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21.
Only minor attention has been given in the past to the study of closed-basin hydrogeology in evaporitic environments, because
these basins usually contain poor-quality groundwater. The motivation for hydrogeological research in the Los Monegros area
in northeastern Spain was the approval in 1986 of a large irrigation project in the Ebre River basin. The irrigation of 60,000
ha is planned, partly in an evaporitic closed basin containing playa lakes. The project has given rise to environmental concerns.
The evaluation of the hydrologic impacts of irrigation requires quantifying properly the hydrogeology of the area. With the
available information, a conceptual hydrogeological model was formulated that identifies two main aquifers connected through
a leaky aquitard. On the basis of the conceptual model, a numerical model was calibrated under steady-state conditions using
the method of maximum-likelihood automatic parameter estimation (Carrera and Neuman, 1986a). The calibrated model reproduces
the measured hydraulic heads fairly well and is consistent with independent information on groundwater discharge. By the solution
of the inverse problem, reliable parameter estimates were obtained. It is concluded that anisotropy plays a major role in
some parts of the lower aquifer. The geometric average of model conductivity is almost two orders of magnitude larger than
the average conductivity derived from small-scale field tests. This scale effect in hydraulic conductivity is consistent with
the findings of Neuman (1994) and Sánchez-Vila et al. (1996).
Received, December 1997 · Revised, December 1997 · Accepted, January 1998 相似文献
22.
An increase in salinity and change from oxic to anoxic conditions are observed in the Upper subaquifer of the Judea Group
in the Kefar Uriyya pumping field at the western foothills of the Judea Mountains, Israel. Hydrogeological data indicate that
the change, which occurs over a distance of only a few kilometers, coincides with a transition from confined to phreatic conditions
in the aquifer. The deterioration in the water quality is explained as a result of seepage of more saline, organic-rich water
from above, into the phreatic "roofed" part of the aquifer. The latter is derived from the bituminous chalky rocks of the
Mount Scopus Group, which confine the aquifer in its southeastern part. In this confined part, water in perched horizons within
the Mount Scopus Group cannot leak down and flow westward while leaching organic matter and accumulating salts. However, upon
reaching the transition area from confined to phreatic conditions, seepage to the Judea Upper subaquifer is possible, thereby
allowing it to be defined as a leaky aquifer. The incoming organic matter consumes the dissolved oxygen and allows bacterial
sulfate reduction. The latter accounts for the H2S in the aquifer, as indicated by sulfur isotopic analyses of coexisting sulfate and sulfide. Thus, from an aquifer management
point of view, in order to maintain the high quality of the water in the confined southeastern part of the Kefar Uriyya field,
care should be taken not to draw the confined-roofed transition area further east by over pumping.
Electronic Publication 相似文献
23.
David L. Poulsen Craig T. Simmons Corinne Le Galle La Salle Jim W. Cox 《Hydrogeology Journal》2006,14(7):1339-1359
Understanding catchment-scale patterns of groundwater and stream salinity are important in land- and water-salinity management. A large-scale assessment of groundwater and stream data was undertaken in the eastern Mt Lofty Ranges of South Australia using geographical information systems (GIS), regional scale hydrologic data, hydrograph separation and hydrochemical techniques. Results of the study show: (1) salts were mostly of marine origin (75%), while sulfate and bicarbonate from mineral weathering comprised most of the remainder, (2) elevated groundwater salinities and stable water isotopic compositions similar to mean rainfall indicated that plant transpiration was the primary salt accumulation mechanism, (3) key factors explaining groundwater salinity were geology and rainfall, with overall catchment salinity inversely proportional to average annual rainfall, and groundwater salinity ‘hotspots’ (EC >8 mS/cm) associated with geological formations comprising sulfidic marine siltstones and shales, (4) shallow groundwater correlated with elevated stream salinity, implying that baseflow contributed to stream salt loads, with most of the annual salt load (estimated to be 24,500 tonnes) occurring in winter when baseflow volume was highest. Salt-load analysis using stream data could be a practical, low-cost technique to rapidly target the investigation of problem areas within a catchment. 相似文献
24.
Salinization of groundwater in the Nefzawa oases region,Tunisia: results of a regional-scale hydrogeologic approach 总被引:1,自引:0,他引:1
Mounira Zammouri Tobias Siegfried Tobias El-Fahem Samiha Kriâa Wolfgang Kinzelbach 《Hydrogeology Journal》2007,15(7):1357-1375
Groundwater pumped from the semi-confined Complexe Terminal (CT) aquifer is an important production factor in irrigated oases
agriculture in southern Tunisia. A rise in the groundwater salinity has been observed as a consequence of increasing abstraction
from the aquifer during the last few decades. All sources of contamination were investigated using hydrochemical data available
from the 1980s. Water samples were taken from drains and observation wells tapping both the CT and the phreatic aquifers and
analyzed with regard to chemistry, temperature, isotopes and other environmental tracers. Local salinization mechanisms are
suggested, i.e. the upwelling of saline water from the underlying, confined Continental Intercalaire (CI) aquifer, as well
as backflow of agricultural drainage water. At this stage, the main salt pan, the Chott el Djerid, is not a contamination
source. A finite difference model was also developed to simulate groundwater flow and contaminant transport in the oases.
Calibration for the period 1950–2000 was carried out in order to adjust geological and chemical system parameters. The simulation
of planned extraction projects predicts a worsening of the present situation. Maintenance of the present abstraction regime
will not reduce or stop the salinity increase.
Résumé L’eau souterraine pompée dans l’aquifère semi-captif du Complexe Terminal (CT) est un facteur de production important pour l’agriculture des oasis irriguées du sud de la Tunisie. Une augmentation de la salinité de l’eau souterraine a été considérée comme la conséquence de l’augmentation des prélèvements dans l’aquifère au cours des dernières décades. Toutes les sources de contamination ont été étudiées à l’aide de données hydro-chimiques disponibles depuis les années 80. Des échantillons d’eau ont été prélevés dans des drains et des puits d’observation qui captent à la fois le CT et les aquifères phréatiques; la chimie, la température, les isotopes ainsi que d’autres traceurs environnementaux ont été analysés. Des processus locaux de salinisation sont proposés, comme par exemple la remontée d’eau salée en provenance de l’aquifère captif du Continental Intercalaire (CI) sous-jacent, ainsi que le reflux des eaux du drainage agricole. A ce stade, le principal marais salé, le Chott el Djerid, n’est pas une source de contamination. Un modèle aux différences finies a également été élaboré pour simuler les écoulements souterrains et le transport de contaminants dans les oasis. Une calibration pour la période 1950–2000 a été effectuée afin d’ajuster les paramètres des systèmes géologique et chimique. La simulation de projets planifiés d’extraction prédit une aggravation de la situation actuelle. La conservation du régime d’extraction actuel ne réduira ou ne stoppera pas l’augmentation de la salinité.
Resumen El agua subterránea que se bombea del acuífero semi-confinado Terminal Complejo (CT) es un importante factor de producción en la agricultura de riego con oasis en el sur de Túnez. Se ha observado un incremento en la salinidad del agua subterránea como consecuencia de la abstracción creciente del acuífero durante las últimas décadas. Se investigaron todas las fuentes de contaminación usando datos hidroquímicos disponibles de la década de 1980s. Las muestras de agua se tomaron de drenajes y pozos de observación alojados tanto en el CT como los acuíferos freáticos y se analizaron en relación con química, temperatura, isótopos y otros trazadores ambientales. Se sugieren mecanismos de salinización local, i.e. el ascenso de agua salada a partir del acuífero confinado subyacente Intercalado Continental (CI), así como también retorno de flujo de agua de drenaje agrícola. En esta etapa, el pan salado principal, el Chott el Djerid, no es una fuente de contaminación. También se desarrolló un modelo de diferencia finita para simular el flujo de agua subterránea y el transporte de contaminantes en los oasis. Se calibró el modelo para el periodo 1950–2000 para de este modo ajustar parámetros del sistema químico y geológico. La simulación de los proyectos de extracción que se han planeado predice un empeoramiento de la situación actual. El mantenimiento del régimen de extracción actual no reducirá o detendrá el incremento de salinidad.相似文献
25.
Azraq Oasis in the eastern Jordanian desert is an important freshwater resource of the country. Shallow groundwater reserves are heavily exploited since the 1980s and in consequence the groundwater table dropped significantly. Furthermore, some wells of the major well field drilled into the shallow aquifer show an increasing mineralization over the past 20 years. A previous study using conventional tracers did not result in a satisfactory explanation, from where the salt originates and why only a few wells are affected. In this study, the application of dissolved noble gases in combination with other tracer methods reveals a complex mixing pattern leading to the very localized salinization within the well field. It is found that primarily the wells affected by salinization 1) contain distinctly more radiogenic 4He than the other wells, indicating higher groundwater age, and 2) exhibit 3He/4He ratios that argue for an imprint of deep fluids from the Earth's mantle.However, the saline middle aquifer below is virtually free of mantle helium, which infers an upstream from an even deeper source through a nearby conductive fault. The local restriction of the salinization process is explained by the wide range of permeabilities of the involved geologic units. As the wells abstract water from the whole depth profile, they initially pump water mainly from the well conductive top rock layer. As the groundwater table dropped, this layer fell progressively dry and, depending on the local conductivity profile, some wells began to incorporate more water from the deeper part of the shallow aquifer into the discharge. These are the wells affected by salinization, because according to the presented scheme the deep part of the shallow aquifer is enriched in both salt and mantle fluids. 相似文献
26.
《Chemie der Erde / Geochemistry》2014,74(4):671-680
The Janah alluvial aquifer is located in southern Iran with an arid climate. The type of groundwater in this aquifer is dominantly of sodium chloride and total dissolved solid of groundwater samples range from 1.63 to 335 g/L which confirms that groundwater quality has been severely degraded by salinization. Hydrogeochemical and isotopic investigations were conducted to identify the source of salinity. Total dissolved solids and major ion concentrations were measured at 51 selected sampling sites including springs, wells and surface waters. In addition stable isotopic composition (oxygen-18 and deuterium) was measured in 6 sampling points.The study indicates that the sources of salinity of the Janah aquifer include dissolution of salt diapir and evaporite rocks, a geothermal spring and intrusion of the river water which function individually or together in different parts of the aquifer. Based on the hydrogeochemical and geological studies conceptual flow models were prepared for different parts of the aquifer which illustrate how each source of salinity deteriorates the quality of the alluvial aquifer. We proposed few remediation methods including construction of cemented channel and sealed basins to improve groundwater quality. These methods would prevent infiltration of low quality water into the alluvial aquifer. 相似文献
27.
Salinization of groundwater in arid and semi-arid zones: an example from Tajarak,western Iran 总被引:3,自引:3,他引:3
Mohsen Jalali 《Environmental Geology》2007,52(6):1133-1149
Study of the groundwater samples from Tajarak area, western Iran, was carried out in order to assess their chemical compositions
and suitability for agricultural purposes. All of the groundwaters are grouped into two categories: relatively low mineralized
of Ca–HCO3 and Na–HCO3 types and high mineralized waters of Na–SO4 and Na–Cl types. The chemical evolution of groundwater is primarily controlled by water–rock interactions mainly weathering
of aluminosilicates, dissolution of carbonate minerals and cation exchange reactions. Calculated values of pCO2 for the groundwater samples range from 2.34 × 10−4 to 1.07 × 10−1 with a mean value of 1.41 × 10−2 (atm), which is above the pCO2 of the earth’s atmosphere (10−3.5). The groundwater is oversaturated with respect to calcite, aragonite and dolomite and undersaturated with respect to gypsum,
anhydrite and halite. According to the EC and SAR the most dominant classes (C3-S1, C4-S1 and C4-S2) were found. With respect
to adjusted SAR (adj SAR), the sodium (Na+) content in 90% of water samples in group A is regarded as low and can be used for irrigation in almost all soils with little
danger of the development of harmful levels of exchangeable Na+, while in 40 and 37% of water samples in group B the intensity of problem is moderate and high, respectively. Such water,
when used for irrigation will lead to cation exchange and Na+ is adsorbed on clay minerals while calcium (Ca2+) and magnesium (Mg2+) are released to the liquid phase. The salinity hazard is regarded as medium to high and special management for salinity
control is required. Thus, the water quality for irrigation is low, providing the necessary drainage to avoid the build-up
of toxic salt concentrations. 相似文献
28.
The groundwater along the eastern escarpment of the Dead Sea shows a variety of chemical compositions with EC values ranging
between 500 and a few thousand μS/cm. In this article the different groundwaters were correlated to the aquifers from where
they originate and the water–rock interactions were elaborated at. It was found that the start of intercalations of Permo-Triassic
and Jurassic rocks in the area and the basaltic dykes and sills are the sources, which cause a drastic increase in the salinity
of the water. These rocks contents of residual evaporites, contact metamorphism products, sills, dykes and secondary altered
mineral assemblage of plagioclase-, pyroxenes- and Fe-, Mn- minerals cause also drastic changes in ionic ratios, saturation
indices and groundwater types. Fresh groundwater flows entering the area become, gradually, after a few kilometres highly
salinized and of earthalkali type with prevailing chloride and sulfate instead of being bicarbonate waters. 相似文献
29.
Anwar Zahid M. Qumrul Hassan K.-D. Balke Matthias Flegr David W. Clark 《Environmental Geology》2008,54(6):1247-1260
Dissolved major ions and important heavy metals including total arsenic and iron were measured in groundwater from shallow
(25–33 m) and deep (191–318 m) tube-wells in southeastern Bangladesh. These analyses are intended to help describe geochemical
processes active in the aquifers and the source and release mechanism of arsenic in sediments for the Meghna Floodplain aquifer.
The elevated Cl− and higher proportions of Na+ relative to Ca2+, Mg2+, and K+ in groundwater suggest the influence by a source of Na+ and Cl−. Use of chemical fertilizers may cause higher concentrations of NH4+ and PO43− in shallow well samples. In general, most ions are positively correlated with Cl−, with Na+ showing an especially strong correlation with Cl−, indicating that these ions are derived from the same source of saline waters. The relationship between Cl−/HCO3− ratios and Cl− also shows mixing of fresh groundwater and seawater. Concentrations of dissolved HCO3− reflect the degree of water–rock interaction in groundwater systems and integrated microbial degradation of organic matter.
Mn and Fe-oxyhydroxides are prominent in the clayey subsurface sediment and well known to be strong adsorbents of heavy metals
including arsenic. All five shallow well samples had high arsenic concentration that exceeded WHO recommended limit for drinking
water. Very low concentrations of SO42− and NO3− and high concentrations of dissolved Fe and PO43− and NH4+ ions support the reducing condition of subsurface aquifer. Arsenic concentrations demonstrate negative co-relation with the
concentrations of SO42− and NO3− but correlate weakly with Mo, Fe concentrations and positively with those of P, PO43− and NH4+ ions. 相似文献
30.
Time-lapse resistivity investigations for imaging saltwater transport in glaciofluvial deposits 总被引:1,自引:1,他引:1
Five intersecting resistivity sections have been measured in glaciofluvial deposits hosting an aquifer of regional importance
situated along a heavy traffic highway in Sweden. The winter salt spreading has caused a regular salinity increase through
the years. For imaging the transport of saltwater in the aquifer, the sections were measured exactly in the same location
before and after winter, and interpreted using a time-lapse inverse procedure. Some auger drilling and RCPT data were available
for correlation. After winter, the resistivity had generally decreased under the water table and increased above it. The decrease
in resistivity in the saturated zone is interpreted as a plume of more saline groundwater created by de-icing salt from the
road. The increase in the upper layer can be explained by changes in temperature and soil moisture. The study shows that time-lapse
resistivity investigations has potential for imaging hydraulic pathways in complex hydrogeological environments. 相似文献