibition to mixing, has also been analyzed. Combining both driving factors allows to explain more than 70 % of the interannual variance of the phenomenon and in particular the occurrence of the five strongest convective years of the model (1981, 1999, 2005, 2009, 2013). The model simulates qualitatively well the trends in the deep waters (warming, saltening, increase in the dense water volume, increase in the bottom water density) despite an underestimation of the salinity and density trends. These deep trends come from a heat and salt accumulation during the 1980s and the 1990s in the surface and intermediate layers of the Gulf of Lions before being transferred stepwise towards the deep layers when very convective years occur in 1999 and later. The salinity increase in the near Atlantic Ocean surface layers seems to be the external forcing that finally leads to these deep trends. In the future, our results may allow to better understand the behaviour of the DWF phenomenon in Mediterranean Sea simulations in hindcast, forecast, reanalysis or future climate change scenario modes. The robustness of the obtained results must be however confirmed in multi-model studies.
Key Findings
1
A 1980–2013 high-resolution fully-coupled regional climate hindcast reproduces mean behaviour and large interannual variability of North-Western Mediterranean deep water formation (DWF).
2
Combining winter buoyancy loss and autumn vertical stratification explains over 70% of interannual DWF variance and accounts for the five strongest convective years (1981, 1999, 2005, 2009, 2013).
3
Model reproduces qualitative deep-water trends (warming, saltening, increased dense water volume and bottom density) driven by surface/intermediate heat and salt accumulation in 1980s–1990s and stepwise transfer during very convective years, though salinity and density trends are underestimated.
4
The model simulates convection deeper than 1000 m in about two-thirds of winters, with mean DWF rate 0.35 Sv and maxima 1.7 Sv (2013) and 1.6 Sv (2005).
5
Winter-integrated buoyancy loss over the Gulf of Lions is the primary driver of DWF interannual variability, explaining around 50% of its variance and linked to occurrence of few stormy winter days.
Research Object
Deep water formation (DWF) in the North-Western Mediterranean Sea (Gulf of Lions region)
Research Subject
Climate-scale variability, driving factors and trends of the DWF including interannual variability, role of winter-integrated buoyancy loss and atmospheric regimes, autumn stratification, and resulting deep-water property trends (temperature, salinity, volume, density)
Publication Details
Publication Date
2016-08-27
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest