A Magyar Hidrológiai Társaság XXXIX. Országos Vándorgyűlése (Nyíregyháza, 2022. július 6-8.)

5. szekció - Hidrológia, hidrogeológia, hidraulika, numerikus modellezés - 26. Szalai József - Garamhegyi Tamás - Hatvani István Gábor - Kovács József (OVF - ELTE - Csillagászati és Földtudományi Kutatóközpont): Hidraulikus áramlási rendszerek lehatárolása sekély felszín alatti vizek vízszint-idősorainak statisztikai elemzése alapján

Irodalomjegyzék: Bartholy, J.; Pongrácz, R. Regional analysis of extreme temperature and precipitation indices for the Carpathian Basin from 1946 to 2001. Glob. Planet. Chang. 2007, 57, 83-95. [Google Scholar] [CrossRef] Bartholy, J.; Pongrácz, R.; Pieczka, I.; Torma, C. Dynamical downscaling of projected 21st century climate for the carpathian basin. In Climate Change—Research and Technology for Adaptation and Mitigation; InTech: Rijeka, Croatia, 2011. [Google Scholar] [CrossRef] Butterworth, J.A.; Schulze, R.E.; Simmonds, L.P.; Moriarty, P.; Mugabe, F. Hydrological processes and water resources management in a dryland environment IV: Long-term groundwater level fluctuations due to variation in rainfall. Hydrol. Earth Syst. Sci. 1999, 3, 353-361. [Google Scholar] [CrossRef] Detty, J.M.; McGuire, J.M. Topographic controls on shallow groundwater dynamics: Implications of hydrologic connectivity between hillslopes and riparian zones in a till mantled catchment. Hydrol. Processes 2010, 24, 2222-2236. [Google Scholar] [CrossRef] Farr, T.G.; Rosen, P.A.; Caro, E.; Crippen, R.; Duren, R.; Hensley, S.; Kobrick, M.; Paller, M.; Rodriguez, E.; Roth, L. The shuttle radar topography mission. Rev. Geophys. 2007, 45. [Google Scholar] [CrossRef] Garamhegyi, T; Kovács, J; Pongrácz, R; Tanos, P; Hatvani, IG. Investigation of the climate-driven periodicity of shallow groundwater level fluctuations in a Central-Eastern European agricultural region, HYDROGEOLOGY JOURNAL 26 : 3 pp. 677-688. , 12 p. (2018)Garamhegyi et al. 2018. Garamhegyi, T.; Hatvani, I.G.; Szalai, J.; Kovács, J. Delineation of Hydraulic Flow Regime Areas Based on the Statistical Analysis of Semicentennial Shallow Groundwater Table Time Series. Water 2020, 12, 828. https://doi.org/10.3390/w12030828 Hao, Z.; AghaKouchak, A.; Nakhjiri, N.; Farahmand, A. Global integrated drought monitoring and prediction system. Sci. Data 2014, 1, 140001. [Google Scholar] [CrossRef] [PubMed] Horváth, F.; Cloetingh, S. Stress-induced late-stage subsidence anomalies in the Pannonian basin. Tectonophysics 1996, 266, 287-300. [Google Scholar] [CrossRef] Jianhua, P.; Xiaohua, W.; Craig, N. Cumulative Precipitation Departure from Average Characterizing Mountain System Recharge in Semi-arid North Okanagan, South Interior British Columbia, Canada. J. Appl. Sci. 2014, 14, 2156-2162. [Google Scholar] [CrossRef] IPCC Climate Change 2021: The Physical Science Basis, 2021. (https://www.ipcc.ch/report/sixth- assess ment­­report-working-group-i/) IVHT(Integrált vízháztartási tájékoztató, operatív aszály és vízhiány-értékelés), 2022.április. Országos Vízügyi Főigazgatóság, www.vizugy.hu Juhász, G. Lithostratigraphical and sedimentological framework of the Pannonian (sl) sedimentary sequence in the Hungarian Plain (Alföld), Eastern Hungary. Acta Geol. Hung. 1991, 34, 53-72. [Google Scholar] Kovács, J.; Kiszely-Peres, B.; Szalai, J.; Kovácsné Székely, I. Periodicity in shallow groundwater level fluctuation time series on the Trans-Tisza Region, Hungary. Acta Geogr. Geol. Meteorol. Debrecina 2010, 4, 65-70. [Google Scholar] Knowles, L., Jr.; O'Reilly, A.M.; Adamski, J.C. Hydrogeology and simulated effects of the ground-water withdrawals from the Floridan aquifer system in lake county and in the Ocala National Forest and vicinity, north-central Florida. Water Resour. Investig. Rep. 2002, 2, 4207. [Google Scholar] Kuti, L.; Körössy, L. The Geological Atlas of the Hungarian Great Plain: Dunaújváros-Izsák; Magyar Állami Földtani Intézet: Budapest, Hungary, 1989. (In Hungarian) [Google Scholar] Ladányi, Z.; Rakonczai, J.; Kovacs, F.; Geiger, J.; Deak, J.A. The effect of recent climatic change on the Great Hungarian Plain. Cereal Res. Commun. 2009, 37, 477-480. [Google Scholar] Ladányi, Z. Evaluation of Soil Characteristics in a Sur-Region of the Danube- Tisza Interfluve, Illancs. Ph.D. Thesis, University of Szeged, Szeged, Hungary, 2011. (In Hungarian). [Google Scholar] Magyar, N.; Hatvani, IG.; Arató, M.; Trásy, B; Blaschke, AP., Kovács, J. A New Approach in Determining the Decadal Common Trends in the Groundwater Table of the Watershed of Lake "Neusiedlersee", WATER 13 : 3 Paper: 290,17 p. (2021) Mádl-Szőnyi, J.; Tóth, J. A hydrogeological type section for the Duna-Tisza Interfluve, Hungary. Hydrogeol. J. 2009, 17, 961-980. [Google Scholar] [CrossRef] Mezősi, G.; Bata, T.; Meyer, B.C.; Blanka, V.; Ladányi, Z. Climate Change Impacts on Environmental Hazards on the Great Hungarian Plain, Carpathian Basin. Int. J. Disaster Risk Sci. 2014, 5, 136-146. [Google Scholar] [CrossRef]

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