Please use this identifier to cite or link to this item:
http://hdl.handle.net/1893/37622| Appears in Collections: | Biological and Environmental Sciences Journal Articles |
| Peer Review Status: | Refereed |
| Title: | Advancing Our Understanding of Surface Water Temperature Dynamics in Transitional Environments through in Situ, Satellite, and Hydrodynamic Modeling |
| Author(s): | Sankara Narayanan, Nagendra Jaiganesh Bellafiore, Debora De Pascalis, Francesca Ghezzo, Michol Miller, Claire Scott, Marian Braga, Federica Spyrakos, Evangelos Tyler, Andrew |
| Contact Email: | evangelos.spyrakos@stir.ac.uk |
| Keywords: | Transitional Waters Venice Lagoon SHYFEM Landsat 8 TACT Thermal Plumes Surface Water Temperature |
| Issue Date: | 26-Nov-2025 |
| Date Deposited: | 28-Nov-2025 |
| Citation: | Sankara Narayanan NJ, Bellafiore D, De Pascalis F, Ghezzo M, Miller C, Scott M, Braga F, Spyrakos E & Tyler A (2025) Advancing Our Understanding of Surface Water Temperature Dynamics in Transitional Environments through in Situ, Satellite, and Hydrodynamic Modeling. <i>ACS ES&T Water</i>. https://doi.org/10.1021/acsestwater.5c00583 |
| Abstract: | Monitoring surface water temperature (SWT) in transitional environments remains challenging due to the interplay of natural and anthropogenic processes, which introduce greater complexity than in open-ocean systems. This study evaluates four SWT products for their ability to capture temperature dynamics in the Venice Lagoon, a well-monitored coastal system. The assessment included (1) output from the hydrodynamic model SHYFEM (System of Hydrodynamic Finite Element Module), (2) a satellite-based Level 4 product from the European Space Agency Climate Change Initiative (ESA CCI), (3) the Landsat 8 Level 2 standard thermal product, and (4) Landsat 8 Level 1 data processed using the Thermal Atmospheric Correction Tool (TACT). Validation against in situ observations indicated that SHYFEM and TACT showed lower bias (−0.48 °C and −0.30 °C, respectively) and RMSE (∼1.2 °C) than the other products. SHYFEM effectively reproduced intra-annual SWT trends with comprehensive temporal coverage, while TACT captured fine-scale spatial features, including thermal anomalies from industrial discharges. Building on this, an integrated product combining SHYFEM and TACT was developed, providing a more accurate and coherent representation of spatiotemporal SWT dynamics. This transferable framework advances understanding of thermal variability in transitional waters and has potential to support ecosystem management and climate adaptation strategies. |
| DOI Link: | 10.1021/acsestwater.5c00583 |
| Rights: | You are free to share(copy and redistribute) this article in any medium or format and to adapt(remix, transform, and build upon) the material for any purpose, even commercially within the parameters below: cc licence Creative Commons (CC): This is a Creative Commons license. ny licence Attribution (BY): Credit must be given to the creator. |
| Licence URL(s): | http://creativecommons.org/licenses/by/4.0/ |
Files in This Item:
| File | Description | Size | Format | |
|---|---|---|---|---|
| advancing-our-understanding-of-surface-water-temperature-dynamics-in-transitional-environments-through-in-situ.pdf | Fulltext - Published Version | 12.16 MB | Adobe PDF | View/Open |
This item is protected by original copyright |
A file in this item is licensed under a Creative Commons License
Items in the Repository are protected by copyright, with all rights reserved, unless otherwise indicated.
The metadata of the records in the Repository are available under the CC0 public domain dedication: No Rights Reserved https://creativecommons.org/publicdomain/zero/1.0/
If you believe that any material held in STORRE infringes copyright, please contact library@stir.ac.uk providing details and we will remove the Work from public display in STORRE and investigate your claim.
