925 resultados para Groundwater discharge
Resumo:
The Arctic hydrological cycle throughout the Holocene is analyzed based on the results of transient simulations with the coupled atmosphere-ocean circulation model ECHO-G. The results suggest a ~ 2 % increase of mid-Holocene to preindustrial Arctic river discharges for the Eurasian continent. However, rivers of the North America Arctic realm show a moderate runoff decline of approximately 4 to 5 % for the same period. The total river discharge into the Arctic Ocean has remained at an approximately constant preindustrial level since the mid Holocene. The positive discharge trend within Eurasia is caused by a more rapid decrease in local net evaporation compared to a smaller decline in advected moisture and hence precipitation. This effect is neither recognized within the North American Arctic domain nor in the far eastern part of the Eurasian Arctic realm. A detailed comparison of these model findings with a variety of proxy studies is conducted. The collected proxy records show trends of continental surface temperatures and precipitation rates that are consistent with the simulations. A continuation of the transient Holocene runs for the 19th and 20th century with increased greenhouse gases indicates an increase of the total river influx into the Arctic Ocean of up to 7.6 %. The Eurasian river discharges increase by 7.5 %, the North American discharges by up to 8.4 %. The most rapid increases have been detected since the beginning of the 20th century. These results are corroborated by the observed rising of Arctic river discharges during the last century which is attributed to anthropogenic warming. The acceleration of the Arctic hydrological cycle in the 20th century is without precedence in the Holocene.
Resumo:
En el presente trabajo se propone y desarrolla una herramienta de "Gestión del riesgo de contaminación del recurso hídrico", inspirada en métodos comúnmente utilizados en las evaluaciones de impacto ambiental tales como la Matriz de importancia y la Evaluación de riesgo. Dicha herramienta se aplica en el oasis del río Tunuyán Inferior, cuya cuenca se localiza en el sector E de la Cordillera de Los Andes, provincia de Mendoza, Argentina. El método propuesto consiste en la determinación, en cada Unidad de Manejo (UM)3 de: 1. la vulnerabilidad del territorio; 2. la peligrosidad del efluente; 3. las clases de riesgo; 4. el índice prioridad de manejo del riesgo, variables que luego se traducen cartográficamente. Las bases de datos generadas pueden ser analizadas desde distintos enfoques y, a su vez, actualizadas a medida que se van profundizando los conocimientos acerca de los atributos que hacen a la peligrosidad del vertido (ej.: tipo de efluente, tiempo, caudal y lugar de descarga) y a la vulnerabilidad de la UM (ej.: tipo de acuífero, profundidad de nivel freático, permeabilidad del terreno, calidad del suelo, etc.). Esta herramienta de gestión genera un diagnóstico dinámico de la situación, ya que puede ser perfeccionado a través de la investigación de las variables que intervienen en el proceso de contaminación del agua por efluentes. Además, es una herramienta práctica porque jerarquiza las prioridades de gestión, de acuerdo con un orden de aplicación gradual de medidas de manejo del riesgo de contaminación. Teniendo en cuenta la tendencia mundial de reducción de glaciares por efecto del calentamiento global y su impacto negativo en los caudales de los ríos, es indispensable y urgente establecer prioridades de gestión para preservar la calidad del recurso hídrico.
Resumo:
This paper analyzes the hydrological processes and the impact of soil properties and land use on these processes in tropical headwater catchment in the sub-humid part of Benin (West-Africa), the Aguima catchment. The presented study is integrated in the GLOWA IMPETUS project, which investigates the effects of global change on the water cycle and water availability on a regional scale in Morocco and Benin. The lack of field investigations concerning soil and surface hydrology in the Benin research area necessitates detailed field measurements including measurements of discharge, soil water dynamics, soil physical properties etc. on the local scale in order to understand the dominant runoff generation processes and its influencing factors. This is a pre-requisite to be able to forecast the effects which global change has on hydrological processes and water availability in the region. The paper gives an overview over the hydrologic measuring concept of the IMPETUS-Benin project focusing on measurements concerning the soil saturated conductivity ksat and discharge behaviour of two different sub-catchment of the Aguima catchment. The results of ksat measurements revealed that interflow is the dominant runoff process on the hillslopes of the investigated catchment. Concerning the impact of land use on the hydrological processes infiltration experiments showed that infiltration rates were reduced on cultivated land compared to natural land cover. This results in significant differences in runoff behaviour and runoff ratios while comparing natural and agricultural used catchments.