Spatial and temporal scales of variability in Tropical Atlantic sea surface salinity from the SMOS and Aquarius satellite missions

Taking advantage of the spatially dense, multi-year time series of global Sea Surface Salinity (SSS) from two concurrent satellite missions, the spatial and temporal decorrelation scales of SSS in the Tropical Atlantic 30°N–30°S are quantified for the first time from SMOS and Aquarius observations....

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Published in:Remote Sensing of Environment
Main Authors: Tzortzi, Eleni, Srokosz, Meric A., Gommenginger, Christine P., Josey, Simon A.
Format: Article in Journal/Newspaper
Language:English
Published: 2016
Subjects:
Online Access:https://eprints.soton.ac.uk/387211/
https://eprints.soton.ac.uk/387211/1/1-s2.0-S0034425716300360-main.pdf
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spelling ftsouthampton:oai:eprints.soton.ac.uk:387211 2023-07-30T04:05:44+02:00 Spatial and temporal scales of variability in Tropical Atlantic sea surface salinity from the SMOS and Aquarius satellite missions Tzortzi, Eleni Srokosz, Meric A. Gommenginger, Christine P. Josey, Simon A. 2016-07 text https://eprints.soton.ac.uk/387211/ https://eprints.soton.ac.uk/387211/1/1-s2.0-S0034425716300360-main.pdf en English eng https://eprints.soton.ac.uk/387211/1/1-s2.0-S0034425716300360-main.pdf Tzortzi, Eleni, Srokosz, Meric A., Gommenginger, Christine P. and Josey, Simon A. (2016) Spatial and temporal scales of variability in Tropical Atlantic sea surface salinity from the SMOS and Aquarius satellite missions. Remote Sensing of Environment, 180, 418-430. (doi:10.1016/j.rse.2016.02.008 <http://dx.doi.org/10.1016/j.rse.2016.02.008>). cc_by_4 Article PeerReviewed 2016 ftsouthampton https://doi.org/10.1016/j.rse.2016.02.008 2023-07-09T22:04:34Z Taking advantage of the spatially dense, multi-year time series of global Sea Surface Salinity (SSS) from two concurrent satellite missions, the spatial and temporal decorrelation scales of SSS in the Tropical Atlantic 30°N–30°S are quantified for the first time from SMOS and Aquarius observations. Given the dominance of the seasonal cycle in SSS variability in the region, the length scales are calculated both for the mean and anomaly (i.e. seasonal cycle removed) SSS fields. Different 7–10 days composite SSS products from the two missions are examined to explore the possible effects of varying resolution, bias corrections and averaging characteristics. With the seasonal cycle retained, the SSS field is characterized by strongly anisotropic spatial variability. Homogeneous SSS variations in the Tropics have the longest zonal scales of over ~ 2000 km and long temporal scales of up to ~ 70–80 days, as shown by both SMOS and Aquarius. The longest meridional scales, reaching over ~ 1000 km, are seen in the South Atlantic between ~ 10°–25°S, most discernible in Aquarius data. The longest temporal scales of SSS variability are reported by both satellites to occur in the North-West Atlantic region 15°–30°N, at the Southern end of the Sargasso Sea, with SSS persisting for up to 150–200 days. The removal of the seasonal cycle results in a noticeable decrease in the spatio-temporal decorrelation scales over most of the basin. Overall, with the exception of the differences in the South Atlantic, there is general agreement between the spatial and temporal scales of SSS from the two satellites and different products, despite differences in individual product calibration and resolution characteristics. These new estimates of spatio-temporal decorrelation scales of SSS improve our knowledge of the processes and mechanisms controlling the Tropical Atlantic SSS variability, and provide valuable information for a wide range of oceanographic and modelling applications. Article in Journal/Newspaper North West Atlantic University of Southampton: e-Prints Soton Remote Sensing of Environment 180 418 430
institution Open Polar
collection University of Southampton: e-Prints Soton
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language English
description Taking advantage of the spatially dense, multi-year time series of global Sea Surface Salinity (SSS) from two concurrent satellite missions, the spatial and temporal decorrelation scales of SSS in the Tropical Atlantic 30°N–30°S are quantified for the first time from SMOS and Aquarius observations. Given the dominance of the seasonal cycle in SSS variability in the region, the length scales are calculated both for the mean and anomaly (i.e. seasonal cycle removed) SSS fields. Different 7–10 days composite SSS products from the two missions are examined to explore the possible effects of varying resolution, bias corrections and averaging characteristics. With the seasonal cycle retained, the SSS field is characterized by strongly anisotropic spatial variability. Homogeneous SSS variations in the Tropics have the longest zonal scales of over ~ 2000 km and long temporal scales of up to ~ 70–80 days, as shown by both SMOS and Aquarius. The longest meridional scales, reaching over ~ 1000 km, are seen in the South Atlantic between ~ 10°–25°S, most discernible in Aquarius data. The longest temporal scales of SSS variability are reported by both satellites to occur in the North-West Atlantic region 15°–30°N, at the Southern end of the Sargasso Sea, with SSS persisting for up to 150–200 days. The removal of the seasonal cycle results in a noticeable decrease in the spatio-temporal decorrelation scales over most of the basin. Overall, with the exception of the differences in the South Atlantic, there is general agreement between the spatial and temporal scales of SSS from the two satellites and different products, despite differences in individual product calibration and resolution characteristics. These new estimates of spatio-temporal decorrelation scales of SSS improve our knowledge of the processes and mechanisms controlling the Tropical Atlantic SSS variability, and provide valuable information for a wide range of oceanographic and modelling applications.
format Article in Journal/Newspaper
author Tzortzi, Eleni
Srokosz, Meric A.
Gommenginger, Christine P.
Josey, Simon A.
spellingShingle Tzortzi, Eleni
Srokosz, Meric A.
Gommenginger, Christine P.
Josey, Simon A.
Spatial and temporal scales of variability in Tropical Atlantic sea surface salinity from the SMOS and Aquarius satellite missions
author_facet Tzortzi, Eleni
Srokosz, Meric A.
Gommenginger, Christine P.
Josey, Simon A.
author_sort Tzortzi, Eleni
title Spatial and temporal scales of variability in Tropical Atlantic sea surface salinity from the SMOS and Aquarius satellite missions
title_short Spatial and temporal scales of variability in Tropical Atlantic sea surface salinity from the SMOS and Aquarius satellite missions
title_full Spatial and temporal scales of variability in Tropical Atlantic sea surface salinity from the SMOS and Aquarius satellite missions
title_fullStr Spatial and temporal scales of variability in Tropical Atlantic sea surface salinity from the SMOS and Aquarius satellite missions
title_full_unstemmed Spatial and temporal scales of variability in Tropical Atlantic sea surface salinity from the SMOS and Aquarius satellite missions
title_sort spatial and temporal scales of variability in tropical atlantic sea surface salinity from the smos and aquarius satellite missions
publishDate 2016
url https://eprints.soton.ac.uk/387211/
https://eprints.soton.ac.uk/387211/1/1-s2.0-S0034425716300360-main.pdf
genre North West Atlantic
genre_facet North West Atlantic
op_relation https://eprints.soton.ac.uk/387211/1/1-s2.0-S0034425716300360-main.pdf
Tzortzi, Eleni, Srokosz, Meric A., Gommenginger, Christine P. and Josey, Simon A. (2016) Spatial and temporal scales of variability in Tropical Atlantic sea surface salinity from the SMOS and Aquarius satellite missions. Remote Sensing of Environment, 180, 418-430. (doi:10.1016/j.rse.2016.02.008 <http://dx.doi.org/10.1016/j.rse.2016.02.008>).
op_rights cc_by_4
op_doi https://doi.org/10.1016/j.rse.2016.02.008
container_title Remote Sensing of Environment
container_volume 180
container_start_page 418
op_container_end_page 430
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