dredge_material_from_rotterdam_-_where_do_you_put_it
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| dredge_material_from_rotterdam_-_where_do_you_put_it [2025/12/21 16:58] – created nefcadmin | dredge_material_from_rotterdam_-_where_do_you_put_it [2025/12/21 17:37] (current) – nefcadmin | ||
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| - | Dredged material from Rotterdam: where do you put it? | + | ====== |
| Rotterdam has the largest port in the world. This port forms an artificial sluice in the coastal zone and continuously silts up under the influence of weather and tides. Maintaining such a port requires extensive dredging. Therefore, large ships dredge the harbor and the shipping channel around the clock to maintain their accessibility. Ships dump most of the dredged harbor sediment at sea. The contaminated sediment is stored in the depot "De Slufter." | Rotterdam has the largest port in the world. This port forms an artificial sluice in the coastal zone and continuously silts up under the influence of weather and tides. Maintaining such a port requires extensive dredging. Therefore, large ships dredge the harbor and the shipping channel around the clock to maintain their accessibility. Ships dump most of the dredged harbor sediment at sea. The contaminated sediment is stored in the depot "De Slufter." | ||
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| After the new quays are put into use, the actual impact on the environment and mass flows must be investigated. Below is a report on the research, with remarkable results. | After the new quays are put into use, the actual impact on the environment and mass flows must be investigated. Below is a report on the research, with remarkable results. | ||
| - | An unnatural hole | + | ===== An unnatural hole ===== |
| - | In the past, the Rhine and the Meuse simply flowed into the North Sea. The suspended solid particles in the water were washed away | + | In the past, the Rhine and the Meuse simply flowed into the North Sea. The suspended solid particles in the water were washed away just go with it. Now, there' |
| Figure 1: The location of the three quays on the North Sea | Figure 1: The location of the three quays on the North Sea | ||
| - | 570 | + | {{ : |
| - | Loswal Northwest | + | ===== The law: Environmental impact assessment |
| - | + | ||
| - | 5770 | + | |
| - | + | ||
| - | Deepened Loswal | + | |
| - | + | ||
| - | -20m | + | |
| - | + | ||
| - | 580 | + | |
| - | + | ||
| - | Loswal North | + | |
| - | + | ||
| - | The Hague | + | |
| - | + | ||
| - | Cars would be crammed in. This would require a line of trucks spanning half the equator each year. | + | |
| - | + | ||
| - | The law: Environmental impact assessment | + | |
| - | + | ||
| - | Just go with it. Now, there' | + | |
| - | + | ||
| - | 590 | + | |
| Due to years of dumping dredged material, the sea at Loswal Noord was only 10 meters deep in some places. Furthermore, | Due to years of dumping dredged material, the sea at Loswal Noord was only 10 meters deep in some places. Furthermore, | ||
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| The first and oldest method is the theoretical approach. A calculation model was used to simulate reality as closely as possible. However, the old calculation model from 1991 yielded different results than the improved model from 1999. The calculation model distinguished four mass flows: | The first and oldest method is the theoretical approach. A calculation model was used to simulate reality as closely as possible. However, the old calculation model from 1991 yielded different results than the improved model from 1999. The calculation model distinguished four mass flows: | ||
| - | the total mass of dredged material, i.e. sand plus | + | * the total mass of dredged material, i.e. sand plus sludge (W1) and the sludge mass (W2) that flowed away from the unloading quay. Furthermore, |
| + | * Secondly, we examined whether less dredging occurred after Loswal Noordwest came into operation. Dredging efforts decreased by approximately 40%. However, this cannot be considered a direct consequence of the transition to a different disposal site. The period is too short for that. The annual dredging volume varies considerably, | ||
| + | * Third, the amount of silt in the dredged material and the amount ultimately remaining on the quay were measured. The hopper and the harbor bottom contained 38 to 55% silt, and the Northwest Quay contained 18% silt. Assuming that silt but not sand flows away from the quay, it can be calculated that 25 to 46% of the total amount of dredged material discharged flows away from the quay. | ||
| + | * Fourth, we followed an accounting approach: (i) first determine how much dredged material was dumped on the unloading quay, (ii) then measure the volume of the dumping pile on the unloading quay, (iii) and finally, determine the dry density of the dredged material on the unloading quay. From (ii) and (iii), the amount of dredged material remaining on the dumping pile is determined. Calculations show that 50% of the dumped dredged material has disappeared from the Northwest Unloading Quay and 51% from the Deepened Unloading Quay. Figure 2 shows the results from the Northwest Unloading Quay. 78% and 70% of the sludge, respectively, | ||
| + | * Finally, the fifth method examined the amount of sediment lying on the seabed south of Loswal Noordwest due to the dumping. If it can be assumed that the amount of sediment on the seabed is directly proportional to the amount that flowed southward to the port via the seawater, then it follows that 17% of the dumped dredged material flows back to the port and shipping channel. Of the sediment, 27% has flowed back. | ||
| - | Sludge (W1) and the sludge mass (W2) that flowed away from the unloading quay. Furthermore, | + | ===== Effect on the environment |
| - | + | ||
| - | Secondly, we examined whether less dredging occurred after Loswal Noordwest came into operation. Dredging efforts decreased by approximately 40%. However, this cannot be considered a direct consequence of the transition to a different disposal site. The period is too short for that. The annual dredging volume varies considerably, | + | |
| - | + | ||
| - | Third, the amount of silt in the dredged material and the amount ultimately remaining on the quay were measured. The hopper and the harbor bottom contained 38 to 55% silt, and the Northwest Quay contained 18% silt. Assuming that silt but not sand flows away from the quay, it can be calculated that 25 to 46% of the total amount of dredged material discharged flows away from the quay. | + | |
| - | + | ||
| - | Fourth, we followed an accounting approach: (i) first determine how much dredged material was dumped on the unloading quay, (ii) then measure the volume of the dumping pile on the unloading quay, (iii) and finally, determine the dry density of the dredged material on the unloading quay. From (ii) and (iii), the amount of dredged material remaining on the dumping pile is determined. Calculations show that 50% of the dumped dredged material has disappeared from the Northwest Unloading Quay and 51% from the Deepened Unloading Quay. Figure 2 shows the results from the Northwest Unloading Quay. 78% and 70% of the sludge, respectively, | + | |
| - | + | ||
| - | 35 | + | |
| - | + | ||
| - | 30 | + | |
| - | + | ||
| - | Finally, the fifth method examined the amount of sediment lying on the seabed south of Loswal Noordwest due to the dumping. If it can be assumed that the amount of sediment on the seabed is directly proportional to the amount that flowed southward to the port via the seawater, then it follows that 17% of the dumped dredged material flows back to the port and shipping channel. Of the sediment, 27% has flowed back. | + | |
| - | + | ||
| - | Effect on the environment | + | |
| Four years after the dumping was stopped, the soil life on Loswal Noord has largely | Four years after the dumping was stopped, the soil life on Loswal Noord has largely | ||
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| Chemical contamination on the bottom of the quays is limited. Levels of tributyltin (5x), cadmium (3x), mercury (3x), and organic micropollutants (3x) are higher than in the undisturbed seabed. Levels of other heavy metals are not elevated. The levels of metals and organic micropollutants in the dredged material on the seabed meet the ' | Chemical contamination on the bottom of the quays is limited. Levels of tributyltin (5x), cadmium (3x), mercury (3x), and organic micropollutants (3x) are higher than in the undisturbed seabed. Levels of other heavy metals are not elevated. The levels of metals and organic micropollutants in the dredged material on the seabed meet the ' | ||
| - | Rigorously different? | + | ===== Rigorously different? |
| To date, dredged material has been dumped on quays. This method differs significantly from the " | To date, dredged material has been dumped on quays. This method differs significantly from the " | ||
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| Benthic organisms are accustomed to such disturbance. Moreover, half of that layer disappears over time. If dispersal over a large area is combined with tidal-dependent dumping (sailing far at low tide and staying close to home at high tide), dredging might also be cheaper because the sailing distance would decrease. | Benthic organisms are accustomed to such disturbance. Moreover, half of that layer disappears over time. If dispersal over a large area is combined with tidal-dependent dumping (sailing far at low tide and staying close to home at high tide), dredging might also be cheaper because the sailing distance would decrease. | ||
| - | Loswal Noordwest | + | {{ : |
| - | Table 1 | + | Fig. 2 Loswal Noordwest, dredged material outflow percentage |
| + | |||
| + | **Table 1** | ||
| The results of the outflow percentages (what percentage flows away from the unloading quay) and return percentages (what percentage flows back to the port) from Unloading Quay North, Northwest and the Deepened Unloading Quay according to model calculation for dredged material and for the silt fraction (<63 µm) from dredged material. | The results of the outflow percentages (what percentage flows away from the unloading quay) and return percentages (what percentage flows back to the port) from Unloading Quay North, Northwest and the Deepened Unloading Quay according to model calculation for dredged material and for the silt fraction (<63 µm) from dredged material. | ||
| + | |||
| + | ^Model Calculation^Outflow rate^^Return rate^^ | ||
| + | ||W1|W2|R1|R2| | ||
| + | |**Loswal Noord** Model 1991(MER) - Average conditions Model 1999|50%|80%|32%|44%| | ||
| + | |- Average conditions Loswal Northwast Model 1991 (MER)| | |44+/-22%| | | ||
| + | |- Average conditions model - 1999|29%|68%|0%|0%| | ||
| + | |- Average conditions|24 - 48%|42 - 84%|16+/ | ||
| + | |- Average conditions + storm| | |13+/ | ||
| + | |Deepened discharge Wharf Model 1991 (MER) - Average conditions|8%|20%|3%|7%| | ||
| Sandeh Stutterheim, | Sandeh Stutterheim, | ||
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| *) Request DONAR files by email to: basisinfodesk@rikz.rws.minvenw.nl. | *) Request DONAR files by email to: basisinfodesk@rikz.rws.minvenw.nl. | ||
| - | EXECUTION | ||
| - | The Sandwich Construction: | + | ===== The Sandwich Construction: |
| Nationally, there is a strong focus on limiting the volume of dredged material that must be disposed of in a depot. Sandy material is separated, while other, less sandy material is matured into soil. This reduces the volume of dredged material that needs to be disposed of. If a useful application can be found for the resulting sand and matured clay, the circle will be complete. Whether reusing dredged material is truly a solution for optimal use of depot space depends on the sales of the resulting products. A demonstration project was recently launched near the Slufter depot on the Maasvlakte. This project aims to boost the sales of products made from dredged material. | Nationally, there is a strong focus on limiting the volume of dredged material that must be disposed of in a depot. Sandy material is separated, while other, less sandy material is matured into soil. This reduces the volume of dredged material that needs to be disposed of. If a useful application can be found for the resulting sand and matured clay, the circle will be complete. Whether reusing dredged material is truly a solution for optimal use of depot space depends on the sales of the resulting products. A demonstration project was recently launched near the Slufter depot on the Maasvlakte. This project aims to boost the sales of products made from dredged material. | ||
dredge_material_from_rotterdam_-_where_do_you_put_it.1766336312.txt.gz · Last modified: by nefcadmin
