Water Reservoirs in Plans to Improve Navigability of the Lower Section of the Vistula
Abstract
:1. Introduction
- Right after World War II, the “Cascade of the Lower Vistula” program was prepared, under which the only barrage in Włocławek was built on the lower section of the Vistula, and preparations for the construction site for the construction of another barrage in Ciechocinek were started;
- In the years 1968–1971, the “Project of Comprehensive Development of the Water System of the Vistula River” was developed;
- At the end of the 1970s, the “Comprehensive Program for the Development and Use of the Vistula” was prepared (the so-called “Vistula Program”) [10].
2. Materials and Methods
2.1. Study Area
- From the Włocławek barrage to the mouth of the Tążyna River (km 674 + 850–718 + 000)—Ib;
- From the mouth of the Tążyna River to the town of Tczew (km 718 + 000–910 + 000)—II;
- From the town of Tczew to the border with internal sea waters (km 910 + 000–942 + 300)—III (Figure 1).
- The seaport in Gdansk through the Martwa Wisła (km 0 + 000–11 + 500)—Vb;
- The seaport in Elbląg through the Szkarpawa (km 0 + 000–25 + 400) or the Nogat (km 0 + 000–62 + 000) and the Jagiellonian Canal (km 0 + 000–5 + 900)—II;
- The Oder and Western European waterways through the Vistula-Oder link (Brda, Bydgoszcz Canal, Noteć and Warta)—section of the Noteć from the junction with the Bydgoszcz Canal to the mouth of the Drawa Ib, and the remaining II,
- The Włocławek reservoir—Va, as well as the section of the Vistula River located upstream of it—Ib.
2.2. Data
- Shipping benefits from the carriage of goods (calculated as financial benefits from the transport of cargo by ships on the waterway): transport activity [tons] × waterway length [km] × potential rate [PLN/ton-kilometers];
- Shipping benefits from the use of locks (treated as obtaining fees for the use of waterway infrastructure by inland navigation): (transport activity [tons]/medium barge capacity [1500 tons]) × number of locks × potential rate [PLN];
- Benefits from flood protection (understood as the monetary value of flood risk reduction): possible flood losses [PLN] × flood mitigation factor [%]/flood frequency [years].
- Transport activity: the volume of cargo transported by inland navigation after the investment [tons];
- Waterway length: the length of the navigable route on which inland navigation is carried out (km);
- Medium barge capacity: the load capacity of 1500 t was assumed, while pushed sets can transport up to 4000 t;
- Number of locks: all five shipping locks were taken into account;
- Potential rate: applicable in 2022 costs for the use of waterways and shipping locks [PLN/ton-kilometers or PLN];
- Possible flood losses: possible amount of losses due to river floods with a natural rising mechanism and as a result of overflowing or destroying flood embankments (PLN);
- Flood mitigation factor: coefficient of reducing flood losses as a result of investment implementation (%);
- Flood frequency: average period of flood occurrence (years).
3. Results
3.1. Existing Navigation Conditions
3.2. Hydrotechnical Infrastructure
3.3. Achieving International Shipping Parameters
- Adapting the bowls of the reservoirs to the existing terrain conditions and limiting them to the inter-embankment area;
- Maintaining the normal level of damming not higher than the existing water table in the cross-section of the barrage, which will ensure conditions similar to those existing for flood flows (there will be no clear damming up);
- Maximum reduction of bottom erosion downstream from the designed barrages;
- Obtaining the capacity of gravity drainage for collapse areas and the location of the barrages upstream of larger tributaries [11].
3.4. Economic Benefits of Reservoir Construction
4. Discussion
5. Conclusions
- Inland water transport: direct increase per year. Transport performance up to 4.31 billion ton-kilometers, the weight of transported loads up to 14.11 million tons and the number of uses of locks up to 47 thousand, which will translate into estimated revenues of PLN 28.4 million;
- Flood protection: average annual savings due to avoiding potential flood losses are set at PLN 3222.3 million and appropriate conditions for a possible icebreaking operation will be ensured;
- Retention and the related counteracting effects of drought: 1.2 billion m3 of water may be stored (currently the capacity of retention reservoirs in Poland is about 4.4 billion m3), enabling the rebuilding of water resources and their controlled management, and in financial terms, benefits related to savings in avoiding forest fires in the amount of PLN 224.3 million and limiting expenditure on counteracting drought in agriculture oscillating around PLN 20.1 million.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Name | Parameter Values for a Given Class of Waterway (m) | ||||||
---|---|---|---|---|---|---|---|
Ia | Ib | II | III | IV | Va | Vb | |
Width of the navigable route | 15 | 20 | 30 | 40 | 40 | 50 | 50 |
Fairway depth | 1.2 | 1.6 | 1.8 | 1.8 | 2.8 | 2.8 | 2.8 |
Radius of the arc of the fairway axis | 100 | 200 | 300 | 500 | 650 | 650 | 800 |
Fairway Depth (m) | Approximate Number of Days in a Year with a Given Fairway Depth |
---|---|
1.0 | 280 |
1.2 | 240 |
1.4 | 180 |
1.6 | 100 |
1.8 | 60 |
Year | Number of Days below 42.80 m above sea level |
---|---|
2019 (July–December) | 92 |
2020 | 52 |
2021 | 2 |
2022 (January–May) | 0 |
Name | Location (km of the Vistula River Waterway) | Water level (m above sea level) | Capacity at NPP (million m3) | Flood Capacity (million m3) | Area at NPP (km2) |
---|---|---|---|---|---|
Siarzewo | 706 + 380 | 46.0 | 135.4 | 15.8 | 30.0 |
Solec Kujawski | 758 + 000 | 37.5 | 241.5 | 56.8 | 46.1 |
Chełmno | 801 + 550 | 29.0 | 215.9 | 58.0 | 41.2 |
Grudziądz | 829 + 500 | 22.0 | 99.5 | 39.9 | 19.0 |
Gniew | 876 + 300 | 15.0 | 248.4 | 59.8 | 47.5 |
Type of Payment | Rate (PLN) | Calculated Value | Estimated Revenues (PLN million) |
---|---|---|---|
Carriage of goods | 0.0064 | 4,306,727,387 ton-kilometers | 27.6 |
Use of locks | 17.42 | 47.033 lock operations | 0.8 |
Total | - | - | 28.4 |
Benefits | Total Value (PLN billion) |
---|---|
Transportation cost savings for cargo owners | 0.295 |
Accident cost savings | 0.046 |
Climate change cost savings | 0.012 |
Noise cost savings | 0.011 |
Congestion cost savings | 0.061 |
Revenues from the sale of electricity | 0.255 |
CO2 emission savings in electricity production | 0.089 |
Benefits from increased spendings in tourism | 0.192 |
Benefits | Total Value (PLN billion) | % Share of Benefits |
---|---|---|
Transportation cost savings for cargo owners | 24.81 | 22.80 |
Accident cost savings | 6.79 | 6.24 |
Cost savings related to air pollution | 0.56 | 0.51 |
Climate change cost savings | 2.01 | 1.85 |
Noise cost savings | 1.41 | 1.29 |
Congestion cost savings | 9.19 | 8.44 |
Savings related to flood losses | 21.25 | 19.54 |
Forest fire cost savings | 5.48 | 5.04 |
Drought cost savings in agriculture | 0.10 | 0.10 |
Revenues from the sale of electricity | 7.16 | 6.58 |
CO2 emission savings in electricity production | 3.43 | 3.15 |
Benefits from increased spendings in tourism | 9.51 | 8.74 |
Economic residual value | 17.10 | 15.72 |
Total | 108.79 | 100.00 |
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Pieron, Ł.; Woś, K.; Wrzosek, K. Water Reservoirs in Plans to Improve Navigability of the Lower Section of the Vistula. Water 2022, 14, 4042. https://doi.org/10.3390/w14244042
Pieron Ł, Woś K, Wrzosek K. Water Reservoirs in Plans to Improve Navigability of the Lower Section of the Vistula. Water. 2022; 14(24):4042. https://doi.org/10.3390/w14244042
Chicago/Turabian StylePieron, Łukasz, Krzysztof Woś, and Krzysztof Wrzosek. 2022. "Water Reservoirs in Plans to Improve Navigability of the Lower Section of the Vistula" Water 14, no. 24: 4042. https://doi.org/10.3390/w14244042
APA StylePieron, Ł., Woś, K., & Wrzosek, K. (2022). Water Reservoirs in Plans to Improve Navigability of the Lower Section of the Vistula. Water, 14(24), 4042. https://doi.org/10.3390/w14244042