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A significant period of increased tectonics was monitored between 2013 and 2015 on the eastern margin of the Bohemian Massif along ten faults. Nine of them showed a uniform scheme: dextral strike-slip along generally NW–SE striking faults, sinistral strike-slip along generally NE-SW striking faults and uprising of the southern blocks. The distinguished fault displacements displayed an NNW-SSE striking compressional component of the stress field during this remarkable tectonic episode.
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art. no. 14
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Bibliogr. 43 poz., fot., rys., tab., wykr.
Twórcy
autor
- Czech Academy of Sciences, Institute of Rock Structure and Mechanics, V Holešovičkách 94/41, 182 09 Prague, Czech Republic
autor
- Czech Academy of Sciences, Institute of Rock Structure and Mechanics, V Holešovičkách 94/41, 182 09 Prague, Czech Republic
autor
- Slovak Caves Administration, State Nature Conservancy of the Slovak Republic, Hodžova 11, 031 01 Liptovský Mikuláš, Slovakia
- Comenius University, Department of Geology and Palaeontology, Faculty of Natural Sciences, Mlynská dolina, Ilkovičova ulica č. 6, 84215, Bratislava, Slovakia
autor
- Comenius University, Department of Geology and Palaeontology, Faculty of Natural Sciences, Mlynská dolina, Ilkovičova ulica č. 6, 84215, Bratislava, Slovakia
Bibliografia
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- 8. Briestenský, M., Stemberk, J., Michalík, J., Bella, P., Rowberry, M.D., 2010b. The use of a karstic cave system in a study of active tectonics: fault movements recorded at Driny Cave, Malé Karpaty Mts. (Slovakia). Journal of Cave and Karst Studies, 73: 114-123.
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- 11. Briestenský, M., Thinová, L., Praksová, R., Stemberk, J., Rowberry, M.D., Knejflová, Z., 2014b.Radon, carbon dioxide, and fault displacements in central Europe related to the Tôhoku Earthquake. Radiation Protection Dosimetry, 160: 78-82.
- 12. Briestenský, M., Rowberry, M.D., Stemberk, J., Stefanov, P., Vozár, J., Šebela, S., Petro, L'., Bella, P., Gaal, L'., Ormukov, Ch., 2015. Evidence of a plate-wide tectonic pressure pulse provided by extensometric monitoring in the Balkan Mountains (Bulgaria). Geologica Carpathica, 66: 427-438.
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- 18. Havíř, J., 2004. Orientation of recent principal stress axes in the Jeseníky region. Acta Geodynamica et Goemoaterialia, 1: 49-57.
- 19. Hók, J., Kysel, R., Kováč, M., Moczo, P., Kristek, J., Kristeková, M., Šujan, M., 2016. A seismic source zone model for the seismic hazard assessment of Slovakia. Geologica Carpathica, 67: 273-288.
- 20. Jarosiński, M., 1998. Contemorary stress field distortion in the Polish part of the Western Outer Carpathians and their basement. Tectonophysics, 297: 91-119.
- 21. Jarosiński, M., 2005. Ongoing tectonic reactivation of the Outer Carpathians and its impact on the foreland: Results of borehole breakout measurements in Poland. Tectonophysics, 410: 189-216.
- 22. Klimeš, J., Rowberry, M.D., Blahůt, J., Briestenský, M., Hartvich, F., Košt’ák, B., Rybář, J., Stemberk, J., Štĕpančíková, P., 2012. The monitoring of slow-moving landslides and assessment of stabilisation measures using an optical-mechanical crack gauge. Landslides, 9: 407-415.
- 23. Košt’ák, B., 2006. Deformation effects in rock massifs and their long-term monitoring. Quarterly Journal of Engineering Geology and Hydrogeology, 39: 249-258.
- 24. Košt’ák, B., Cacoń, S., Dobrev, N.D., Avramova-Tacheva, E., Fecker, E., Kopecký, J., Petro, L'., Schweizer, R., Nikonov, A.A., 2007. Observations of tectonic microdisplacements in Europe in relation to the Iran 1997 and Turkey 1999 earthquakes. Izvestiya Physics of the Solid Earth, 43: 503-516.
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- 26. Lenhardt, W.A., Švancara, J., Melichar, P., Pazdírková, J., Havíř, J., Sýkorová, Z., 2007. Seismic activity of the Alpine-Carpathian-Bohemian Massif region with regard to geological and potential field data. Geologica Carpathica, 58: 397-412.
- 27. Marti, X., Rowberry, M.D., Blahůt, J., 2013. A MATLAB® code for counting the moiré interference fringes recorded by the optical-mechanical crack gauge TM-71. Computers & Geosciences, 52: 164-167.
- 28. Márton, E., Mastella, L., Tokarski, A.K., 1999. Large counterclockwise rotation of the Inner Western Carpathian Paleogene flysh - Evidence from paleomagnetic investigations of the Podhale Flysh (Poland). Physics and Chemistry of the Earth, Part A: Solid Earth and Geodesy, 24: 645-649.
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- 30. Mendecki, J.M., Szczygiel, J., Lizurek, G., Teper, L., 2020. Mining-triggered seismicity governed by a fold hinge zone: The Upper Silesian Coal Basin, Poland. Engineering Geology, 274: 105728.
- 31. Peška, P., 1992. Stress indications in the Bohemian Massif: reinterpretation of borehole televiewer data. Studia Geographica at Godaetica, 36: 307-324.
- 32. Pospíšil, L., Roštinský, P., Švábenský, O., Weigel, J., Witiska, M., 2012. Active tectonics in the eastern margin of the Bohemian Massif - based on geophysical, geomorphological and GPS data. Acta Geodynamica et Geomaterialia, 9: 315-329.
- 33. Pospíšil, L., Švábenský, O., Roštinský, P., Nováková, E., Weigel, J., 2017. Geodynamic risk zone at northern part of the Boskovice Furrow. Acta Geodynamica et Geomaterialia, 14: 113-129.
- 34. Rowberry, M.D., Kriegner, D., Holy, V., Olejnik, K., Llull, M., Frontera, C., Marti, X., 2016. The instrumental resolution of a moiré extensometer in light of its recent automatization. Measurements, 91: 258-265.
- 35. Röller, K., Trepmann, C. A., 2003. Stereo32, software, Ruhr Universität, Bochum, Germany, http://www.ruhr-uni-bochum.de/hardrock/downloads.html.
- 36. Sperner, B., Müller, B., Heidbach, O., Delvaux, D., Reinecker, J., Fuchs, K., 2003. Tectonic stress in the Earth's crust: advances in the World Stress Map project. Geological Society Special Publications, 212: 101-116.
- 37. Stemberk, J., Košt’ák, B., Cacoń, S., 2010. A tectonic pressure pulse and increased geodynamic activity recorded from the long-term monitoring of faults in Europe. Tectonophysics, 487: 1-12.
- 38. Stemberk, J., Briestenský, M., Cacoń, S., 2015. The recognition of transient compressional fault slow-slip along the northern shore of Hornsund Fjord, SW Spitsbergen, Svalbard. Polish Polar Research, 36: 109-123.
- 39. Stemberk, J., Hartvich, F., Blahút, J., Rybář, J., Krejčí, O., 2017. Tectonic strain changes affecting the development of deep seated gravitational slope deformations in the Bohemian Massif and Outer Western Carpathians. Geomorphology, 298: 3-17.
- 40. Stemberk, J., Dal Moro, G., Stemberk, J., Blahůt, J., Coubal, M., Košt’ák, B., Zambrano, M., Tondi, E., 2019a. Strain monitoring of active faults in the central Apennines (Italy) during the period 2002-2017. Tectonophysics, 750: 22-35.
- 41. Stemberk, J., Coubal, M., Stemberk, J., Štěpančíková, P., 2019b. Stress analysis of fault slips data recorded within the Dědičná štola gallery in the Rychlebské hory Mts., NE part of the Bohemian Massif. Acta Geodnymica et Geomaterialia, 16: 315-330.
- 42. Šebela, S., Turk, J., Mulec, J., Košt’ák, B., Stemberk, J., 2009. Statistical evaluation of the 3D monitoring of displacements of Dinaric Fault zone in Postojna Cave, Slovenia. Acta Geodynamica et Geomaterialia, 6: 163-176.
- 43. Špacek, P., Bábek, O., Štepancíková, P., Švancara, J., Pazdírková, J., Sedláček, J., 2015. The Nysa Morava Zone: an active tectonic domain with Late Cenozoic sedimentary grabens in the Western Carpathians' foreland (NE Bohemian Massif). International Journal of Earth Sciences, 104: 963-990.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f315c111-08a6-4fe6-a36a-69b19f09f7e0