Artigos de revistas sobre o tema "Groundwater-Atmosphere processes"
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Maxwell, Reed M., Julie K. Lundquist, Jeffrey D. Mirocha, Steven G. Smith, Carol S. Woodward e Andrew F. B. Tompson. "Development of a Coupled Groundwater–Atmosphere Model". Monthly Weather Review 139, n.º 1 (1 de janeiro de 2011): 96–116. http://dx.doi.org/10.1175/2010mwr3392.1.
Texto completo da fonteFOX, R. J., T. R. FISHER, A. B. GUSTAFSON, T. E. JORDAN, T. M. KANA e M. W. LANG. "Searching for the missing nitrogen: biogenic nitrogen gases in groundwater and streams". Journal of Agricultural Science 152, S1 (13 de março de 2014): 96–106. http://dx.doi.org/10.1017/s0021859614000070.
Texto completo da fonteSulis, Mauro, John L. Williams, Prabhakar Shrestha, Malte Diederich, Clemens Simmer, Stefan J. Kollet e Reed M. Maxwell. "Coupling Groundwater, Vegetation, and Atmospheric Processes: A Comparison of Two Integrated Models". Journal of Hydrometeorology 18, n.º 5 (1 de maio de 2017): 1489–511. http://dx.doi.org/10.1175/jhm-d-16-0159.1.
Texto completo da fontePavlov, S. Kh. "PROCESSES OF FORMATION OF SODIUM BICARBONATE GROUNDWATER IN THE RAINWATER – SANDSTONE SYSTEM". Geodynamics & Tectonophysics 14, n.º 6 (14 de dezembro de 2023): 0733. http://dx.doi.org/10.5800/gt-2023-14-6-0733.
Texto completo da fonteCoxon, Catherine E. "Carbonate Deposition in Turloughs (Seasonal Lakes) on the Western Limestone Lowlands of Ireland - I: Present Day Processes". Irish Geography 27, n.º 1 (15 de janeiro de 2015): 14–27. http://dx.doi.org/10.55650/igj.1994.428.
Texto completo da fonteRichard, A., S. Galle, M. Descloitres, J. M. Cohard, J. P. Vandervaere, L. Séguis e C. Peugeot. "Riparian forest and permanent groundwater: a key coupling for balancing the hillslope water budget in Sudanian West Africa". Hydrology and Earth System Sciences Discussions 10, n.º 5 (2 de maio de 2013): 5643–86. http://dx.doi.org/10.5194/hessd-10-5643-2013.
Texto completo da fonteBarenbaum, Azariy A. "On the relationship of oil and gas formation and degassing processes with groundwater decomposition". Georesursy 20, n.º 4 (30 de novembro de 2018): 290–300. http://dx.doi.org/10.18599/grs.2018.4.290-300.
Texto completo da fonteAl-Najjar, Hassan, Gokmen Ceribasi, Emrah Dogan, Khalid Qahman, Mazen Abualtayef e Ahmet Iyad Ceyhunlu. "Statistical modeling of spatial and temporal vulnerability of groundwater level in the Gaza Strip (Palestine)". H2Open Journal 4, n.º 1 (1 de janeiro de 2021): 352–65. http://dx.doi.org/10.2166/h2oj.2021.120.
Texto completo da fonteMartínez-de la Torre, Alberto, e Gonzalo Miguez-Macho. "Groundwater influence on soil moisture memory and land–atmosphere fluxes in the Iberian Peninsula". Hydrology and Earth System Sciences 23, n.º 12 (2 de dezembro de 2019): 4909–32. http://dx.doi.org/10.5194/hess-23-4909-2019.
Texto completo da fonteAlkhaier, F., G. N. Flerchinger e Z. Su. "Shallow groundwater effect on land surface temperature and surface energy balance under bare soil conditions: modeling and description". Hydrology and Earth System Sciences Discussions 8, n.º 5 (23 de setembro de 2011): 8639–70. http://dx.doi.org/10.5194/hessd-8-8639-2011.
Texto completo da fonteKoschorreck, Matthias, Klaus Holger Knorr e Lelaina Teichert. "Temporal patterns and drivers of CO2 emission from dry sediments in a groyne field of a large river". Biogeosciences 19, n.º 22 (18 de novembro de 2022): 5221–36. http://dx.doi.org/10.5194/bg-19-5221-2022.
Texto completo da fonteVergnes, J. P., e B. Decharme. "A simple groundwater scheme in the TRIP river routing model: global off-line evaluation against GRACE terrestrial water storage estimates and observed river discharges". Hydrology and Earth System Sciences Discussions 9, n.º 7 (4 de julho de 2012): 8213–56. http://dx.doi.org/10.5194/hessd-9-8213-2012.
Texto completo da fonteDietzel, M., A. Leis, R. Abdalla, J. Savarino, S. Morin, M. E. Böttcher e S. Köhler. "<sup>17</sup>O-excess traces atmospheric nitrate in paleo groundwater of the Saharan desert". Biogeosciences Discussions 10, n.º 12 (20 de dezembro de 2013): 20079–111. http://dx.doi.org/10.5194/bgd-10-20079-2013.
Texto completo da fonteMikhalchuk, Alexander, Yulia Kharanzhevskaya, Elena Burnashova, Evgeniya Nekhoda, Irina Gammerschmidt, Elena Akerman, Sergey Kirpotin, Viktor Nikitkin, Aldynai Khovalyg e Sergey Vorobyev. "Soil Water Regime, Air Temperature, and Precipitation as the Main Drivers of the Future Greenhouse Gas Emissions from West Siberian Peatlands". Water 15, n.º 17 (26 de agosto de 2023): 3056. http://dx.doi.org/10.3390/w15173056.
Texto completo da fonteShrestha, P., M. Sulis, M. Masbou, S. Kollet e C. Simmer. "A Scale-Consistent Terrestrial Systems Modeling Platform Based on COSMO, CLM, and ParFlow". Monthly Weather Review 142, n.º 9 (setembro de 2014): 3466–83. http://dx.doi.org/10.1175/mwr-d-14-00029.1.
Texto completo da fonteHornum, Mikkel Toft, Andrew Jonathan Hodson, Søren Jessen, Victor Bense e Kim Senger. "Numerical modelling of permafrost spring discharge and open-system pingo formation induced by basal permafrost aggradation". Cryosphere 14, n.º 12 (21 de dezembro de 2020): 4627–51. http://dx.doi.org/10.5194/tc-14-4627-2020.
Texto completo da fonteDeirmendjian, Loris, Denis Loustau, Laurent Augusto, Sébastien Lafont, Christophe Chipeaux, Dominique Poirier e Gwenaël Abril. "Hydro-ecological controls on dissolved carbon dynamics in groundwater and export to streams in a temperate pine forest". Biogeosciences 15, n.º 2 (1 de fevereiro de 2018): 669–91. http://dx.doi.org/10.5194/bg-15-669-2018.
Texto completo da fonteAslam, Muhammad, Ali Salem, Vijay P. Singh e Muhammad Arshad. "Estimation of Spatial and Temporal Groundwater Balance Components in Khadir Canal Sub-Division, Chaj Doab, Pakistan". Hydrology 8, n.º 4 (4 de dezembro de 2021): 178. http://dx.doi.org/10.3390/hydrology8040178.
Texto completo da fonteDecharme, B., R. Alkama, H. Douville, M. Becker e A. Cazenave. "Global Evaluation of the ISBA-TRIP Continental Hydrological System. Part II: Uncertainties in River Routing Simulation Related to Flow Velocity and Groundwater Storage". Journal of Hydrometeorology 11, n.º 3 (1 de junho de 2010): 601–17. http://dx.doi.org/10.1175/2010jhm1212.1.
Texto completo da fonteDietzel, M., A. Leis, R. Abdalla, J. Savarino, S. Morin, M. E. Böttcher e S. Köhler. "<sup>17</sup>O excess traces atmospheric nitrate in paleo-groundwater of the Saharan desert". Biogeosciences 11, n.º 12 (17 de junho de 2014): 3149–61. http://dx.doi.org/10.5194/bg-11-3149-2014.
Texto completo da fonteShevchenko, O., V. Bublyas e D. Oshurok. "COMBINATION OF GEOPHYSICAL AND HYDROGEOLOGICAL DATA TO EXPLAIN CONTRADICTIONS BETWEEN INFILTRATION AND ATMOSPHERIC PRECIPITATION". Visnyk of Taras Shevchenko National University of Kyiv. Geology, n.º 1 (100) (2023): 111–23. http://dx.doi.org/10.17721/1728-2713.100.13.
Texto completo da fonteMaksimavičius, Edmundas, e Peter Roslev. "Methane emission and methanotrophic activity in groundwater-fed drinking water treatment plants". Water Supply 20, n.º 3 (23 de janeiro de 2020): 819–27. http://dx.doi.org/10.2166/ws.2020.009.
Texto completo da fonteQuichimbo, E. Andrés, Michael Bliss Singer, Katerina Michaelides, Daniel E. J. Hobley, Rafael Rosolem e Mark O. Cuthbert. "DRYP 1.0: a parsimonious hydrological model of DRYland Partitioning of the water balance". Geoscientific Model Development 14, n.º 11 (15 de novembro de 2021): 6893–917. http://dx.doi.org/10.5194/gmd-14-6893-2021.
Texto completo da fonteHain, Christopher R., Wade T. Crow, Martha C. Anderson e M. Tugrul Yilmaz. "Diagnosing Neglected Soil Moisture Source–Sink Processes via a Thermal Infrared–Based Two-Source Energy Balance Model". Journal of Hydrometeorology 16, n.º 3 (27 de maio de 2015): 1070–86. http://dx.doi.org/10.1175/jhm-d-14-0017.1.
Texto completo da fonteShrestha, P., M. Sulis, C. Simmer e S. Kollet. "Impacts of grid resolution on surface energy fluxes simulated with an integrated surface-groundwater flow model". Hydrology and Earth System Sciences Discussions 12, n.º 7 (3 de julho de 2015): 6437–66. http://dx.doi.org/10.5194/hessd-12-6437-2015.
Texto completo da fonteMarotta, H., C. M. Duarte, L. Pinho e A. Enrich-Prast. "Rainfall leads to increased <i>p</i>CO<sub>2</sub> in Brazilian Coastal Lakes". Biogeosciences Discussions 6, n.º 6 (15 de dezembro de 2009): 11521–39. http://dx.doi.org/10.5194/bgd-6-11521-2009.
Texto completo da fonteNousu, Jari-Pekka, Kersti Leppä, Hannu Marttila, Pertti Ala-aho, Giulia Mazzotti, Terhikki Manninen, Mika Korkiakoski, Mika Aurela, Annalea Lohila e Samuli Launiainen. "Multi-scale soil moisture data and process-based modeling reveal the importance of lateral groundwater flow in a subarctic catchment". Hydrology and Earth System Sciences 28, n.º 20 (24 de outubro de 2024): 4643–66. http://dx.doi.org/10.5194/hess-28-4643-2024.
Texto completo da fonteVergnes, J. P., B. Decharme, R. Alkama, E. Martin, F. Habets e H. Douville. "A Simple Groundwater Scheme for Hydrological and Climate Applications: Description and Offline Evaluation over France". Journal of Hydrometeorology 13, n.º 4 (1 de agosto de 2012): 1149–71. http://dx.doi.org/10.1175/jhm-d-11-0149.1.
Texto completo da fonteBublyas, Volodymyr, e Oleksii Shevchenko. "JUSTIFICATION OF THE EXTENDED COMPOSITION OF OBSERVATIONS AT WATER BALANCE STATIONS AND RESEARCH HYDROGEOPHYSICAL RANGES". Meteorology. Hydrology. Environmental monitoring 2024, n.º 5 (20 de outubro de 2024): 63–88. http://dx.doi.org/10.15407/meteorology2024.05.063.
Texto completo da fonteDe Marco, Alessandra, Maria Francesca Fornasier, Augusto Screpanti, Danilo Lombardi e Marcello Vitale. "Nitrogen Budget and Statistical Entropy Analysis of the Tiber River Catchment, a Highly Anthropized Environment". Soil Systems 6, n.º 1 (2 de fevereiro de 2022): 17. http://dx.doi.org/10.3390/soilsystems6010017.
Texto completo da fonteSmith, K., D. Jackson, G. Smith e S. Norris. "Comparison of modelled uptake to cereal crops of 14C from gaseous or groundwater mediated pathways". Mineralogical Magazine 76, n.º 8 (dezembro de 2012): 3241–49. http://dx.doi.org/10.1180/minmag.2012.076.8.37.
Texto completo da fonteHodson, Andrew J., Aga Nowak, Mikkel T. Hornum, Kim Senger, Kelly Redeker, Hanne H. Christiansen, Søren Jessen et al. "Sub-permafrost methane seepage from open-system pingos in Svalbard". Cryosphere 14, n.º 11 (9 de novembro de 2020): 3829–42. http://dx.doi.org/10.5194/tc-14-3829-2020.
Texto completo da fontePoshyvailo-Strube, Liubov, Niklas Wagner, Klaus Goergen, Carina Furusho-Percot, Carl Hartick e Stefan Kollet. "Impact of groundwater representation on heat events in regional climate simulations over Europe". Earth System Dynamics 15, n.º 2 (5 de março de 2024): 167–89. http://dx.doi.org/10.5194/esd-15-167-2024.
Texto completo da fonteLe Lay, Hugo, Zahra Thomas, François Rouault, Pascal Pichelin e Florentina Moatar. "Characterization of Diffuse Groundwater Inflows into Stream Water (Part II: Quantifying Groundwater Inflows by Coupling FO-DTS and Vertical Flow Velocities)". Water 11, n.º 12 (20 de novembro de 2019): 2430. http://dx.doi.org/10.3390/w11122430.
Texto completo da fonteJahangir, M. M. R., O. Fenton, L. Gill, C. Müller, P. Johnston e K. G. Richards. "Carbon and nitrogen dynamics and greenhouse gases emissions in constructed wetlands: a review". Hydrology and Earth System Sciences Discussions 11, n.º 7 (4 de julho de 2014): 7615–57. http://dx.doi.org/10.5194/hessd-11-7615-2014.
Texto completo da fonteYevenes-Burgos, M. A., e C. M. Mannaerts. "Untangling hydrological pathways and nitrate diffusive sources by chemical appraisal in a stream network of a reservoir catchment". Hydrology and Earth System Sciences Discussions 8, n.º 2 (2 de março de 2011): 2289–322. http://dx.doi.org/10.5194/hessd-8-2289-2011.
Texto completo da fonteSchyns, J. F., A. Y. Hoekstra e M. J. Booij. "Review and classification of indicators of green water availability and scarcity". Hydrology and Earth System Sciences Discussions 12, n.º 6 (11 de junho de 2015): 5519–64. http://dx.doi.org/10.5194/hessd-12-5519-2015.
Texto completo da fonteRahlff, Janina, Helge-Ansgar Giebel, Christian Stolle, Oliver Wurl, Alexander J. Probst e Daniel P. R. Herlemann. "Overlooked Diversity of Ultramicrobacterial Minorities at the Air-Sea Interface". Atmosphere 11, n.º 11 (10 de novembro de 2020): 1214. http://dx.doi.org/10.3390/atmos11111214.
Texto completo da fonteZhang, Quan, Huimin Lei, Dawen Yang, Lihua Xiong, Pan Liu e Beijing Fang. "Decadal variation in CO<sub>2</sub> fluxes and its budget in a wheat and maize rotation cropland over the North China Plain". Biogeosciences 17, n.º 8 (22 de abril de 2020): 2245–62. http://dx.doi.org/10.5194/bg-17-2245-2020.
Texto completo da fonteSubašić, Mirel, Dunja Šamec, Alisa Selović e Erna Karalija. "Phytoremediation of Cadmium Polluted Soils: Current Status and Approaches for Enhancing". Soil Systems 6, n.º 1 (4 de janeiro de 2022): 3. http://dx.doi.org/10.3390/soilsystems6010003.
Texto completo da fonteWu, Yali, Ying Ma, Xianfang Song, Lihu Yang e Shengtian Yang. "Responses of Water Fluxes and Water-Use Efficiency of Maize to Warming Based on Water Transformation Dynamical Processes Experimental Device (WTDPED) Experiment". Water 10, n.º 11 (14 de novembro de 2018): 1660. http://dx.doi.org/10.3390/w10111660.
Texto completo da fonteHertek, S. G., e V. I. Tatarenko. "Creation of 3d model of the object for real estate cadastre purposes". Interexpo GEO-Siberia 6 (18 de maio de 2022): 275–80. http://dx.doi.org/10.33764/2618-981x-2022-6-275-280.
Texto completo da fonteMirel, Oana Stela, e Constantin Florescu. "Simulation of Wastewater Depolution Processes by Advanced Biological Methods". Revista de Chimie 71, n.º 10 (3 de novembro de 2020): 150–60. http://dx.doi.org/10.37358/rc.20.10.8359.
Texto completo da fonteThaysen, E. M., D. Jacques, S. Jessen, C. E. Andersen, E. Laloy, P. Ambus, D. Postma e I. Jakobsen. "Inorganic carbon fluxes across the vadose zone of planted and unplanted soil mesocosms". Biogeosciences 11, n.º 24 (17 de dezembro de 2014): 7179–92. http://dx.doi.org/10.5194/bg-11-7179-2014.
Texto completo da fonteThaysen, E. M., D. Jacques, S. Jessen, C. E. Andersen, E. Laloy, P. Ambus, D. Postma e I. Jakobsen. "Inorganic carbon fluxes across the vadose zone of planted and unplanted soil mesocosms". Biogeosciences Discussions 11, n.º 3 (17 de março de 2014): 4251–99. http://dx.doi.org/10.5194/bgd-11-4251-2014.
Texto completo da fontePozdniakov, S. P., S. O. Grinevsky, E. A. Dediulina e V. N. Samartsev. "Model analysis of observed and predicted climate changes of groundwater recharge in the basin of a small river". Moscow University Bulletin. Series 4. Geology, n.º 3 (28 de junho de 2019): 78–86. http://dx.doi.org/10.33623/0579-9406-2019-3-78-86.
Texto completo da fonteCorapcioglu, M. Y., e A. Baehr. "Immiscible Contaminant Transport in Soils and Groundwater with an Emphasis on Petroleum Hydrocarbons: System of Differential Equations vs Single Cell Model". Water Science and Technology 17, n.º 9 (1 de setembro de 1985): 23–37. http://dx.doi.org/10.2166/wst.1985.0080.
Texto completo da fonteDulinski, M., K. Rozanski, T. Kuc, Z. Gorczyca, J. Kania e M. Kapusta. "Evolution of Radiocarbon in a Sandy Aquifer Across Large Temporal and Spatial Scales: Case Study from Southern Poland". Radiocarbon 55, n.º 2 (2013): 905–19. http://dx.doi.org/10.1017/s0033822200058069.
Texto completo da fonteYao, Yuan, Yongsong Huang, Jiaju Zhao, Li Wang, Youhua Ran, Weiguo Liu e Hai Cheng. "Permafrost thaw induced abrupt changes in hydrology and carbon cycling in Lake Wudalianchi, northeastern China". Geology 49, n.º 9 (3 de junho de 2021): 1117–21. http://dx.doi.org/10.1130/g48891.1.
Texto completo da fonteMobbs, Shelly, George Shaw, Simon Norris, Laura Marang, Trevor Sumerling, Achim Albrecht, Shulan Xu et al. "Intercomparison of Models of 14C in the Biosphere for Solid Radioactive Waste Disposal". Radiocarbon 55, n.º 2 (2013): 814–25. http://dx.doi.org/10.1017/s0033822200057970.
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