Using a Combination of High-Frequency Coastal Radar Dataset and Satellite Imagery to Study the Patterns Involved in the Coastal Countercurrent Events in the Gulf of Cadiz
Abstract
:1. Introduction
1.1. Geographical Frame
1.2. Surface Circulation
1.3. Oceanographic Features
1.4. Aim of the Work
2. Materials and Methods
2.1. Data Collection
2.1.1. Current Velocity
2.1.2. Meteorological Data
2.1.3. Sea Surface Temperature
2.1.4. Chlorophyll Distribution
2.2. Data Processing
2.2.1. Empirical Orthogonal Functions
2.2.2. Correlation Analysis
2.3. Data Analysis
3. Results and Discussion
3.1. Surface Current Analysis
3.2. Case Studies
3.2.1. Case Study 1: February 2017
3.2.2. Case Study 2: April 2017
3.2.3. Case Study 3: August 2017
3.2.4. Case Study 4: October 2017
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
ACDP | Acoustic Doppler Current Profiler. |
APG | Alongshore Pressure Gradient. |
CB | Cape Beddouzza. |
C3S | Copernicus Climate Change Service. |
CCC | Coastal Countercurrent. |
CDO | Climate Data Operators. |
CDS | Climate Data Store. |
CODAR | Coastal Ocean Dynamic Application Radar. |
CSV | Cape San Vicente. |
CSM | Cape Santa Maria. |
CT | Cape Trafalgar. |
EBUS | Eastern Boundary Upwelling Systems. |
ECMWF | European Centre for Medium-Range Weather Forecast. |
EOF | Empirical Orthogonal Function. |
ESA-CCI | European Space Agency–Climate Change Initiative. |
FFT | Fast Fourier Transform. |
GoC | Gulf of Cadiz. |
HFR | High-Frequency Radar |
MSLP | Mean Sea-Level Pressure. |
MY | Multi-Year. |
RMSD | Root Mean Squared Deviation. |
SST | Sea Surface Temperature. |
SVD | Singular Value Decomposition. |
TRADE | Trans-regional Radars for Environmental Applications. |
UCA | University of Cadiz. |
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Variable | Product Type | Spatial Resolution | Temporal Resolution | Source |
---|---|---|---|---|
Current velocity | Near Real-Time | 1.5 km | Hourly | HFRs |
MSLP | Reanalysis | 0.25° × 0.25° | Hourly | CDS (ERA5) |
Wind at 10 m | Reanalysis | 0.25° × 0.25° | Hourly | CDS (ERA5) |
SST | Near Real-Time | 0.01° × 0.01° | Daily | Copernicus |
Chl-a | MultiYear | 0.01° × 0.01° | Daily | Copernicus |
Jan | Feb | Mar | Apr | May | Jun | Jul | Aug | Sept | Oct | Nov | Dec | |
---|---|---|---|---|---|---|---|---|---|---|---|---|
number of missing data | 25 | 1 | 104 | 8 | 0 | 0 | 71 | 30 | 8 | 26 | 16 | 315 |
Correlation | (GoC) | (GoC) | MLSP (Lig) |
---|---|---|---|
u | R = 0.6 | R = −0.49 | R = −0.56 |
Mode 1 | R = 0.74 | R = −0.51 | R = −0.52 |
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Fanelli, C.; Gomiz Pascual, J.J.; Bruno-Mejías, M.; Navarro, G. Using a Combination of High-Frequency Coastal Radar Dataset and Satellite Imagery to Study the Patterns Involved in the Coastal Countercurrent Events in the Gulf of Cadiz. Remote Sens. 2024, 16, 687. https://doi.org/10.3390/rs16040687
Fanelli C, Gomiz Pascual JJ, Bruno-Mejías M, Navarro G. Using a Combination of High-Frequency Coastal Radar Dataset and Satellite Imagery to Study the Patterns Involved in the Coastal Countercurrent Events in the Gulf of Cadiz. Remote Sensing. 2024; 16(4):687. https://doi.org/10.3390/rs16040687
Chicago/Turabian StyleFanelli, Claudia, Juan Jesús Gomiz Pascual, Miguel Bruno-Mejías, and Gabriel Navarro. 2024. "Using a Combination of High-Frequency Coastal Radar Dataset and Satellite Imagery to Study the Patterns Involved in the Coastal Countercurrent Events in the Gulf of Cadiz" Remote Sensing 16, no. 4: 687. https://doi.org/10.3390/rs16040687
APA StyleFanelli, C., Gomiz Pascual, J. J., Bruno-Mejías, M., & Navarro, G. (2024). Using a Combination of High-Frequency Coastal Radar Dataset and Satellite Imagery to Study the Patterns Involved in the Coastal Countercurrent Events in the Gulf of Cadiz. Remote Sensing, 16(4), 687. https://doi.org/10.3390/rs16040687