Introduction
Mesoscale dynamics make an important contribution to biogeochemical cycles through the redistribution of nutrients and passive marine organisms by both horizontal advection and vertical exchange. Vertical motion plays a key role in the exchange of heat, salt and biogeochemical tracers between the surface and deep ocean. In coastal upwellings, frontal areas and mesoscale eddies, the vertical velocity has fundamental importance and can significantly contribute to nutrient supply in the euphotic zone .
Previous remote sensing studies have revealed that chlorophyll distributions within mesoscale eddies are characterized by dipole-like patterns, with extreme values found at the eddy peripheries. proposed that eddy horizontal advection could explain these distributions. On the other hand, the importance of vertical exchange for phytoplankton growth and chlorophyll distributions in mesoscale oceanic eddies has been attributed to various mechanisms such as eddy pumping, eddy-induced Ekman pumping or vortex Rossby waves .
In this context, we aim to estimate the importance of horizontal and vertical mesoscale motions on nutrient redistribution through the application of quasi-geostrophic (QG) theory to an observation-based product . In particular, we aim to investigate the influence of derived horizontal and vertical velocities on ocean nitrate uptake in the southeast Pacific (SEP) through the use of a Lagrangian particle-tracking code.
Map of the southeast Pacific. Colors show annual mean eddy kinetic
energy (EKE) computed from daily AVISO
[Figure omitted. See PDF]
The remote southeast Pacific is the least sampled oceanic region in the world ocean, in terms of both hydrography and biogeochemical structure . Synoptic observations from satellites provide crucial knowledge about such regions, despite their limitation to surface fields . The now-mature Argo program is a source of supplementary subsurface hydrographic data (temperature and salinity) in the form of discrete vertical profiles over a global, but sparse, grid. The ARMOR3D estimate of the ocean state is an innovative product where remote sensing observations (sea surface temperature and sea level anomalies) are merged with in situ Argo temperature and salinity profiles. The resulting multivariate observation-based data set is freely available (see Section ).
The southeast Pacific has a variety of different trophic regimes such as the upwelling zone near the Peru–Chile coast that is rich in nutrients and has high chlorophyll concentrations, and the area associated with the central part of the South Pacific Gyre, which is the most oligotrophic area in the global ocean . Mesoscale effects on chlorophyll production can be considered to differ between regions with different dynamical characteristics. demonstrate that, while mesoscale activity in upwelling regions leads primarily to offshore export of phytoplankton, in the oligotrophic gyres mesoscale processes promote vertical advection of nutrients into the euphotic layer, thereby stimulating primary production. The present work is focused on the same area analyzed by , the offshore southeast Pacific (white box in Fig. ), where nutrient input by mesoscale vertical exchange is considered to play a lead role in primary production .
Climatological January nitrate from WOAPISCES in the southeast Pacific. (a) Horizontal section at 200 m depth, (b) vertical section at 20.5 S and (c) vertical section at 105.5 W. Dashed black lines in (b) and (c) indicate the 2 mol L isoline. White dots are a random sample of the simulated water parcels at their initial positions.
[Figure omitted. See PDF]
Figure shows the time-averaged eddy kinetic energy (EKE) at the surface computed from daily AVISO (DT14, ) sea level anomalies. The EKE in the South Pacific Gyre has lower values in comparison with more active regions such as the Gulf Stream or Agulhas Current . However, this gyre also includes a region with relatively high EKE values corresponding to the midwest South Pacific. and attribute the high EKE values found in this region to baroclinic instability of the eastward-flowing surface Subtropical Countercurrent (STCC) and the westward-flowing South Equatorial Current (SEC). Although the SEC is a surface current near the equator, it has a subsurface component that observed to as far south as 30 S, where it underlies the STCC (see Fig. 3 of ). Moreover, they also find that in this region seasonal EKE modulation is related to the seasonal intensification/decay of the STCC–SEC baroclinic instability, with a maximum in November–December. In the same way, the gyre has another region with relatively high EKE values at its northwest corner. In contrast to the STCC–SEC system, attribute these high values to barotropic instabilities between the eastward South Equatorial Countercurrent (SECC) and its bordering westward SEC. The SECC–SEC system also presents seasonal EKE modulation, but with maxima in April because the SECC–SEC horizontal shear seasonality is dominated by seasonal changes in the strength of the SECC. The two systems analyzed by additionally show interannual EKE variability.
Figure shows high EKE values off the Peru–Chile coast which is characterized by an important coastal upwelling and the consequent generation of mesoscale eddies and filaments . The region of study (white box in Fig. ) is characterized by relatively low EKE, with higher EKE values in the southwest corner that are related to the STCC–SEC system and, in the eastern section, to coastal upwelling eddy generation. However, the SEP has important eddy activity due, in part, to eddy formation in the Peru–Chile coastal upwelling .
A brief description of the synthetic temperature and salinity fields and biogeochemical data is given in Sect. 2. Section 3 describes the methodology used to diagnose the quasi-geostrophic vertical velocity, together with a description of the Lagrangian particle-tracking code utilized for the nitrate uptake simulation. In Sect. 4 the results of the vertical velocity and kinetic energy analysis as well as the results of the Lagrangian simulations are discussed. Section 5 summarizes and concludes the results.
Data
We use the ARMOR3D observation-based product which is based on the merging of gridded satellite sea level anomaly (SLA) and sea surface temperature (SST) remote sensing observations with in situ vertical profiles of temperature and salinity to provide a global 3-D data set of temperature and salinity . The data are computed on a Mercator horizontal grid with weekly temporal resolution covering the period 1998–2009, over 24 vertical levels from the surface to 1500 m depth. A validation of ARMOR3D is presented by who use a consistent data set from a model reanalysis.
Auxiliary data are used to evaluate the impact of vertical and horizontal velocities on SEP nitrate uptake rates. Here we use climatological nitrate data from WOAPISCES . Nitrate data are chosen because their large vertical gradient over the mixed layer (Fig. b and c) highlights the contribution of vertical velocity which is characterized by smaller values than horizontal currents, but is expected to play an important role in the introduction of nutrients into the euphotic layer. Figure a shows the horizontal nitrate distribution at 200 m depth from WOAPISCES. High nitrate values near the Peru–Chile coast are associated with the coastal upwelling. In the zonal section (Fig. b) the uplift of the nitracline due to the coastal upwelling off the Peru–Chile coast is evident. In the meridional section (Fig. c) nitrate concentrations increase northward.
Light conditions are used in Sect. to assess the
relevance of the Lagrangian nitrate transport estimates. Surface
photosynthetically active radiation () and attenuation coefficient at
490 nm () are obtained from the MERIS monthly climatology
(
(a) Vertical velocity on 7 January 2009 at 200 m depth. Black box delimits the region of high mesoscale eddy activity. (b) Zoom of vertical velocity and horizontal geostrophic currents over the high mesoscale eddy activity region in (a). (c) Kinetic energy on 7 January 2009 at 200 m depth.
[Figure omitted. See PDF]
Methodology
Computation of 3-D velocity
Horizontal geostrophic velocities are computed at all depths through the thermal wind equations: with the density, , calculated from ARMOR3D temperature and salinity profiles. is the Coriolis parameter and is gravity.
Vertical velocity is estimated using the quasi-geostrophic approximation by integrating the QG omega equation, presented here in its vector formulation : where where is the geostrophic velocity vector, is the departure from the mean density profile, the Brunt–Väisälä frequency and the Coriolis parameter. In this implementation, only depends on depth. The Rossby number for mesoscale eddies in the SEP is generally less than 0.1 , hence we assume QG theory to be a good approximation for computing the vertical velocity in this region.
Following Eq. (), vertical velocity is estimated from density stratification and the geostrophic velocity field. The computational code is derived following the QG vorticity and thermodynamic equations . Lateral boundaries are placed within the limits 68.4–141.3 W and 13.4–26.4 S. Boundary conditions are constructed by considering zero vertical velocity at the upper, lower and lateral boundaries.
A sensitivity analysis was carried out in order to evaluate the influence of reference level choice on the vertical velocity estimation. The choice of reference level is influential over the first hundred meters above the bottom due to the imposed boundary condition; away from the bottom the same patterns were seen for different choices of reference level (500 and 1000 m). Testing the 500 m reference level, the vertical velocity patterns pointed to a maximum decrease in magnitude of 50 %. Hence, a reference level of 1000 m depth was chosen. Dirichlet and Neumann conditions at the lateral boundaries were tested for which we found no significant impacts on results a few points away from the boundaries.
(a) Standard deviation of vertical velocity and (b) kinetic energy over the period 7 January 1998 to 30 December 2009 at 200 m depth. The discontinuous line delimits the region of high mesoscale variability.
[Figure omitted. See PDF]
Lagrangian simulations
In order to make an estimate of the potential biological impacts of the
horizontal and vertical velocity components on the distribution of a limiting
nutrient, in Sect. a Lagrangian particle-tracking code
is used to simulate water parcel trajectories forced by the derived ARMOR3D
velocity fields. The tracking code is ROMS Offline
The initial nitrate concentrations for each float, with , are interpolated in time and space from the monthly WOAPISCES climatology. In this way, the particles in each weekly release are initialized with local nutrient concentrations. The evolution of the nitrate content is then estimated along the Lagrangian tracks by considering an uptake term, and a remineralization term, :
The maximum uptake rate, (mol L d), is modulated by two Michaelis–Menten functions representing nitrate and light limitations, respectively . The light conditions are derived along each track by interpolation in time and space from the MERIS monthly climatology of surface Photosynthetically Active Radiation () and attenuation coefficient at 490 nm () . The values tested for the light half saturation parameter, , 1 and 5 E m s, are taken in the range 1–10 % of the typical surface PAR intensity . The half saturation constant for nitrate limitation is taken as mol L which is characteristic for oligotrophic marine regions .
Time series of vertical velocity magnitude (red line) and kinetic energy (blue line) averaged over the area of study. The correlation coefficient between vertical velocity and kinetic energy is 0.84.
[Figure omitted. See PDF]
Nitrate uptake rates considering (a) both QG vertical velocity and geostrophic horizontal velocity (UVW); (b) only geostrophic horizontal velocity (UV); (c) relative increase of nitrate uptake rates when including vertical velocity. These fields were obtained for days, mol L d, E m s and mol L.
[Figure omitted. See PDF]
Remineralization is represented by a relaxation toward climatological nitrate values whenever the actual float content falls below , the climatological nitrate field (WOAPISCES). is a characteristic relaxation timescale (days). We considered the values of 5 and 10 days.
Results
QG vertical velocity and kinetic energy from observation-based product
A comparison between vertical velocity () and kinetic energy (KE) computed from the ARMOR3D-derived geostrophic velocities is carried out in order to evaluate their relationship. An energetic region with high vertical velocities and mesoscale eddy activity is located in the southwest of the SEP, in both the vertical velocity (Fig. a) and kinetic energy (Fig. c) maps. This high eddy energy is related to baroclinic instabilities associated with the eastward surface STCC and the westward underlying SEC system . Figure c shows other regions with elevated mesoscale activity that are associated with less intense vertical velocity values. These regions are the coastal upwelling and the SECC–SEC system explained in Sect. .
Vertical velocity in the energetic region in the southwest is highlighted in the zoom in Fig. b. Intense vertical motions of the order of 2–3 m d with alternating signs are located along meanders and inside eddies. The mesoscale eddies are characterized by dipole-like patterns with upwelling and downwelling cells at the eddy peripheries (e.g., 126–128 W and 23–25 S). Vertical velocity around anticyclonic meanders (e.g., 136–139 W and 24–26 S or 120–122 W and 24–26 S) shows the expected upwellings in the upstream and downwellings in the downstream portions of the meander crests . Similarly, downwellings and upwellings in cyclonic meanders (e.g., 137–140 W and 24.5–26 S) are located upstream and downstream of the crest, respectively.
Average increase of nitrate uptake rates in the region of high mesoscale eddy activity (ca. 120–140 W and 22–26 S) for different values of the uptake coefficient and relaxation timescale .
[Figure omitted. See PDF]
In order to analyze the variability of , the standard deviation over the period 7 January 1998 to 30 December 2009 is computed and shown in Fig. a; Fig. b shows the standard deviation of the KE. The active region in the southwest of the SEP presents high temporal variability in both fields. The correlation coefficient between both fields in this region reaches 0.85. Considering the whole area of study, the correlation coefficient is 0.79. It should be noted that this high correlation between the two variables could not be anticipated a priori as the relationship is not linear (see Eq. ).
Time series of spatial averages of vertical velocity magnitude and kinetic energy are shown in Fig. . There is clear seasonal variability in both variables, with maximums in austral summer and minimums in austral winter related to the seasonal intensification/decay of the STCC–SEC vertical shear and, in consequence, with the increase/decrease of baroclinic instability . Interannual variability and weak variability of high frequency are also shown in these figures. When averaging over only the highly energetic region in the southwest (not shown) the tendency is similar but the magnitude is double.
Lagrangian simulations
In order to evaluate the potential biological impacts of the vertical velocities, we analyzed the nitrate uptake rates along the Lagrangian tracks resulting from successive weekly particle releases within the nitrate depletion depth (see Sect. ). To compare nitrate uptake rates in the simulations with (UVW) and without (UV) vertical motions, we computed the median of the nitrate uptake terms in bins of over the full annual simulations. The deeper particle tracks, for which uptake terms were lower than 0.001 (mol L d), were disregarded in these computations. As expected, nitrate uptake rates (Fig. ) are higher in the northeastern upwelling region. Intermediate uptake values can also be seen in the region of high mesoscale activity (ca. 120–140 W and 22–26 S). While the restricted resolved vertical velocities leave the overall pattern of nitrate uptake unchanged, local nitrate uptake increases reach up to 30 % in the region characterized by low uptake rates and high mesoscale activity (Fig. c).
The simplified nutrient model considered here is not suitable for a detailed study of the dynamics of nitrate, in particular as it does not consider planktonic biomass and diversity. However, we tested the sensitivity of the results to the , and parameters. In Fig. we show that spatially averaged increases in uptake rates over the region of high mesoscale activity vary between 0.4 and 11.6 %, with an average of 6.5 % for the considered range of parameter values. Larger increases are observed in the cases with high maximum uptake rates and strong light limitation.
Discussion and Conclusions
This paper analyses vertical velocities associated with QG dynamics as derived through an innovative approach that uses the ARMOR3D global observation-based product. Weekly horizontal geostrophic velocity and QG vertical velocity are computed from ARMOR3D temperature and salinity in the southeast Pacific. We analyze the QG vertical velocity in order to understand its distribution. The southwest of the SEP has relatively high mesoscale activity with vertical velocities exceeding 2 m d, which is on the order of 10 times the horizontal velocity. Vertical velocity and kinetic energy in the SEP have similar and intense seasonal variability with maximums in austral summer (November–December), which suggests that these quantities are mostly influenced by the seasonal modulation of STCC–SEC vertical shear .
Despite their relatively small magnitudes, vertical motions may have an important impact on the introduction of nutrients into the euphotic layer in areas with pre-existing vertical gradients of nutrients and hence can be considered influential on marine ecosystem variability. Two year-long Lagrangian simulations are forced with 3-D velocity fields. The first is forced by 3-D geostrophic velocities and QG vertical velocity in order to evaluate their combined contribution to rates of nitrate uptake along the tracks. The second is forced with the same 3-D geostrophic velocities and zero vertical velocity in order to evaluate the horizontal velocity contribution to the nitrate uptake. The Lagrangian experiments enable an examination of nitrate uptake rates under varying light conditions within the euphotic layer. This analysis reveals that, in regions with low rates of nitrate uptake, vertical motions associated with high mesoscale activity may be responsible for local increases in these uptake rates of up to 30 %. We caution that the nitrate model used is simple and that the outcomes are sensitive to the chosen values of maximum nitrogen uptake rate () and light half-saturation parameter (). Nevertheless, these results are indicative of the importance that mesoscale vertical motions have on sustaining primary productivity in the oligotrophic regions of ocean interiors.
Although we only analyze the (large) mesoscale vertical velocity, the importance of submesoscale features on vertical tracer dispersion has been shown by . Accordingly, the vertical velocity contribution estimated here can be considered an underestimation of the real vertical velocity contribution. Fine-resolution satellite observations can help to better evaluate the impact of vertical motions on nutrient redistribution. The wide-swath SWOT altimeter will allow unique observations in the 15–100 km range of wavelength scales when it comes online in the next decade .
Data availability
Data and codes are available from the first author upon request.
Acknowledgements
This work has been carried out as part of the E-MOTION (CTM2012-31014)
project funded by the Spanish National Research Program. Additional funding
from the local government of the Balearic Islands (CAIB-51/2011 grant) is
also acknowledged. Bàrbara Barceló-Llull is supported by a doctoral
grant from the Spanish National Research Program associated with the PUMP
(CTM2012-33355) project. Evan Mason is supported by a post-doctoral grant
from the Conselleria d'Educació, Cultura i Universitats del Govern de les
Illes Balears (Mallorca, Spain) and the European Social Fund. Arthur Capet is
funded by the European Union under FP7- People-Co-funding of Regional,
National and International Programmes, GA no. 600407. The ARMOR3D data set was
produced by CLS with support from the MyOcean project (EU
no. P7-SPACE-2007-1 grant agreement 218812). Nitrate data were extracted from
the WOAPISCES biogeochemical climatology (
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Abstract
An innovative approach is used to analyze the impact of vertical velocities associated with quasi-geostrophic (QG) dynamics on the redistribution and uptake of nitrate in the southeast Pacific (SEP). A total of 12 years of vertical and horizontal currents are derived from an observation-based estimate of the ocean state. Horizontal velocities are obtained through the application of thermal wind balance to weekly temperature and salinity fields. Vertical velocities are estimated by integration of the QG omega equation. Seasonal variability of the synthetic vertical velocity and kinetic energy associated with the horizontal currents is coincident, with peaks in austral summer (November–December) in accord with published observations. The impact of vertical velocity on SEP nitrate uptake rates is assessed by using two Lagrangian particle tracking experiments that differ according to vertical forcing (
You have requested "on-the-fly" machine translation of selected content from our databases. This functionality is provided solely for your convenience and is in no way intended to replace human translation. Show full disclaimer
Neither ProQuest nor its licensors make any representations or warranties with respect to the translations. The translations are automatically generated "AS IS" and "AS AVAILABLE" and are not retained in our systems. PROQUEST AND ITS LICENSORS SPECIFICALLY DISCLAIM ANY AND ALL EXPRESS OR IMPLIED WARRANTIES, INCLUDING WITHOUT LIMITATION, ANY WARRANTIES FOR AVAILABILITY, ACCURACY, TIMELINESS, COMPLETENESS, NON-INFRINGMENT, MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE. Your use of the translations is subject to all use restrictions contained in your Electronic Products License Agreement and by using the translation functionality you agree to forgo any and all claims against ProQuest or its licensors for your use of the translation functionality and any output derived there from. Hide full disclaimer