Establishing an Integrated Permanent Sea-Level Monitoring Infrastructure towards the Implementation of Maritime Spatial Planning in Cyprus
Abstract
:1. Introduction
- A description of the Cyprus National TG Network (PYTHEAS) and the processes that were involved during the establishment of the infrastructure;
- The determination of local tidal data in Cyprus using sea-level measurements for the period 2017–2019;
- The transfer of the tidal data to the reference TG station in Limasol.
2. Methodology
2.1. The Establishment of the National Tide Gauge Station Network (PYTHEAS)
- Accessibility: The benchmark must enable easy and unobstructed access for future geodetic and surveying works.
- Resilience: The benchmark must be installed at a location with the least chance of destruction or future obstruction.
2.2. Determination of Tidal Levels
2.2.1. TG Data Pre-Processing and QC
- Tide gauge stability check: A time threshold of 5 min was defined, as suggested in [14] during which, if the value of the sea-level height remains constant then it indicates a structural instability of the tide gauge. In essence, the software scans for the occurrence of identical sea-level values over the specified timespan. This assessment is mostly applied to stilling well gauges. However, for the sake of completion, it was incorporated in the QC module.
- Outlier detection check: Large outliers are removed by specifying minimum and maximum thresholds. Significantly low or high values usually occur in cases of obstruction of the tide radar (e.g., a boat parking directly below the sensor) or some extreme event (e.g., storm surge). In such cases, outliers (blunders) will appear for a limited amount of time and will exhibit no periodicity. The thresholds initially used in this research were set as the upper and lower staff gauge limits. At the same time, a check is performed for any sudden change in the gradient of the data, which can be an indication of invalid measurements.
2.3. Estimation of the Astronomical Impact and Computation of Tidal Levels
2.4. Tidal Data Transfer
3. Results
4. Discussion
5. Conclusions
- The establishment of a procedure for the physical installation and referencing of TG’s;
- The definition of the methodology for the QC of the observations and the calculation of local tidal data. Α microtidal range of 0.303 to 0.261 was determined and a difference of 1 cm in the MTL and MSL data between the auxiliary stations and the reference TG.
- The definition of a common tidal level, which will be used for the determination of a benchmark to study MSLR and MSL variability;
- The calculation of the astronomical influence, and indirectly, the meteorological residuals that affect the sea elevation of Cyprus. The astronomical influence was estimated to contribute approximately 59% (~8 cm) to sea elevation, while the remaining portion is attributed to meteorological residuals (41% or approximately 5 cm).
Author Contributions
Funding
Conflicts of Interest
References
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Station | Radar TG | Weather Station | GNSS Receiver | GNSS Antenna |
---|---|---|---|---|
LARN | OTT RLS | Gill MaxiMet GMX500 | Trimble® Alloy | Trimble® Zephyr 3 |
PAFO | OTT RLS | Gill MaxiMet GMX500 | Trimble® Alloy | Trimble® Zephyr 3 |
POMO | OTT RLS | Gill MaxiMet GMX500 | Trimble® Alloy | Trimble® Zephyr 3 |
PARA | OTT RLS | Gill MaxiMet GMX500 | Trimble® Alloy | Trimble® Zephyr 3 |
LEME | OTT RLS | Lufft WS500 | Leica GRX 1200 + GNSS | Leica AR25 |
Station | Observation Period | Number of Observations | ACCEPTED | REJECTED |
---|---|---|---|---|
LARN | 21/11/2017 00:00–31/10/2019 23:59 | 1015859 | 1013623 (99.88%) | 2236 (0.22%) |
PAFO | 24/11/2017 00:00–31/10/2019 23:59 | 930334 | 929073 (99.87%) | 1261 (0.13%) |
POMO | 22/11/2017 00:00–30/06/2019 23:59 | 808688 | 794725 (98.83%) | 13963 (1.7%) |
PARA | 13/12/2017 00:00–30/06/2019 23:59 | 812301 | 811002 (99.84%) | 1299 (0.16%) |
LEME | 01/01/2018 00:00–31/10/2019 23:59 | 963228 | 963167 (99.99%) | 61 (0.006%) |
Station | MSL | MHW | MLW | MHHW | MLLW | HHW | LLW | MTL | ATI |
---|---|---|---|---|---|---|---|---|---|
LARN | 1.073 | 0.141 | −0.141 | 0.163 | −0.156 | 0.3651 | −0.6335 | 0.141 | 0.084 |
LEME | 1.353 | 0.133 | −0.133 | 0.155 | −0.150 | 0.3522 | −0.5990 | 0.133 | 0.084 |
PAFO | 1.194 | 0.136 | −0.135 | 0.159 | −0.151 | 0.3381 | −0.5929 | 0.135 | 0.078 |
POMO | 1.022 | 0.129 | −0.132 | 0.149 | −0.149 | 0.3175 | −0.5665 | 0.130 | 0.066 |
PARA | 1.195 | 0.153 | −0.150 | 0.177 | −0.169 | 0.3825 | −0.6142 | 0.151 | 0.093 |
Station | Mean ΔMSL | Mean ΔMTL | ΔMSL Std. Deviation | ΔMTL Std. Deviation |
---|---|---|---|---|
PARA | 0.011 | −0.012 | 0.072 | 0.074 |
PAFO | −0.016 | −0.013 | 0.091 | 0.072 |
POMO | −0.009 | −0.012 | 0.071 | 0.074 |
LARN | −0.010 | −0.014 | 0.089 | 0.044 |
Station | LLW According to Local MSL | Adjusted LLW |
---|---|---|
PARA | −0.614 | −0.603 |
PAFO | −0.593 | −0.609 |
POMO | −0.567 | −0.575 |
LARN | −0.633 | −0.644 |
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Danezis, C.; Nikolaidis, M.; Mettas, C.; Hadjimitsis, D.G.; Kokosis, G.; Kleanthous, C. Establishing an Integrated Permanent Sea-Level Monitoring Infrastructure towards the Implementation of Maritime Spatial Planning in Cyprus. J. Mar. Sci. Eng. 2020, 8, 861. https://doi.org/10.3390/jmse8110861
Danezis C, Nikolaidis M, Mettas C, Hadjimitsis DG, Kokosis G, Kleanthous C. Establishing an Integrated Permanent Sea-Level Monitoring Infrastructure towards the Implementation of Maritime Spatial Planning in Cyprus. Journal of Marine Science and Engineering. 2020; 8(11):861. https://doi.org/10.3390/jmse8110861
Chicago/Turabian StyleDanezis, Chris, Marios Nikolaidis, Christodoulos Mettas, Diofantos G. Hadjimitsis, Georgios Kokosis, and Chrysanthi Kleanthous. 2020. "Establishing an Integrated Permanent Sea-Level Monitoring Infrastructure towards the Implementation of Maritime Spatial Planning in Cyprus" Journal of Marine Science and Engineering 8, no. 11: 861. https://doi.org/10.3390/jmse8110861
APA StyleDanezis, C., Nikolaidis, M., Mettas, C., Hadjimitsis, D. G., Kokosis, G., & Kleanthous, C. (2020). Establishing an Integrated Permanent Sea-Level Monitoring Infrastructure towards the Implementation of Maritime Spatial Planning in Cyprus. Journal of Marine Science and Engineering, 8(11), 861. https://doi.org/10.3390/jmse8110861