Spatial and Temporal Effects of Irrigation Canals Rehabilitation on the Land and Crop Yields, a Case Study: The Nile Delta, Egypt
Abstract
:1. Introduction
2. Materials and Methods
2.1. The Study Area
2.1.1. Surface Water System in the Study Area
2.1.2. Groundwater System in the Study Area
2.1.3. Interaction between the Surface and Groundwater Systems and Discharge in the Study Area
2.2. Numerical Modeling
- q: specific discharge (m3/day/m)
- : hydraulic conductivity (m/day)
- : gradient of the total hydraulic head (m/m)
- : total head , ie
- h: pressure head
- y: elevation
- : hydraulic conductivity in the x-direction
- : hydraulic conductivity in the y-direction
- : applied boundary flux
- : volumetric water content (for clay = 45% to 55%)
- t: time
- k: element property matrix (includes material properties and volume)
- : nodal total head
- Q: nodal flow
3. Methodology
3.1. Unlined Canals
3.2. Lined Canals
3.3. Lined Canals with a Drainage Pipe
3.4. Model Geometry and the Grid
3.5. Properties of Material and Boundary Conditions
3.6. Initial Conditions
- Steady state analysis (parental analysis) or initial conditions, then
- Transient analysis
3.7. Root Zone
3.8. Model Calibration
4. Results
4.1. Total Head and Velocity Vectors in the Steady State
4.2. Pore Water Pressure at Different Sections of the Studied Canal
4.3. Seepage at Different Sections of the Studied Canal
- v: velocity
- K: hydraulic conductivity
- i: hydraulic gradient
- n: porosity
4.3.1. Seepage along the Side Slope for the Sero Canal at 1.00 km
4.3.2. Seepage along the Side Slope for the Sero Canal at 7.00 km
4.3.3. Seepage along the Side Slope for the Sero Canal at 10.55 km
4.3.4. Seepage along the Side Slope for the Dafan Canal at 17.50 km
4.3.5. Seepage along the Side Slope for the New-Aslogy Canal at 1.50 km
4.4. Seepage along the Downstream of the Embankment at Different Sections of the Studied Canal
4.5. The Effect of the Lining on the Root Zone
4.6. The Effect of the Embankment Width
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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The Canal | Length (km) | Zone | Pick Point | Longitude | Latitude |
---|---|---|---|---|---|
Sero | 11.155 | Abu Kabir | end | 31.721° | 30.835° |
Dafan | 36.899 | Awlad-sakr | inlet | 31.706° | 30.931° |
New-Aslogy | 6.187 | Zagazig | inlet | 31.482° | 30.576° |
Canal | Section (km) | Side Slope | Surface Water Level | Ground-Water Level | Bed Width (m) | Bed Level | Road Width (m) | Road Level | Aquitard Depth (m) |
---|---|---|---|---|---|---|---|---|---|
Sero | 1.00 | 1:1 | (5.50) | (1.90) | 6 | (2.70) | 12 | (5.70) | 12.5 |
7.00 | (4.50) | 5 | (1.90) | 7.4 | (5.00) | ||||
10.55 | (4.40) | 4 | (1.90) | 4.9 | (5.00) | ||||
Dafan | 17.500 | 1:1 | (0.40) | −(0.75) | 8 | −(1.30) | 5.5 | (2.75) | 9.3 |
New-Aslogy | 1.500 | 1:1 | (8.84) | (5.94) | 3 | (6.90) | 6.57 | (9.33) | 9.2 |
Canal | Reach (km) | Unlined | Lined | Lined with a Drainage Pipe |
---|---|---|---|---|
Sero | 1.00 | 1.9 | 1.7 | 1.725 |
7.00 | 3.84 | 1.966 | 3.49 | |
10.550 | 2.4 | −3.78 | 2.35 | |
Dafan | 1.50 | −0.75 | −1.03 | −0.87 |
New-Aslogy | 17.00 | 5.94 | 2.22 | 4.45 |
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Abd-Elziz, S.; Zeleňáková, M.; Kršák, B.; Abd-Elhamid, H.F. Spatial and Temporal Effects of Irrigation Canals Rehabilitation on the Land and Crop Yields, a Case Study: The Nile Delta, Egypt. Water 2022, 14, 808. https://doi.org/10.3390/w14050808
Abd-Elziz S, Zeleňáková M, Kršák B, Abd-Elhamid HF. Spatial and Temporal Effects of Irrigation Canals Rehabilitation on the Land and Crop Yields, a Case Study: The Nile Delta, Egypt. Water. 2022; 14(5):808. https://doi.org/10.3390/w14050808
Chicago/Turabian StyleAbd-Elziz, Sherien, Martina Zeleňáková, Branislav Kršák, and Hany F. Abd-Elhamid. 2022. "Spatial and Temporal Effects of Irrigation Canals Rehabilitation on the Land and Crop Yields, a Case Study: The Nile Delta, Egypt" Water 14, no. 5: 808. https://doi.org/10.3390/w14050808