Water Quality Changes during the Initial Operating Phase of Riverbank Filtration Sites in Upper Egypt
Abstract
:1. Introduction
- Initial site assessment, including visual reconnaissance by site visits, documentation of verbal and archived information, and in-situ sampling of river water and groundwater.
- Basic site survey and installation of basic infrastructure: Identifying possible well locations, determining ground elevations and datum, river and groundwater monitoring locations, and construction of exploratory and monitoring wells.
- Monitoring and determining aquifer parameters: Monitoring of river and groundwater levels and quality, river channel geometry and grain size analysis, and pumping tests.
- Analytical or numerical groundwater flow modeling: Determining flow paths, travel times, and portions of bank filtrate and groundwater in the extracted water.
2. Materials and Methods
2.1. Site Description
2.2. Water Sampling and Analysis
3. Results and Discussion
3.1. The Quality of River Nile and the Ambient Groundwater in Luxor and Sohag
3.2. Quality of the Pumped Water from RBF Units Near Luxor and Sohag
3.3. Water Quality Changes during the Initial Phase of RBF near Luxor and Sohag
4. Sustainability and Cost of RBF
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Site | Alsaayda, Luxor | Eltawael, Sohag | Al-Maragha, Sohag | |||||
---|---|---|---|---|---|---|---|---|
Well No. | L1 | L2 | L3 | T1 | T2 | T3 | M1 | M2 |
Depth of well (mbgs) | 31 | 31 | 31 | 36 | 36 | 36 | 36 | 36 |
Location of filter screen (mbgs) | 10–25 | 10–25 | 6–21 | 18–35 | 18–35 | 18–35 | 18–35 | 18–35 |
Borehole diameter (inch) | 20 | 20 | 20 | 20 | 20 | 20 | 20 | 20 |
Well diameter (inch) | 14 | 14 | 14 | 14 | 14 | 14 | 14 | 14 |
Distance from river bank (m) | 13 | 10 | 5 | 6 | 6 | 6 | 5 | 5 |
Distance from neighboring well (m) | 25 | 25/19 | 19 | 10 | 10/10 | 10 | 12 | 12 |
Pumping rate (L/s) | 35 | 35 | 35 | 35 | 35 | 35 | 35 | 35 |
Static groundwater level (mbgs) | 2.0 * | 1.8 * | 1.5 * | 2.2 ** | 2.4 ** | 2.4 ** | 2.5 *** | 2.5 *** |
Drawdown (m) | 4.0 | 3.6 | 3.5 | 3.7 | 3.7 | 4.1 | 3.6 | 3.6 |
Site | Alsaayda Near Luxor | Eltawael | Al-maragha | |||||
---|---|---|---|---|---|---|---|---|
Well No. | L1 | L2 | L3 | T1 | T2 | T3 | M1 | M2 |
Clay top | 0–2 | 0–4 | 0–4 | - | - | - | 0–8 | 0–8 |
Fine sand | 2–7 | 4–9 | 4–13 | 0–10 | 0–10 | 0–10 | - | - |
Medium sand | - | 9–16 | 13–16 | - | - | - | 8–12 | 8–12 |
Coarse sand | 7–18 | - | - | 10–22 | 10–22 | 10–22 | 12–17 | 12–17 |
Coarse sand with gravel | 18–19 | 16–30 | 16–30 | 22–30 | 22–30 | 22–30 | 17–28 | 17–28 |
Gravel | 19–25 | - | - | 30–35 | 30–35 | 30–35 | 28–35 | 28–35 |
Shale | >25 | Not reached | Not reached | - | - | - | - | - |
Parameter | Abbreviation | Unit | Method, Equipment, Method No. |
---|---|---|---|
Physical Parameters | |||
Electric Conductivity | EC | µS/cm | Conductivity (2510)/Laboratory method/WTW Cond. Meter, 2–55 |
Turbidity | Turb | NTU | Turbidity (2130)/Nephelometric method/Turbidimeter (Hach), 2–12 |
Chemical Parameters | |||
pH | pH | - | pH (4500-H+)/Electrometric method/ThermoScientific (Orion 3 STAR), 4–95 |
Alkalinity | Alk | mg/L | Alkalinity (2320)/Titrimetric method, 2–36 |
Total organic carbon | TOC | mg/L | TOC (5310)/C. Persulfate–Ultraviolet or Heated-Persulfate Oxidation Method, 5–29 |
Total Hardness | CaCO3 | mg/L | EDTA titrimetric method, 3–69 |
Ammonium | NH4+ | mg/L | Ammonium (4500-NH3)/Phenate method, 4–114 |
Chloride | Cl− | mg/L | Chloride (4500-Cl−)/Argentometric method, 4–75 |
Sulfate | SO42− | mg/L | Sulfate (4500-SO42−)/Turbidimetric method, 4–197 |
Nitrate | NO3− | mg/L | Nitrate (4500-NO3)/Ultraviolet spectrophotometric method/Cecil 2041 UV/VIS, 4–126 |
Iron | Fe | mg/L | Iron (3500-Fe)/Phenanthroline method/Cecil 2041 UV/VIS, 3–79 |
Manganese | Mn | mg/L | Manganese (3500-Mn)/Persulfate method/Cecil 2041 UV/VIS, 3–87 |
Microbiological Parameters | |||
Heterotrophic Plate Count 35 °C | HPC 35 °C | count/mL | HPC (9215)/B-Pour Plate Method, 9–53 |
Total coliform | TC | count/100 mL | MFT (9222)/B-D, endo agar method, 9–81 for drinking water, MTFT 9221 B-C-E for intake water |
Fecal coliforms | FCC | count/100 mL | MFT (9222)/Membrane filter procedure for coliform group D, thermotolerant (fecal) coliforms |
Biological Parameters | |||
Total Algae Count | Algae | cells/mL | Plankton (10200)/C, E and F, 10–11, 10–15, 10–17 |
Parameter | Unit | Standard Egypt | Ambient GW | Nile Water, Sohag | BF Luxor L * (2018) | BF Sohag T ** | BF Sohag M *** |
---|---|---|---|---|---|---|---|
EC | µS/cm | - | 634 341–1039 (n = 333) | 322 273–461 (n = 290) | 350 322–594 (n = 57) | 507 388–1213 (n = 402) | 547 452–734 (n = 82) |
pH | - | 6.5–8.5 | 7.5 6.9–7.9 (n = 329) | 8.1 7.5–8.6 (n = 592) | 7.5 7.4–7.7 (n = 57) | 7.5 7.3–7.8 (n = 386) | 7.7 7.5–8.02 (n = 82) |
Turbidity | NTU | 1 | 0.7 0.1–3.5 (n = 333) | 3.3 0.3–300 (n = 517) | 0.24 0.1–0.65 (n = 57) | 0.38 0.1–0.99 (n = 385) | 0.36 0.2–1.5 (n = 82) |
Alkalinity | mg/L | 500 | 297 139–477 (n = 327) | 134 110–213 (n = 544) | n.d. | 238 135–350 (n = 265) | n.d. |
TDS | mg/L | - | 406 218–665 (n = 333) | 206 175–295 (n = 290) | 224 206–380 (n = 57) | 324 248–776 (n = 402) | 350 289–470 (n = 82) |
Total HardnessCaCO3 | mg/L | - | 230 103–823 (n = 326) | 115 88–192 (n = 552) | n.d. | 209 150–443 (n = 383) | n.d. |
Fe | mg/L | 0.3 | 0.23 0.012–0.76 (n = 257) | <0.001 <0.001–0.19 (n = 205) | 0.11 0.09–0.20 (n = 57) | 0.25 0.1–0.51 (n = 393) | 0.14 0.06–0.46 (n = 82) |
Mn | mg/L | 0.4 | 0.34 0.07–1.0 (n = 260) | <0.001 <0.001–0.16 (n = 199) | 0.42 0.3–0.61 (n = 57) | 0.55 0.38–1.2 (n = 388) | 0.45 0.4–0.65 (n = 82) |
NH4+ | mg/L | 0.5 | 0.68 0.002–1.38 (n = 239) | 0.018 <0.002–0.5 (n = 188) | 0.19 0.09–0.33 (n = 57) | 0.12 0.01–0.52 (n = 367) | 0.2 0.07–0.54 (n = 81) |
Cl− | mg/L | 250 | 30 16–75 (n = 327) | 15 11–27 (n = 289) | n.d. | 25 16–64 (n = 381) | n.d. |
SO42− | mg/L | 250 | 31 17–76 (n = 318) | 22 14–37 (n = 289) | n.d. | 27 17–81 (n = 375) | n.d. |
NO3− | mg/L | 45 | 1.0 <1–5.7 (n = 247) | 1.5 <1–4.6 (n = 181) | n.d. | 1.2 <1–4.6 (n = 263) | n.d. |
TOC | mg/L | - | n.d. | 2.7 2.1–3.2 (n = 11) | n.d. | 1.2 1.1–1.4 (n = 17) | n.d. |
HPC | CFU/mL | 50 | 34 1–6500 (n = 300) | 1900 220–9550 (n = 245) | 8 0–720 (n=57) | 2 0–1200 (n=378) | 20 2–800 (n=82) |
Total coliform | CFU/100 mL | <1 | 0 0–355 (n = 302) | 2700 45–54,000 (n = 257) | 10 0–240 (n = 57) | 0 0–2410 (n = 369) | 0 0–200 (n = 82) |
Fecal coliform | CFU/100 mL | <1 | 0 0–16 (n = 302) | 180 20–790 (n = 221) | 0 0–120 (n = 57) | 0 0–100 (n = 399) | 0 0–6 (n = 82) |
Parameter | Site L | Site T | Site M |
---|---|---|---|
EC | 2 | 7 | 3 |
Cl- | n.d. | 7 | n.d. |
Fe | 3 | n.a. | 3 |
Mn | >7* | 8 | 4 |
NH4+ | n.a. | 6 | 3–4 |
HPC | 3.5 | 14 | 4 |
TCC | 3.5 | 13 | 2 |
FC | 2.5 | 13 | 2 |
Capacity and Cost | RBF Unit | Small Conventional WTP | Direct Infiltration WTP | Groundwater Well | Compact Unit |
---|---|---|---|---|---|
Capacity (m3/day) | 3024 | 8640 | 3465 | 2160 | 2160 |
Capital cost (Million EGP/Unit) | 0.6 * | 30–40 | 60 | 0.75 *–10 | 15 |
Operational cost (Million EGP/Unit) | ≈0.05 * | ≈0.5 | ≈1.5 | ≈0.1 * | ≈0.7 |
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Wahaab, R.A.; Salah, A.; Grischek, T. Water Quality Changes during the Initial Operating Phase of Riverbank Filtration Sites in Upper Egypt. Water 2019, 11, 1258. https://doi.org/10.3390/w11061258
Wahaab RA, Salah A, Grischek T. Water Quality Changes during the Initial Operating Phase of Riverbank Filtration Sites in Upper Egypt. Water. 2019; 11(6):1258. https://doi.org/10.3390/w11061258
Chicago/Turabian StyleWahaab, Rifaat Abdel, Ahmed Salah, and Thomas Grischek. 2019. "Water Quality Changes during the Initial Operating Phase of Riverbank Filtration Sites in Upper Egypt" Water 11, no. 6: 1258. https://doi.org/10.3390/w11061258
APA StyleWahaab, R. A., Salah, A., & Grischek, T. (2019). Water Quality Changes during the Initial Operating Phase of Riverbank Filtration Sites in Upper Egypt. Water, 11(6), 1258. https://doi.org/10.3390/w11061258