Impacts of Desalinated and Recycled Water in the Abu Dhabi Surficial Aquifer
Abstract
:1. Introduction
2. Materials
2.1. Geology and Hydrogeology of the Study Area
2.2. Strategic Aquifer Storage and Recovery Potential
2.3. Non-Conventional Water in Agriculture Field
3. Methods
3.1. Numerical Code
3.2. Model Geometry
3.3. Boundary Conditions
3.4. Model Parameters
3.5. Model Calibration
3.6. Implementation of SASR Structure
4. Result and Discussion
4.1. Impact and Efficiency of SASR Structure
4.1.1. Storage Simulations
4.1.2. Recovery Simulations
4.2. Impact of Non-Conventional Water in Agriculture Field
Potential and Limitation of the Regional Model
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Year | Total Area of Green Field (km2) | Total Pumping Rate (MCMYr−1) | Nonconventional Water (MCMYr−1) | Gross Irrigation Water Demand (Qir) (MCMYr−1) | Irrigation Return Flow Rir (MCMYr−1) |
---|---|---|---|---|---|
2000 | 620 | 2185 | 114 | 2299 | 333.355 |
2001 | 695 | 2451 | 117 | 2571 | 372.36 |
2002 | 708 | 2501 | 118 | 2620 | 379.755 |
2003 | 719 | 2541 | 120 | 2663 | 385.845 |
2004 | 719 | 2542 | 123 | 2668 | 386.425 |
2005 | 740 | 2860 | 125 | 2987 | 432.825 |
2006 | 720 | 2730 | 132 | 2869 | 414.99 |
2007 | 704 | 2657 | 144 | 2813 | 406.145 |
2008 | 732 | 2569 | 160 | 2745 | 395.705 |
2009 | 738 | 2450 | 175 | 2640 | 380.625 |
2010 | 748 | 2267 | 159 | 2410 | 351.77 |
2011 | 705 | 2495 | 165 | 2666 | 385.7 |
2012 | 737 | 2587 | 196 | 2814 | 403.535 |
2013 | 753 | 2665 | 211 | 2876 | 417.02 |
2014 | 750 | 2626 | 248 | 2874 | 416.73 |
2015 | 750 | 2562 | 349 | 2911 | 422.095 |
2016 | 750 | 2634 | 378 | 3012 | 436.74 |
2017 | 750 | 2657 | 384 | 3041 | 440.945 |
2018 | 750 | 2646 | 401 | 3047 | 441.815 |
2019 | 750 | 2645 | 419 | 3064 | 444.28 |
Parameter | Value | Unit |
---|---|---|
Horizontal hydraulic conductivity | 2.74 × 10−8 to 266 | md−1 |
Vertical hydraulic conductivity | 2.74 × 10−9 to 27 | md−1 |
Porosity | 0.001–0.4 | (-) |
Specific yield | 0.0009–0.32 | (-) |
Storativity | 1 × 10−4–7 × 10−3 | (-) |
Longitudinal dispersivity | 2500 | m |
Horizontal transverse dispersivity | 750 | m |
Vertical transverse dispersivity | 750 | m |
Effective molecular diffusion | 1 × 10−5 | md−1 |
Density of groundwater at deeper aquifer | 1.025 | kgm−3 |
Density of groundwater at surficial aquifer | 1.000 | kgm−3 |
Density of seawater at Persian gulf | 1.028 | kgm−3 |
Density/conc.slope | 0.7523 | (kgm−3) |
Sl.No. | Component | Actual Volume (MCMYr−1) | Calibrated Volume (MCMYr−1) |
---|---|---|---|
1 | Outflow towards S and S–W | 3.00 | 3.00 |
2 | Outflow towards North | 16.00 | 16.00 |
3 | Evapotranspiration | 88.00 | 86.53 |
4 | Transboundary recharge from east | 38.50 | 38.50 |
Parameter | EC (μS/cm) | Temperature (°C) | Salinity (gL−1) | TDS (gL−1) | pH | Ca (gL−1) | Mg (gL−1) | Na (gL−1) | K (gL−1) | HCO3 (gL−1) | Cl (gL−1) | SO4 (gL−1) |
---|---|---|---|---|---|---|---|---|---|---|---|---|
Desalinated water quality | 123 | 35 | 0.08 | 0.25 | 8.1 | 0.0202 | 0.0004 | 0.0041 | 0.0001 | 0.066 | 0.005 | 0.001 |
Drinking water standard | 1600 | 1 | 1.50 | 7–9.2 | 0.080 | 0.0300 | 0.1500 | 0.0120 | >0.060 | 0.250 | 0.250 |
Concentration of Irrigation Return Flow (gL−1) | Predicted Change in Groundwater Head (m) | Predicted Change in Concentration of Groundwater (gL−1) | ||
North and Piedmont Region | Sand Dune Area | North and Piedmont Region | Sand Dune Area | |
0.1 | −6.71 to 5.16 | −2.45 to 1 | −0.63 to 0.86 | −0.03 to 1.63 |
0.5 | −6.71 to 5.16 | −2.45 to 1 | −0.63 to 0.89 | −0.03 to 1.63 |
1 | −6.71 to 5.16 | −2.45 to 1 | −0.63 to 0.92 | −0.03 to 1.63 |
2 | −6.71 to 5.16 | −2.45 to 1 | −0.63 to 0.96 | −0.03 to 1.63 |
Addon volume of nonconventional water to irrigation water demand | Predicted change in groundwater head (m) | Predicted change in concentration of groundwater (gL−1) | ||
North and Piedmont region | Sand dune area | North and Piedmont region | Sand dune area | |
1% Yr−1 | −6.62 to 5.19 | −2.24 to 1.05 | −0.63 to 0.86 | −0.05 to 1.60 |
2% Yr−1 | −6.44 to 5.22 | −2.17 to 1.07 | −0.64 to 0.82 | −0.07 to 1.58 |
3% Yr−1 | −5.55 to 5.35 | −1.73 to 1.12 | −0.71 to 0.76 | −0.1 to 1.52 |
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Sathish, S.; Cherubini, C.; Pastore, N.; Giasi, C.I.; Rapti, D. Impacts of Desalinated and Recycled Water in the Abu Dhabi Surficial Aquifer. Water 2021, 13, 2853. https://doi.org/10.3390/w13202853
Sathish S, Cherubini C, Pastore N, Giasi CI, Rapti D. Impacts of Desalinated and Recycled Water in the Abu Dhabi Surficial Aquifer. Water. 2021; 13(20):2853. https://doi.org/10.3390/w13202853
Chicago/Turabian StyleSathish, Sadhasivam, Claudia Cherubini, Nicola Pastore, Concetta I. Giasi, and Dimitra Rapti. 2021. "Impacts of Desalinated and Recycled Water in the Abu Dhabi Surficial Aquifer" Water 13, no. 20: 2853. https://doi.org/10.3390/w13202853
APA StyleSathish, S., Cherubini, C., Pastore, N., Giasi, C. I., & Rapti, D. (2021). Impacts of Desalinated and Recycled Water in the Abu Dhabi Surficial Aquifer. Water, 13(20), 2853. https://doi.org/10.3390/w13202853