Hidrológiai Közlöny, 2020 (100. évfolyam)

2020 / 3. szám

54 Hidrológiai Közlöny 2020. 100. évf. 3. sz. Tino G. M. (2009). Precision gravimetry with atomic sen­sors. Measurement of Science and Technology 20 022001 (16pp). doi: 10.1088/0957-0233/20/2/022001. Doodson A. T. (1921). The harmonic development of the tide generating potential. Proc. Royal Soc. London A 100,306-328. Egbert G. D., Bennett A. F., Foreman M. G. G. (1994). TOPEX/POSEIDON tides estimated using a global in­verse model. Journal of Geophysical Research 99, (Cl2), 24, 821-852. Egbert G. D„ Ray R. D., Bill, B. G. (2004). Numerical modelling of the global semidiurnal tide in the present day and in the last glacial maximum. Journal of Geophysical Research 109, C03003, doi: 10.1029/2003JC001973. Ekman M. (1993). A concise history of the theories of tide, precession-nutation and polar motion (from antiquity to 1950). Surveys in Geophysics 14, 585-617. Eper-Pápai I., Mentes Gy., Kis M., Koppán A. (2014). Comparison of two extensometric stations in Hungary. 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Kumpel H.-J. (1997). Tides in Water-Saturated Rocks. In: Wilhelm H., Zürn W„ Wenzel H. G. (Eds.) (1997). Tidal Phenomena, Lecture Notes in Earth Sciences 66. Berlin, Heidelberg: Springer, pp. 277-292. LaCoste L. J. B. (1934). A new type long period verti­cal seismograph. Physics 5 (7), 178-180. Leblond P. H. és MysakL. A. (1979). Ocean Waves: A Survey of Some Recent Results. SIAM Review 21, (3), 289-328. http://www.jstor.org/stable/2029570. LeblondP. H. és MysakL. A. (1981). Waves in Ocean. Elsevier, p. 602. Lénárt L. (2005). Some aspects of the "3E's" (Econom­ics-Environment-Ethics) model for sustain-able water us­age in the transboundary Slovakian and Aggtelek karst re­gion based on some examples from the Bükk Mountains. PhD thesis work, Kassa/Kosice, TUKE. Maréchal J. C., Sarma M. P., Ahmed S., Lachassagne P. (2002). Establishment of earth tides effect on water level fluctuations in an unconftned hard rock aquifer using spectral analysis. Research Communications, Current Sci­ence 83 (1), 61-64. Mádlné-Szőnyi J., Czauner B., Simon Sz., Erős A., Zsemle F., Pulay E., Havril T. (2013). Hidrogeológia. Eöt­vös Loránd Tudományegyetem. pp. 1-179. https://ttk.elte.hu/dstore/document/868/book.pdf. Medvedev I. P. (2018). Tides in the Black Sea: Obser­vations and Numerical Modelling. Pure Appl. Geophys. 175, 1951-1969. https://doi.org/10.1007/s00024-018-1878-x. Melchior P. (1978). The Tides of the Planet Earth. Ox­ford: Pergamon Press. Mentes Gy. (1981). Horizontal pendulum with capaci­tive transducer. Acta Geodaetica Geophysica et Montanis­­tica Academiae Scientiarum Hungaricae 16, 269-280. Mentes Gy. (1985). Horizontális inga kapacitív mérőátalakítóval. Kandidátusi értekezés, p. 170. Mentes Gy. (2010). Quartz tube extensometer for ob­servation of Earth tides and local tectonic deformations at the Sopronbánfalva Geodynamic Observatory, Hungary. Review of Scientific Instruments 81 (7), 074501. Mentes Gy. (2018). A dunaszekcsői partfalmozgás okainak vizsgálata. Hidrológiai Közlöny 98 (3), 34-45. Mentes Gy. (2019). A Sopronbánfalvai Geodinamikai obszervatórium története. Geodézia és Kartográfia 6, 4-13. Mentes Gy és Eper-Pápai I. (2009). Relations between microbarograph and strain data. Journal of Geodynamics 48, 110-114. Mentes Gy., Bódis V. B. (2012). Relationships between short periodic slope tilt variations and vital processes of the vegetation. J. Appl. Geodesy 6, 83-88. https://doi.org/! 0.1515/jag-2012-0009.

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