Conceptual and Mathematical Modeling of a Coastal Aquifer in Eastern Delta of R. Nestos (N. Greece)
Abstract
:1. Introduction
2. Location of the Study Area
- −
- The annual decrease of groundwater level of phreatic aquifers due to reduction of natural recharge with fresh water.
- −
- The seawater intrusion, occurring on surface water bodies as well as on groundwater aquifers.
- −
- The quality degradation of fresh water from different sources such as: applied fertilizers and pesticides, irrigation return flows and disposal of municipal and industrial waste.
- −
- The use of wetlands for grazing and fishing.
- −
- The rural development of the coastal zone.
3. Geological Setting
4. Hydrometeorological Conditions
- ✓
- A peak value of precipitation is observed in November and December 1996 (the big rainfall event and the devastating floods of 30 November and 1 December, 1996).
- ✓
- Characteristic is, for the season, the high precipitation value for the summer months of July and August 2002 and 2005, as well as the very high precipitation values of December 2003 and October 2010.
- ✓
- Significantly higher mean monthly precipitation, is presented, for October periods of 2000—2012 and 1995—2012, while characteristic is the average monthly precipitation value for November period 2000—2012, which is clearly less than the periods 1966—2012, 1985—2012 and 1995—2012, a thing that is not identified for all other months for the period 2000—2012.
5. Hydrogeological Setting
- ✓
- The main groundwater recharge source of the upper unconfined aquifer system occurs mainly from N–NW part of the study area from the River Nestos and old riverbeds, as well as from the local irrigation network and the northeastern part of the Laspias stream (dashed polylines in Figure 7 and Figure 8).
6. Hydrochemical Setting
- −
- The majority of water samples classified into classification classes in which there is a high or very high salinity. This shows the seriousness of the problem of seawater intrusion into the groundwater aquifers of the area and thus makes it necessary to take measures to control salinity and crop only salinity resistant plants.
- −
- The largest proportion of the samples, the effect of salinity on fruiting classed with growing problems class, and there are also samples taken from specific wells in which the effect of salinity on fruiting classified as serious problems. It is obvious that the effect of salinity on groundwater, and consequently on irrigation is higher in areas closer to the sea. This fact is in direct consequence with the emerge of various problems in agriculture, land degradation and thus gradually reduction of agricultural yield.
- −
- According to the criterion of Wilcox water quality, 14 wells classified as ‘good’, 5 wells as ‘accepted’, 3 wells as ‘doubtful’ and 7 wells as ‘excellent’. In part of the study area recharged by the river Nestos and the irrigation canal, waters are characterized from ‘excellent’ to ‘good’, while in the rest of the region are characterized from ‘acceptable’ to ‘doubtful’.
- Regarding salinity (affecting water for plant growth), as small to medium (SM) in the majority of samples, and as severe (S) in a few of them (4),
- Regarding the permeability (affecting the rate of water infiltration in soil), as minimal (N), small and average (SM),
- Regarding the specific ion toxicity (affecting sensitive plants), as minimal (N) to severe (S), with typical the surface irrigation where several samples of groundwater assessed as small to average degree (SM) in restriction on use (DRU).
7. Stable Isotopic Signatures of Groundwaters
8. Mathematical Modelling
8.1. Description of the Numerical Code (Finite Difference Method)
- →
- Kxx, Kyy, and Kzz are values of hydraulic conductivity along the x, y, and z coordinate axes, which are assumed to be parallel to the major axes of hydraulic conductivity (L/T);
- →
- h is the potentiometric head (L);
- →
- W is a volumetric flux per unit volume representing sources and/or sinks of water, with W < 0.0 for flow out of the ground-water system, and W > 0.0 for flow into the system (T−1);
- →
- SS is the specific storage of the porous material (L−1);
- →
- t is time (T).
8.2. Spatial Discretization
8.3. Boundary Conditions
- General head boundary (GHB): This package is used to introduce the general groundwater flow conditions in the area. The hydraulic head used is 16 m.a.s.l. and is introduced in the northern boundary of the model area. The selected head is based on the piezometric maps mentioned before (Figure 7 and Figure 8). The hydraulic conductance used in the simulation is 5 m2/d.
- River (RIV): In the western part of the study area the Nestos river is simulated using the river package. The river depth for the in the reference period is 1.57 m., while the hydraulic conductance in the beginning of the simulation is 30 m2/d.
- Drain (DRN): The drain package is used to simulate the Laspias stream in the eastern part of the model with a hydraulic conductance of 10 m2/d.
- Time variant specified head (CHD): This package is used for simulating the discharge of the model to the sea. As such, the hydraulic head used throughout the simulation is 0 m.a.s.l.
- Head observation (HOB): This package is used for introducing the hydraulic head observations from the field surveys, which are later used for the calibration of the model.
- Recharge (RCH): This package is used across the model to implement the inflow from precipitation. The infiltration coefficient used is 15% of the precipitation in the reference period (which had 18 mm of precipitation).
- Well (WEL): The package is used for introducing the pumping for irrigation in the study area. The number of pumping wells in the area is very large (>2000), so for optimal data management the pumping was distributed across the model area (Figure 17). The irrigation period is from June to August.
8.4. Hydraulic Parameters of the Model
8.5. Time Discretization
8.6. Mathematical Model Results
9. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Ca2+ | Mg2+ | SO42− | HCO3− | PO42− | NO3− | Cl− | EC | pH | Temp. | K+ | Na+ | Fe2+ | Mn2+ | |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
(mg/L) | (mg/L) | (mg/L) | (mg/L) | (mg/L) | (mg/L) | (mg/L) | (μS/cm) | (oC) | (mg/L) | (mg/L) | (mg/L) | (mg/L) | ||
2009 | ||||||||||||||
min | 59.66 | 26.24 | 50.00 | 162.26 | 0.12 | 0.00 | 15.60 | 417.00 | 6.72 | 16.10 | 11.00 | 19.00 | 0.01 | 0.40 |
max | 875.07 | 369.85 | 1112.50 | 800.32 | 8.77 | 60.00 | 1320.20 | 5100.00 | 7.57 | 22.10 | 200.00 | 880.00 | 1.99 | 2.90 |
aver | 197.90 | 93.25 | 245.88 | 384.25 | 1.34 | 14.25 | 322.75 | 1868.92 | 7.01 | 18.11 | 94.33 | 246.58 | 0.81 | 1.21 |
SD | 215.58 | 90.72 | 285.06 | 176.49 | 2.40 | 18.25 | 407.10 | 1478.12 | 0.23 | 1.67 | 73.07 | 254.81 | 0.67 | 0.65 |
2013 | ||||||||||||||
min | 34.35 | 7.78 | 16.40 | 134.20 | 0.21 | 0.00 | 1.77 | 311.00 | 7.10 | 16.20 | 1.60 | 9.00 | 0.00 | 0.00 |
max | 488.16 | 77.76 | 465.00 | 762.50 | 10.30 | 120.00 | 813.81 | 3750.00 | 7.76 | 19.50 | 54.00 | 530.00 | 2.89 | 2.70 |
aver | 254.02 | 36.05 | 190.45 | 392.03 | 1.90 | 31.83 | 247.42 | 1763.42 | 7.33 | 17.76 | 12.97 | 187.92 | 0.56 | 1.04 |
SD | 141.40 | 20.60 | 157.98 | 190.14 | 2.86 | 43.96 | 266.58 | 1134.67 | 0.18 | 1.08 | 14.16 | 187.26 | 0.83 | 1.02 |
Stress Period | Time Step | Calendar Period | Flow Conditions |
---|---|---|---|
1 | 1 | 31 January 2007 | Steady state |
2 | 28 | February 2007 | Transient state |
3 | 31 | March 2007 | Transient state |
4 | 30 | April 2007 | Transient state |
5 | 31 | May 2007 | Transient state |
6 | 30 | June 2007 | Transient state |
7 | 31 | July 2007 | Transient state |
8 | 31 | August 2007 | Transient state |
9 | 30 | September 2007 | Transient state |
10 | 11 | 1 October 2007–11 October 2007 | Transient state |
11 | 20 | 12 October 2007–31 October 2007 | Transient state |
12 | 30 | November 2007 | Transient state |
13 | 31 | December 2007 | Transient state |
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Gkiougkis, I.; Pouliaris, C.; Pliakas, F.-K.; Diamantis, I.; Kallioras, A. Conceptual and Mathematical Modeling of a Coastal Aquifer in Eastern Delta of R. Nestos (N. Greece). Hydrology 2021, 8, 23. https://doi.org/10.3390/hydrology8010023
Gkiougkis I, Pouliaris C, Pliakas F-K, Diamantis I, Kallioras A. Conceptual and Mathematical Modeling of a Coastal Aquifer in Eastern Delta of R. Nestos (N. Greece). Hydrology. 2021; 8(1):23. https://doi.org/10.3390/hydrology8010023
Chicago/Turabian StyleGkiougkis, Ioannis, Christos Pouliaris, Fotios-Konstantinos Pliakas, Ioannis Diamantis, and Andreas Kallioras. 2021. "Conceptual and Mathematical Modeling of a Coastal Aquifer in Eastern Delta of R. Nestos (N. Greece)" Hydrology 8, no. 1: 23. https://doi.org/10.3390/hydrology8010023
APA StyleGkiougkis, I., Pouliaris, C., Pliakas, F. -K., Diamantis, I., & Kallioras, A. (2021). Conceptual and Mathematical Modeling of a Coastal Aquifer in Eastern Delta of R. Nestos (N. Greece). Hydrology, 8(1), 23. https://doi.org/10.3390/hydrology8010023