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Combined electrical resistivity tomography and magnetic resonance sounding investigation of the surface-water/groundwater interaction in the Urema Graben, Mozambique | Investigation sur les interactions eau de surface/eau souterraine par tomographie électrique et sondage de résonnance magnétique dans le Graben Urema, Mozambique Investigación de la combinación de tomografías de resistividad eléctrica y sondeos de resonancia magnética en la interacción del agua superficial/agua subterránea en el Urema Graben, Mozambique 采用电阻率成像法结合磁共振法调查莫桑比克Urema地堑地下水/地表水相互作用 Combinação de tomografia de resistividade elétrica e sonda de ressonância magnética para investigação da interação água superficial/água subterrânea no Graben de Urema, Moçambique Texte intégral
2016
Chirindja, F. J. | Dahlin, T. | Perttu, N. | Steinbruch, F. | Owen, R.
This study focusses on the hydrogeology of Urema Graben, especially possible interactions between surface water and groundwater around Lake Urema, in Gorongosa National Park (GNP). Lake Urema is the only permanent water source for wildlife inside GNP, and there are concerns that it will disappear due to interferences in surface-water/groundwater interactions as a result of changes in the hydraulic environment. As the lake is the only permanent water source, this would be a disaster for the ecosystem of the park. The sub-surface geology in Urema Graben was investigated by 20 km of electrical resistivity tomography (ERT) and three magnetic resonance sounding (MRS) surveys. The average depth penetration was 60 and 100 m, respectively. The location of the ERT lines was decided based on general rift morphology and therefore orientated perpendicular to Urema Graben, from the transitional areas of the margins of the Barue platform in the west to the Cheringoma plateau escarpments in the east. ERT and MRS both indicate a second aquifer, where Urema Lake is a window of the first upper semi-confined aquifer, while the lower aquifer is confined by a clay layer 30–40 m thick. The location and depth of this aquifer suggest that it is probably linked to the Pungwe River which could be a main source of recharge during the dry season. If a dam or any other infra-structure is constructed in Pungwe River upstream of GNP, the groundwater level will decrease which could lead to drying out of Urema Lake.
Afficher plus [+] Moins [-]Surface water–groundwater interaction and chemistry in a mineral-armored hydrothermal outflow channel, Yellowstone National Park, USA | Chimie et interactions entres eaux de surface et souterraines dans un chenal de surverse hydrothermal à cuirasse minérale, Parc National de Yellowstone, USA Interacción agua superficial–agua subterránea y química en un canal hidrotermal de salida mineralizado, Parque Nacional Yellowstone, USA 美国黄石国家公园地表水—地下水相互作用和热水河床矿物沉积的化学特征 Interacção águas superficiais–águas subterrâneas e química num canal de descarga hidrotermal blindado por minerais, Parque Nacional de Yellowstone, EUA Texte intégral
2008
Vitale, M.V. | Gardner, P. | Hinman, N.W.
Small quantities of groundwater interact with hydrothermal surface water to drive in-stream geochemical processes in a silica-armored hot-spring outflow channel in Yellowstone National Park, USA. The objective of this study was to characterize the hydrology and geochemistry of this unique system in order to (1) learn more about the Yellowstone Plateau’s subsurface water mixing between meteoric and hydrothermal waters and (2) learn more about the chemical and physical processes that lead to accumulation of streambed cements, i.e., streambed armor. A combination of hydrological, geochemical, mineralogical, microscopic, and petrographic techniques were used to identify groundwater and surface-water exchange. Interaction could be identified in winter because of differences in surface water and groundwater composition but interaction at other times of the year cannot be ruled out. Dissolved constituents originating from groundwater (e.g., Fe(II) and Mg) were traced downstream until oxidation and/or subsequent precipitation with silica removed them, particularly where high affinity substrates like cyanobacterial surfaces were present. Because the stream lies in a relatively flat drainage basin and is fed mainly by a seasonally relatively stable hot spring, this system allowed study of the chemical processes along a stream without the obscuring effects of sedimentation.
Afficher plus [+] Moins [-]Constraints on water chemistry by chemical weathering in the Lake Qinghai catchment, northeastern Tibetan Plateau (China): clues from Sr and its isotopic geochemistry | Impact de l’altération météorique sur la chimie de l’eau du bassin versant du lac Qinghai, Nord-Est du Plateau tibétain (Chine): indications fournies par Sr et ses isotopes Condicionamientos en la química del agua por meteorización química en la cuenca del Lago Qinghai, en el noreste de la meseta Tibetana (China): Claves a partir del Sr y su geoquímica isotópica 青海湖流域化学风化对水化学组成的制约 : 来自Sr及其同位素地球化学的线索 Constrangimentos à qualidade química da água em função da meteorização química na bacia do Lago Qinghai, Nordeste do Planalto Tibetano (China): inferências a partir do Sr e dos seus isótopos geoquímicos Контроль химического выветривания водяной химией в бассейне озера Цинхая: Ниточки от геохимии Sr и его изотопов Texte intégral
2009
Jin, Zhangdong | Yu, Jimin | Wang, Sumin | Zhang, Fei | Shi, Yuewei | You, Chen-Feng
Lake water, river water, and groundwater from the Lake Qinghai catchment in the northeastern Tibetan Plateau, China have been analyzed and the results demonstrate that the chemical components and ⁸⁷Sr/⁸⁶Sr ratios of the waters are strictly constrained by the age and rock types of the tributaries, especially for groundwater. Dissolved ions in the Lake Qinghai catchment are derived from carbonate weathering and part from silicate sources. The chemistry of Buha River water, the largest tributary within the catchment, underlain by the late Paleozoic marine limestone and sandstones, constrains carbonate-dominated compositions of the lake water, being buffered by the waters from the other tributaries and probably by groundwater. The variation of ⁸⁷Sr/⁸⁶Sr ratios with cation concentrations places constraint on the Sr-isotopic compositions of the main subcatchments surrounding Lake Qinghai. The relative significance of river-water sources from different tributaries (possibly groundwater as well) in controlling the Sr distribution in Lake Qinghai provides the potential to link the influence of hydrological processes to past biological and physical parameters in the lake. The potential role of groundwater input in the water budget and chemistry of the lake emphasizes the need to further understand hydrogeological processes within the Lake Qinghai system.
Afficher plus [+] Moins [-]L’ aquifère crétacé profond des bassins Aleppo et Steppe de Syrie : estimation de l’origine météorique et de la source géographique de l’eau de nappe El acuífero Cretácico profundo en las cuencas de Aleppo y Steppe de Siria: evaluación del origen meteórico y la fuente geográfica del agua subterránea 叙利亚Aleppo和Steppe流域的深部白垩系含水层:评价地下水的大气降水起源和地理来源 O aquífero cretácico profundo nas bacias de Aleppo e Steppe da Síria: avaliação da origem meteórica e geográfica das águas subterrâneas | Thedeep Cretaceous aquifer in the Aleppo and Steppe basins of Syria: assessment of the meteoric origin and geographic source of the groundwater Texte intégral
2012
Stadler, S. | Geyh, M. A. | Ploethner, D. | Koeniger, P.
A drilling project was carried out in Syria to assess the potential of the deep groundwater resources of the Cretaceous aquifer, composed of Cenomanian-Turonian limestones and dolomites. In this context, isotope (14C, 3H, δ13C, δ18O, δ2H) and hydrochemical analyses were performed on wells in and around the Aleppo and Steppe basins. The interpretation includes complementary results from published and unpublished literature. The results provide evidence that many new wells pump mixed groundwater from the Cretaceous aquifer and the overlying Paleogene aquifer. Radiocarbon measurements confirmed dominating Pleistocene groundwater in the Cretaceous aquifer and mainly Holocene groundwater in the Paleogene aquifer. Most groundwater in the Cretaceous aquifer seems to be recharged in the western limestone ridges, stretching from Jebel az Zawiyah (south of Idlep) via Jebel Samane (south of Afrin and A’zaz) to the region north of Aleppo, and in the Northern Palmyrides mountain belt. Some recharge also occurs around the basalt plateau of the Jebel al Hass, south east of Aleppo. It is concluded that the Taurus Mountains and the Euphrates River do not recharge the Cretaceous aquifer. The sources of recharge seem to be occasionally occurring intensive winter storms that approach from Siberia.
Afficher plus [+] Moins [-]Assessing groundwater recharge in an Andean closed basin using isotopic characterization and a rainfall-runoff model: Salar del Huasco basin, Chile | Evaluation de la recharge des eaux souterraines dans un bassin fermé andin en utilisant la caractérisation isotopique et un modèle pluie-débit: le bassin du Salar del Huasco, Chili Evaluación de la recarga del agua subterránea en una cuenca andina cerrada mediante la caracterización isotópica y un modelo lluvia-escorrentía: cuenca del Salar del Huasco, Chile 应用同位素特征描述和降雨径流模型评估安第斯山脉封闭盆地的地下水补给: 智利 Avaliação da recarga das águas subterrâneas numa bacia Andina fechada por meio de caracterização isotópica e um modelo chuva-vazão: bacia do Salar del Huasco, Chile Texte intégral
2015
Uribe, Javier | Muñoz, José F. | Gironás, Jorge | Oyarzún, Ricardo | Aguirre, Evelyn | Aravena, Ramón
Closed basins are catchments whose drainage networks converge to lakes, salt flats or alluvial plains. Salt flats in the closed basins in arid northern Chile are extremely important ecological niches. The Salar del Huasco, one of these salt flats located in the high plateau (Altiplano), is a Ramsar site located in a national park and is composed of a wetland ecosystem rich in biodiversity. The proper management of the groundwater, which is essential for the wetland function, requires accurate estimates of recharge in the Salar del Huasco basin. This study quantifies the spatio-temporal distribution of the recharge, through combined use of isotopic characterization of the different components of the water cycle and a rainfall-runoff model. The use of both methodologies aids the understanding of hydrological behavior of the basin and enabled estimation of a long-term average recharge of 22 mm/yr (i.e., 15 % of the annual rainfall). Recharge has a high spatial variability, controlled by the geological and hydrometeorological characteristics of the basin, and a high interannual variability, with values ranging from 18 to 26 mm/yr. The isotopic approach allowed not only the definition of the conceptual model used in the hydrological model, but also eliminated the possibility of a hydrogeological connection between the aquifer of the Salar del Huasco basin and the aquifer that feeds the springs of the nearby town of Pica. This potential connection has been an issue of great interest to agriculture and tourism activities in the region.
Afficher plus [+] Moins [-]Seasonal variability of oxygen and hydrogen isotopes in a wetland system of the Yunnan-Guizhou Plateau, southwest China: a quantitative assessment of groundwater inflow fluxes | Variabilité saisonnière des isotopes de l’oxygène et de l’hydrogène dans un système de zones humides du Plateau de Guizhou au Yunnan, dans le sud-ouest de la Chine: une évaluation quantitative des flux des apports des eaux souterraines Variabilidad estacional de isótopos de oxígeno e hidrógeno en un sistema de humedales de la meseta de Yunnan Guizhou, suroeste de China: una evaluación cuantitativa de los flujos de entrada del agua subterránea 中国西南部云贵高原一个湿地系统氧氢同位素的季节性变化:地下水流入通量定量评价 Variação sazonal de isótopos de oxigênio e hidrogênio em um sistema de área úmida no planalto de Yunnan Guizhou, sudoeste da China: uma avaliação quantitativa do fluxo de recarga de águas subterrâneas Texte intégral
2018
Cao, Xingxing | Wu, Pan | Zhou, Shaoqi | Han, Zhiwei | Tu, Han | Zhang, Shui
The Caohai Wetland serves as an important ecosystem on the Yunnan–Guizhou Plateau and as a nationally important nature reserve for migratory birds in China. In this study, surface water, groundwater and wetland water were collected for the measurement of environmental isotopes to reveal the seasonal variability of oxygen and hydrogen isotopes (δ¹⁸O, δD), sources of water, and groundwater inflow fluxes. Results showed that surface water and groundwater are of meteoric origin. The isotopes in samples of wetland water were well mixed vertically in seasons of both high-flow (September) and low-flow (April); however, marked seasonal and spatial variations were observed. During the high-flow season, the isotopic composition in surface wetland water varied from −97.13 to −41.73‰ for δD and from −13.17 to −4.70‰ for δ¹⁸O. The composition of stable isotopes in the eastern region of this wetland was lower than in the western region. These may have been influenced by uneven evaporation caused by the distribution of aquatic vegetation. During the low-flow season, δD and δ¹⁸O in the more open water with dead aquatic vegetation ranged from −37.11 to −11.77‰, and from −4.25 to −0.08‰, respectively. This may result from high evaporation rates in this season with the lowest atmospheric humidity. Groundwater fluxes were calculated by mass transfer and isotope mass balance approaches, suggesting that the water sources of the Caohai Wetland were mainly from groundwater in the high-flow season, while the groundwater has a smaller contribution to wetland water during the low-flow season.
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