Sediment Transport and Silting Rate in a Microtidal Estuary: Case Study of Osellino Canal (Venice Lagoon, Italy)
Abstract
1. Introduction
2. Materials and Methods
2.1. Study Site
2.2. Measuring Stations
2.3. Instrument Calibration Procedure
2.4. Bathymetric Surveys
2.5. Precipitation Data and Flood Event Identification
3. Results and Discussion
3.1. Sediment Retention in the Estuarine System
3.1.1. Bathymetric Evolution and Siltation Patterns
3.1.2. Bathymetry-Based Annual Sediment Retention Estimate
3.2. Water and Sediment Fluxes: Patterns and Variability
3.2.1. Descriptive Statistics of Hydrological and Sediment Transport Parameters
3.2.2. Q and SSL Temporal Patterns
3.2.3. Impact of Flood Events on Annual Q and SSL
3.3. Rainfall-Runoff Analysis
4. Conclusions
- Hydrological Shift: The system has transitioned from a near-balanced rainfall-runoff regime (as observed in 1999) to a highly regulated state. The current anomalous runoff coefficients (δ ≫ 1, peaking near 13 during dry periods) demonstrate that hydrodynamics is now primarily sustained by anthropogenic water management and external inputs rather than precipitation.
- Advection-Dominated Export: A strong linearity between monthly runoff and suspended sediment load confirms an advection-dominated regime. Sediment export is regulated primarily by the hydrodynamic volume exchanged (averaging 2.1 m3 s−1) rather than by fluctuations in sediment supply. While tidal forces continuously rework an internal sediment pool, the net export to the lagoon remains constrained by the system’s hydraulic capacity.
- Event-Driven Transport: Analysis of regression residuals for the monthly runoff-load relationship highlights a dual pattern: a systematic sediment deficit during average conditions—where settling and tidal trapping prevail—and episodic “surplus” export during flood events. Despite representing only 4% of the study period, these events account for 23% of the total annual sediment load (~2900 t).
- Siltation and Trapping Efficiency: The estuarine system acts as a significant sediment trap, retaining approximately 12% of the gross annual sediment input. This has resulted in a net accumulation of 400 t yr−1 and aggradation rates exceeding 4 cm yr−1 in key sectors, markedly reducing the channel hydraulic efficiency.
- Infrastructural Drivers: The long-term malfunction of the miter gates at Le Rotte is identified as a primary driver of this evolution. The inability to regulate tidal fluxes has forced freshwater discharge exclusively through the main mouth while causing stagnation and unregulated tidal intrusion in the secondary branch.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A. Calibration Performance and Uncertainty Assessment
Appendix A.1. Performance of Q and SSC Calibration

Appendix A.2. Vertical Uncertainty and DoD Limit of Detection
Appendix A.3. Volumetric Uncertainty Comparison and Method Selection
Appendix B. Flow Partitioning at Le Rotte Based on Field Measurements


Appendix C. Dry Bulk Density and Sediment Mass Assessment
Appendix C.1. Dry Bulk Density Estimation from Sediment Core Analysis
- Porosity (Φ) from ω:where ω is expressed as a mass fraction (0–1);
- Dry bulk density (ρDB):
Appendix C.2. Total Sediment Mass and Uncertainty Propagation
Appendix D. Supplementary Statistical Analyses
| RD | TR | MR | mR | FD | Qpeak | Qavg | FR | SSLev | EMC | SSLrate | |
|---|---|---|---|---|---|---|---|---|---|---|---|
| h | 103 m3 | mm h−1 | 103 m3 h−1 | h | m3 s−1 | m3 s−1 | 103 m3 | t | mg L−1 | t h−1 | |
| RD | 1.00 | ||||||||||
| TR | 0.69 | 1.00 | |||||||||
| MR | 0.10 | 0.65 | 1.00 | ||||||||
| mR | −0.50 | 0.16 | 0.52 | 1.00 | |||||||
| FD | 0.78 | 0.61 | 0.26 | −0.44 | 1.00 | ||||||
| Qpeak | 0.07 | 0.34 | 0.33 | 0.55 | −0.08 | 1.00 | |||||
| Qavg | −0.19 | −0.13 | −0.33 | 0.11 | −0.49 | 0.21 | 1.00 | ||||
| FR | 0.79 | 0.64 | 0.18 | −0.44 | 0.94 | 0.03 | −0.19 | 1.00 | |||
| SSLev | 0.50 | 0.52 | 0.21 | −0.26 | 0.71 | 0.14 | 0.10 | 0.85 | 1.00 | ||
| EMC | −0.22 | 0.07 | 0.19 | 0.26 | −0.16 | 0.34 | 0.49 | 0.00 | 0.49 | 1.00 | |
| SSLrate | −0.24 | −0.02 | −0.02 | 0.20 | −0.31 | 0.31 | 0.77 | −0.06 | 0.42 | 0.93 | 1.00 |

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| Variable | Units | Q > 0 | h | Q < 0 | h |
|---|---|---|---|---|---|
| (Q > 0) | (Q < 0) | ||||
| mQ | m3 s−1 | 4.7 ± 3.0 | 11,900 | 2.8 ± 2.0 | 6320 |
| MQ | m3 s−1 | 28.6 | – | 14.0 (21.3) | – |
| mSSC | mg L−1 | 35 ± 22 a | 11,000 | 28 ± 25 | 6300 |
| MSSC | mg L−1 | 340 | – | 290 | – |
| mSSL | kg 15 min −1 b | 170 ± 190 | 11,000 | 80 ± 100 | 6100 |
| MSSL | kg 15 min −1 b | 2900 | – | 1500 (2300) | – |
| Event | Timestamp | RD | TR | MR | mR | FD | Qpeak | Qavg | FR | SSLev | EMC | SSLrate |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| No. | -- | h | 103 m3 | mm h−1 | 103 m3 h−1 | h | m3 s−1 | m3 s−1 | 103 m3 | t | mg L−1 | t h−1 |
| 1 | 13/11/19 12:15 | 6 | 1820 | 2.1 | 303 | 19.5 | 17.8 | 7.8 | 547 | 37 | 67 | 1.9 |
| 2 | 16/11/19 02:30 | 22 | 1260 | 3.3 | 57.3 | 34.0 | 15.8 | 6.6 | 810 | 48 | 59 | 1.4 |
| 3 | 17/11/19 19:45 | 7 | 871 | 6.6 | 124 | 33.8 | 13.7 | 7.4 | 899 | 47 | 53 | 1.4 |
| 4 | 24/11/19 11:15 | 19 | 1500 | 5.9 | 78.9 | 32.8 | 17.0 | 8.1 | 959 | 80 | 84 | 2.5 |
| 5 | 22/12/19 11:30 | 47 | 3060 | 8.1 | 65.1 | 67.0 | 28.5 | 12.9 | 3120 | 310 | 100 | 4.7 |
| 6 | 03/03/20 03:15 | 13 | 1480 | 4.9 | 114 | 53.5 | 16.6 | 6.2 | 1200 | 70 | 58 | 1.3 |
| 7 | 06/03/20 08:30 | 9 | 944 | 3.8 | 105 | 19.0 | 16.1 | 8.5 | 586 | 37 | 63 | 1.9 |
| 8 | 08/06/20 00:30 | 46 | 3560 | 19.7 | 77.4 | 80.5 | 14.4 | 5.7 | 1650 | 92 | 56 | 1.1 |
| 9 | 10/12/20 04:15 | 30 | 1750 | 5.8 | 58.3 | 56.0 | 18.1 | 6.7 | 1360 | 73 | 54 | 1.3 |
| 10 | 28/12/20 23:45 | 7 | 1130 | 3.1 | 161 | 20.8 | 16.0 | 7.7 | 577 | 27 | 47 | 1.3 |
| 11 | 06/01/21 05:00 | 11 | 671 | 3.3 | 61.0 | 45.3 | 14.4 | 6.2 | 1020 | 49 | 48 | 1.1 |
| 12 | 23/01/21 02:30 | 39 | 2030 | 5.9 | 52.1 | 51.8 | 16.9 | 7.6 | 1420 | 98 | 69 | 1.9 |
| 13 | 13/04/21 00:15 | 68 | 4470 | 8.3 | 65.7 | 68.0 | 17.9 | 7.6 | 1830 | 83 | 46 | 1.2 |
| 14 | 11/05/21 23:30 | 19 | 4010 | 26.1 | 211 | 43.5 | 16.5 | 7.1 | 1120 | 78 | 70 | 1.8 |
| 15 | 24/05/21 23:15 | 17 | 2410 | 6.9 | 142 | 55.0 | 17.1 | 8.5 | 1700 | 140 | 81 | 2.5 |
| 16 | 04/07/21 18:45 | 7 | 2630 | 29.5 | 376 | 33.8 | 20.5 | 6.7 | 823 | 55 | 67 | 1.6 |
| 2019 | 2020 | 2021 | 1999 | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Montd | Runoff | Rainfall | δ | Runoff | Rainfall | δ | Runoff | Rainfall | δ | Runoff | Rainfall | δ |
| 106 m3 | 106 m3 | 106 m3 | 106 m3 | 106 m3 | 106 m3 | 106 m3 | 106 m3 | |||||
| January | - | - | - | 7.49 | 0.93 | 8.07 | 9.77 | 4.63 | 2.11 | 2.57 | 1.89 | 1.36 |
| February | - | - | - | 5.63 | 0.46 | 12.3 | 6.54 | 1.44 | 4.55 | 2.22 | 1.06 | 2.09 |
| March | - | - | - | 5.28 | 3.88 | 1.36 | 5.28 | 0.40 | 13.1 | 2.83 | 2.93 | 0.97 |
| April | - | - | - | 2.82 | 2.31 | 1.22 | 6.31 | 4.91 | 1.29 | 5.23 | 5.16 | 1.01 |
| May | - | - | - | 2.79 | 2.43 | 1.15 | 8.36 | 9.18 | 0.91 | 1.89 | 3.23 | 0.58 |
| June | - | - | - | 4.42 | 7.67 | 0.58 | 4.67 | 2.25 | 2.08 | 5.12 | 8.19 | 0.62 |
| July | - | - | - | 1.91 | 1.99 | 0.96 | 5.16 | 5.78 | 0.89 | 2.89 | 4.36 | 0.66 |
| August | - | - | - | 3.03 | 5.88 | 0.51 | (1.36) 1 | 2.53 (0.98) 1 | (1.39) 1 | 2.74 | 3.29 | 0.83 |
| September | 4.25 | 3.48 | 1.22 | 2.81 | 1.52 | 1.85 | - | 1.81 | - | 2.34 | 2.50 | 0.94 |
| October | 4.57 | 2.45 | 1.86 | 4.75 | 5.88 | 0.81 | - | 1.40 | - | 5.03 | 6.77 | 0.74 |
| November | 8.01 | 10.4 | 0.77 | 5.59 | 0.87 | 6.43 | (2.99) 1 | 5.61 (2.81) 1 | (1.06) 1 | 8.99 | 7.16 | 1.26 |
| December | 10.9 | 4.60 | 2.36 | 8.61 | 6.78 | 1.27 | 6.08 | 2.13 | 2.85 | 4.36 | 2.95 | 1.48 |
| Monthly mean | 6.92 | 5.22 | 1.56 | 4.60 | 3.38 | 3.04 | (6.52) 2 | 3.51 (3.84) 2 | (3.47) 2 | 3.85 | 4.12 | 1.05 |
| SD | 3.13 | 3.53 | 0.70 | 2.05 | 2.54 | 3.80 | (1.73) 2 | 2.54 (2.86) 2 | (4.06) 2 | 2.03 | 2.24 | 0.44 |
| Period total | 27.7 | 20.9 | 1.33 3 | 55.1 | 40.6 | 1.36 3 | (52.2) 2 | 42.1 (30.7) 2 | (1.70) 2, 3 | 46.2 | 49.5 | 0.93 3 |
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Zonta, R.; Dominik, J.; Loizeau, J.-L.; Leoni, S.; Manfè, G.; Lorenzetti, G.; Scarpa, G.M.; Cassin, D.; Zaggia, L. Sediment Transport and Silting Rate in a Microtidal Estuary: Case Study of Osellino Canal (Venice Lagoon, Italy). Environments 2026, 13, 112. https://doi.org/10.3390/environments13020112
Zonta R, Dominik J, Loizeau J-L, Leoni S, Manfè G, Lorenzetti G, Scarpa GM, Cassin D, Zaggia L. Sediment Transport and Silting Rate in a Microtidal Estuary: Case Study of Osellino Canal (Venice Lagoon, Italy). Environments. 2026; 13(2):112. https://doi.org/10.3390/environments13020112
Chicago/Turabian StyleZonta, Roberto, Janusz Dominik, Jean-Luc Loizeau, Simone Leoni, Giorgia Manfè, Giuliano Lorenzetti, Gian Marco Scarpa, Daniele Cassin, and Luca Zaggia. 2026. "Sediment Transport and Silting Rate in a Microtidal Estuary: Case Study of Osellino Canal (Venice Lagoon, Italy)" Environments 13, no. 2: 112. https://doi.org/10.3390/environments13020112
APA StyleZonta, R., Dominik, J., Loizeau, J.-L., Leoni, S., Manfè, G., Lorenzetti, G., Scarpa, G. M., Cassin, D., & Zaggia, L. (2026). Sediment Transport and Silting Rate in a Microtidal Estuary: Case Study of Osellino Canal (Venice Lagoon, Italy). Environments, 13(2), 112. https://doi.org/10.3390/environments13020112

