Figure 1.
The article flow chart.
Figure 1.
The article flow chart.
Figure 2.
Situation map and figure of ACI marina Opatija.
Figure 2.
Situation map and figure of ACI marina Opatija.
Figure 3.
(a) Plan view of the oceanographic sites in the marina (ADCP 1–5—sea current and surface elevation measurements, ADCP 1, 2—wave parameters measurements, 2—PCM and CTD device, 1–5 vertical temperature and salinity profile), the coastal spring positions, the culvert position P1 and; (b) cross sections through the flushing culverts.
Figure 3.
(a) Plan view of the oceanographic sites in the marina (ADCP 1–5—sea current and surface elevation measurements, ADCP 1, 2—wave parameters measurements, 2—PCM and CTD device, 1–5 vertical temperature and salinity profile), the coastal spring positions, the culvert position P1 and; (b) cross sections through the flushing culverts.
Figure 4.
Time series of surface elevations recorded at the ADCP station 1 and daily precipitation at the meteorological station Rijeka (ϕ = 45020′, λ = 14027′) for the (a) winter and (b) summer measurement periods; the sea temperature (T) and salinity (S) throughout the vertical sea column at site 1 for (c,d) the winter and (e,f) summer measurement periods.
Figure 4.
Time series of surface elevations recorded at the ADCP station 1 and daily precipitation at the meteorological station Rijeka (ϕ = 45020′, λ = 14027′) for the (a) winter and (b) summer measurement periods; the sea temperature (T) and salinity (S) throughout the vertical sea column at site 1 for (c,d) the winter and (e,f) summer measurement periods.
Figure 5.
Time series of wind velocities and significant wave heights (measured at position 1, hourly averaged) with the corresponding wind rose for the (a) winter and (b) summer measurement periods.
Figure 5.
Time series of wind velocities and significant wave heights (measured at position 1, hourly averaged) with the corresponding wind rose for the (a) winter and (b) summer measurement periods.
Figure 6.
Time series of measured and integrated culvert discharges for the one culvert pipe measured by the PCM device; wave situations characterized by the significant wave height HS ≥ 0.3 m, peak periods TP ≥ 2.8 s in the range from 90° to 180° (marked by red line), days with precipitation intensity >10 mm/day (marked by green arrows), specific situations explained in text marked by magenta line and yellow circle for the (a) winter and (b) summer measurement periods.
Figure 6.
Time series of measured and integrated culvert discharges for the one culvert pipe measured by the PCM device; wave situations characterized by the significant wave height HS ≥ 0.3 m, peak periods TP ≥ 2.8 s in the range from 90° to 180° (marked by red line), days with precipitation intensity >10 mm/day (marked by green arrows), specific situations explained in text marked by magenta line and yellow circle for the (a) winter and (b) summer measurement periods.
Figure 7.
Position of springs according to the spatial distribution of temperature difference on 12 June 2002 [
27].
Figure 7.
Position of springs according to the spatial distribution of temperature difference on 12 June 2002 [
27].
Figure 8.
(a) Computational domain used for simulations (discretization with triangular cells); (b) a close-up view of the marina domain.
Figure 8.
(a) Computational domain used for simulations (discretization with triangular cells); (b) a close-up view of the marina domain.
Figure 9.
Correlation between the proportionality coefficient k and precipitation P (mm) used for source inflow rate calculation.
Figure 9.
Correlation between the proportionality coefficient k and precipitation P (mm) used for source inflow rate calculation.
Figure 10.
Comparison of measured and modeled hourly averaged (a) u velocity component and (b) v velocity component at a depth of −6 m at the position of ADCP 1 for the winter period.
Figure 10.
Comparison of measured and modeled hourly averaged (a) u velocity component and (b) v velocity component at a depth of −6 m at the position of ADCP 1 for the winter period.
Figure 11.
Comparison of measured and modeled hourly averaged (a) u velocity component and (b) v velocity component at a depth of −6 m at the position of ADCP 1 for the summer period.
Figure 11.
Comparison of measured and modeled hourly averaged (a) u velocity component and (b) v velocity component at a depth of −6 m at the position of ADCP 1 for the summer period.
Figure 12.
Hourly averaged current fields in the characteristic situations during an occurrence of barocline compensation currents in the area of the marina entrance, induced by (a,b) NE wind episode on 7 March 2017, 23:00 h, at a depth (a) h = −1 m and (b) h = −5 m; (c,d) W wind episode on 10 August, 17:00 h at a depth (c) h = −1 m and (b) h = −5 m.
Figure 12.
Hourly averaged current fields in the characteristic situations during an occurrence of barocline compensation currents in the area of the marina entrance, induced by (a,b) NE wind episode on 7 March 2017, 23:00 h, at a depth (a) h = −1 m and (b) h = −5 m; (c,d) W wind episode on 10 August, 17:00 h at a depth (c) h = −1 m and (b) h = −5 m.
Figure 13.
Turbulent kinetic energy field for the wind of 4.5 m/s speed trough vertical cross-section B1–B2: (a) the cross-section B1–B2 position; (b) TKE on 10th of March, 19:00 h for N wind; (c) TKE on 4th of March 22:00 h for SW wind; (d) TKE on 14th of July 10:00 h for NE wind.
Figure 13.
Turbulent kinetic energy field for the wind of 4.5 m/s speed trough vertical cross-section B1–B2: (a) the cross-section B1–B2 position; (b) TKE on 10th of March, 19:00 h for N wind; (c) TKE on 4th of March 22:00 h for SW wind; (d) TKE on 14th of July 10:00 h for NE wind.
Figure 14.
The integrated dissipation of turbulent kinetic energy through the vertical profile in the point of the marina centroid versus the cube of the wind speed for the N, NE and SW wind direction.
Figure 14.
The integrated dissipation of turbulent kinetic energy through the vertical profile in the point of the marina centroid versus the cube of the wind speed for the N, NE and SW wind direction.
Figure 15.
Comparison of the measured integrated discharge and modeled integrated discharge for (a) winter measurement period and (b) summer measurement period.
Figure 15.
Comparison of the measured integrated discharge and modeled integrated discharge for (a) winter measurement period and (b) summer measurement period.
Figure 16.
Model domain spatial discretization with unstructured finite volume grid on bathymetric background and locations of wave rider stations V1 (ϕ = 44°44.57′ N, λ = 13°17.98′ E) and V2 (ϕ = 45°19.37′ N, λ = 14°18.7′ E).
Figure 16.
Model domain spatial discretization with unstructured finite volume grid on bathymetric background and locations of wave rider stations V1 (ϕ = 44°44.57′ N, λ = 13°17.98′ E) and V2 (ϕ = 45°19.37′ N, λ = 14°18.7′ E).
Figure 17.
Comparison of measured and modelled time series of significant wave heights Hs at wave measurement station V1 in the northern Adriatic open-sea area (ϕ = 44°44.57′ N, λ = 13°17.98′ E).
Figure 17.
Comparison of measured and modelled time series of significant wave heights Hs at wave measurement station V1 in the northern Adriatic open-sea area (ϕ = 44°44.57′ N, λ = 13°17.98′ E).
Figure 18.
Relationship of measured and modelled (a) significant wave heights HS and (b) peak period TP against measured wind speed Vwind, under the action of wind from SSE direction in the course of 12 h (recording obtained from measurement at wave rider site in front of the main breakwater in Rijeka Harbour).
Figure 18.
Relationship of measured and modelled (a) significant wave heights HS and (b) peak period TP against measured wind speed Vwind, under the action of wind from SSE direction in the course of 12 h (recording obtained from measurement at wave rider site in front of the main breakwater in Rijeka Harbour).
Figure 19.
Comparison of measured and modelled time series of significant wave heights HS at measurement station 1 for the (a) winter and (d) summer measurement periods with corresponding wave roses from (b,e) measured and (c,f) modelled data.
Figure 19.
Comparison of measured and modelled time series of significant wave heights HS at measurement station 1 for the (a) winter and (d) summer measurement periods with corresponding wave roses from (b,e) measured and (c,f) modelled data.
Figure 20.
Field of significant wave heights for the situation of strong Sirocco wind (4 March 2017).
Figure 20.
Field of significant wave heights for the situation of strong Sirocco wind (4 March 2017).
Figure 21.
Hourly averaged field measured values of significant wave height (HS), surface elevation (SE), flushing culvert discharge measured with the PCM and wind velocity, during situations where the wave parameters were approximately equivalent.
Figure 21.
Hourly averaged field measured values of significant wave height (HS), surface elevation (SE), flushing culvert discharge measured with the PCM and wind velocity, during situations where the wave parameters were approximately equivalent.
Table 1.
Sampling resolution of the instruments deployed at the marina Opatija.
Table 1.
Sampling resolution of the instruments deployed at the marina Opatija.
Instrument | Sampling Rate | Output (Averaging) |
---|
ADCP 1, 2 | 1 s | Wave—15 min Currents—10 min |
ADCP 3, 4, 5 | 1 s | Currents—10 min |
CTD | 1 s | 10 min |
Anemometer | 1 s | 10 min |
PCM | Varies with hydraulic and physical conditions | 2 min |
Table 2.
Start date of each relevant wave situation (adopted criteria HS ≥ 0.3 m; TP ≥ 2.8 s; incident waves ranging from 90° to 180°), its duration, corresponding average significant wave height, peak period, maximum significant wave height and as wave direction recorded at ADCP 1 for the winter period.
Table 2.
Start date of each relevant wave situation (adopted criteria HS ≥ 0.3 m; TP ≥ 2.8 s; incident waves ranging from 90° to 180°), its duration, corresponding average significant wave height, peak period, maximum significant wave height and as wave direction recorded at ADCP 1 for the winter period.
Winter Measurement Campaign | Deepwater Conditions |
---|
Duration | HS-AV | TP-AV | HS-MAX | dirAV |
---|
| Situation Onset | (h) | (m) | (s) | (m) | (°) |
---|
1 | 23 February 2017 23:00 | 23 | 0.51 | 3.60 | 0.71 | 165 |
2 | 25 February 2017 3:00 | 2 | 0.45 | 3.50 | 0.47 | 100 |
3 | 28 February 2.2017 11:00 | 21 | 0.55 | 3.64 | 0.76 | 159 |
4 | 4 March 2017 11:00 | 16 | 0.65 | 4.41 | 1.08 | 161 |
5 | 6 March 2017 6:00 | 2 | 0.42 | 5.40 | 0.48 | 174 |
6 | 8 March 2017 12:00 | 5 | 0.35 | 2.90 | 0.38 | 105 |
7 | 12 March 2017 20:00 | 2 | 0.30 | 2.85 | 0.30 | 103 |
Table 3.
Start date of each relevant wave situation (adopted criteria HS ≥ 0.3 m; TP ≥ 2.8 s; incident waves ranging from 90° to 180°), its duration, corresponding average significant wave height, peak period, maximum significant wave height and as wave direction recorded at ADCP 1 for the summer period.
Table 3.
Start date of each relevant wave situation (adopted criteria HS ≥ 0.3 m; TP ≥ 2.8 s; incident waves ranging from 90° to 180°), its duration, corresponding average significant wave height, peak period, maximum significant wave height and as wave direction recorded at ADCP 1 for the summer period.
Summer Measurement Campaign | Deepwater Conditions |
---|
Duration | HS-AV | TP-AV | HS-MAX | dirAV |
---|
| Situation Onset | (h) | (m) | (s) | (m) | (°) |
---|
1 | 11 July 2017 11:00 | 2 | 0.45 | 2.91 | 0.55 | 169 |
2 | 13 July 2017 17:00 | 4 | 0.40 | 2.83 | 0.44 | 97 |
3 | 13 July 2017 23:00 | 16 | 0.42 | 3.07 | 0.46 | 104 |
4 | 24 July 2017 15:00 | 2 | 0.30 | 2.88 | 0.32 | 181 |
5 | 27 July 2017 16:00 | 2 | 0.30 | 2.68 | 0.31 | 175 |
6 | 6 August 2017 19:00 | 3 | 0.30 | 3.31 | 0.34 | 108 |
7 | 7 August 2017 1:00 | 2 | 0.30 | 3.3 | 0.34 | 108 |
8 | 7 August 2017 10:00 | 5 | 0.43 | 2.74 | 0.43 | 111 |
9 | 20 August 2017 6:00 | 15 | 0.44 | 3.11 | 0.48 | 105 |
10 | 21 August 2017 11:00 | 2 | 0.38 | 2.93 | 0.43 | 104 |
Table 4.
Normalized root-mean-square error (NRMSE) and Nash-Sutcliffe efficiency index of the measured and modelled velocity values.
Table 4.
Normalized root-mean-square error (NRMSE) and Nash-Sutcliffe efficiency index of the measured and modelled velocity values.
ADCP-1 (−6 m) |
---|
| Winter | Summer |
---|
| u | v | u | v |
---|
NRMSE | 1.10 | 0.98 | 0.94 | 0.86 |
NSE | −0.36 | −0.01 | 0.12 | 0.25 |
Table 5.
An average number of hours per year (and per season) with recognised wind waves assuming criteria: HS > 0.3 m and TP > 2.8 s and incident wave direction in the band from 90° (E) to 180° (S) at the location of the marina Opatija.
Table 5.
An average number of hours per year (and per season) with recognised wind waves assuming criteria: HS > 0.3 m and TP > 2.8 s and incident wave direction in the band from 90° (E) to 180° (S) at the location of the marina Opatija.
| HS > 0.3 m, TP > 2.8 s, dir 90–180° | Winter (November–April) | Summer (May–October) |
---|
Year | Total Duration (h) | (h) | (h) |
---|
1992 | 820 | 450 | 370 |
1993 | 752 | 263 | 489 |
1994 | 820 | 475 | 345 |
1995 | 765 | 380 | 385 |
1996 | 760 | 476 | 284 |
1997 | 695 | 311 | 384 |
1998 | 675 | 411 | 264 |
1999 | 760 | 476 | 284 |
2000 | 838 | 411 | 427 |
2001 | 1128 | 712 | 416 |
average | 801 | 437 | 365 |
Table 6.
Field measured discharge values through the flushing culvert and predicted discharge values according to the proposed Equation (1), in regards to the present wave parameters.
Table 6.
Field measured discharge values through the flushing culvert and predicted discharge values according to the proposed Equation (1), in regards to the present wave parameters.
Date | HS-M [m] | TP-M [s] | LP-M [m] | HS-P [m] | TP-P [s] | LP-P [m] | SE [m] | QP [m3/s] | QP-PCM [m3/s] |
---|
28 February 2017 | 0.06 | 0.98 | 1.50 | 0.60 | 3.10 | 15.0 | −0.15 | 0.04 | 0.08 |
4 March 2017 | 0.06 | 0.98 | 1.50 | 0.60 | 3.10 | 15.0 | 0.17 | −0.07 | −0.02 |
Table 7.
Statistical values regarding the flow measured inside the flushing culvert.
Table 7.
Statistical values regarding the flow measured inside the flushing culvert.
| Measurement Duration T (h) | 1 Culvert Absolute Sum |V1-culvert| (m3) | 1 Culvert Mean abs. Discharge |V1-culvert|/T (m3/h) | Wave sit. Duration Tw (h) | Wave sit. Absolute Sum |V1-waves| (m3) | Wave sit. Mean abs. Discharge |V1-waves|/Tw (m3/h) |
---|
Winter | 786 | 50,213 | 64 | 71 | 7406 | 104 |
Summer | 1340 | 76,966 | 57 | 53 | 3166 | 60 |