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Frost weathering of selected Tatra rocks in the light of laboratory tests

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Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Frost weathering is one of the types of physical weathering. The goal of this study was to find out how the rates and ways of frost weathering vary, based on laboratory research studies. A variety of types of Tatra rocks, their mineral composition, degree of fissuring, various capabilities of absorption of water, and porosity, all determine the progress of the process of weathering as well as its dissimilar effects and products. Generally, the breaking apart and gradual disintegration of rock into smaller fragments are the results of weathering. Rock samples, intended to be studied in the laboratory, represented rock formations of different age and various geologic units of the Western Tatra Mountains. The laboratory research studies that were conducted simulated processes occurring under natural conditions, which allowed performing an analysis of the physical properties of rocks. The rocks of the greatest and the smallest resistance to frost weathering were identified based on a calculated frost weathering index. The significant resistance of the studied Tatra rocks is influenced by their low open porosity, low capability of absorption of water, rock toughness, high degree of sorting of rock grains (grain sizes are similar), low degree of fracturing of samples in their initial state, and the presence of cementing material filling in rock pores almost entirely. The influence of texture on the disintegration of rocks was not observed, whereas the presence of mineral veins in rocks determined the way they fell apart, which occurred in samples of fine-grained conglomerate.
Rocznik
Strony
5--29
Opis fizyczny
Bibliogr. [29] poz., rys., tab., wykr.
Twórcy
autor
  • Jagiellonian University Institute of Geography and Spatial Management Gronostajowa 7, 30–387 Kraków, Poland
  • Jagiellonian University Institute of Geography and Spatial Management Gronostajowa 7, 30–387 Kraków, Poland
  • Jagiellonian University Institute of Geography and Spatial Management Gronostajowa 7, 30–387 Kraków, Poland
Bibliografia
  • André M. F., 1993. Les versants du Spitsberg. Presses Universitaires de Nancy, Nancy, 131–160.
  • André M. F., 1996. Rock weathering rates in Arctic and Sub-Arctic environments (Abisko Mts., Swedish Lappland). Zeitschrift f. Geomorphologie N.F. 40, 4, 499–517.
  • Baranowska J., Garbiak M., 1999. Badania ultradźwiękowe. Politechnika Szczecińska, Szczecin.
  • Bland W., Rolls D., 1998. Weathering: An Introduction to the Scientific Principles. Oxford. University Press, New York.
  • Chen T.C., Yeung M.R., Mori N., 2004. Effect of water saturation on deterioration of welded tuff due to freeze-thaw action. Cold Regions Science and Technology 38, 127–136.
  • Collins B.D., Stock G.M., 2016. Rockfall triggering by cyclic thermal stressing of exfoliation fractures. Nature Geoscience 9, 5, 395–400.
  • Chrzan T., 1994. Ultradźwiękowe badania właściwości skał i materiałów budowlanych. Wyd. Politechnika Wrocławska, Wrocław.
  • Draebing D., Krautblatter M., 2019. The Efficacy of Frost Weathering Processes in Alpine Rockwalls. Geophysical Reasearch Letters, 46,12, 6516–6524.
  • Evin M., 1987. Lithology and Fracturing control of rock glaciers in southwestern Alp of France and Italy. [in:] J.R. Giardino, J.F. Shorder, J.D. Vitek (eds.), Rock Glaciers. Allen & Unwin, London, 83–160.
  • Gądek B., Grabiec M., Kędzia S., Rączkowska Z., 2016. Reflection of climate changes in the structure and morphodynamics of talus slopes (Tatra Mountains, Poland). Geomorphology 263, 39–49.
  • Hall K., 1999. The role of thermal stress fatigue in the breakdown of rock in cold regions. Geomorphology 31, 47–63.
  • Hall K., Thorn C., 2010. The historical legacy of spatial scales in freeze-thaw weathering: Misrepresentation and resulting misdirection. Geomorphology 130, 83–90.
  • Hall K., Thorn C.E., Matsuoka N., Prick A., 2002. Weathering in cold regions: some thoughts and perspectives. Progress in Physical Geography 26, 4, 577–603.
  • Hallet B., Wallet J.S., Stubbs C.W., 1991. Weathering by Segregation Ice Growth in Microcracks at Sustained Subzero Temperatures: Verification from an Experimental Study Using Acoustic Emissions. Permafrost and Periglacial Processes, 2, 283–300
  • Hess M., 1965. Piętra klimatyczne w polskich Karpatach Zachodnich. Prace Geograficzne UJ 11, 13, 1–237.
  • Lubera E., Krzaklewski P., 2020. Wietrzenie mrozowe wybranych skał tatrzańskich w świetle badań laboratoryjnych. Przegląd Geograficzny 92, 1, 19–39.
  • Łupikasza E., Szypuła B., 2019. Vertical climatic belts in the Tatra Mountains in the light of current climate change. Theoretical and Applied Climatology 136, 249–264.
  • Martini A., 1967. Preliminary experimental studies on frost weathering of certain rock types from the West Sudetes. Biuletyn Peryglacjalny 16, 147–194.
  • Matsuoka N., 1990. Mechanisms of rock breakdown by frost action: an experimental approach. Cold Regions Science and Technology 17, 3, 253–270.
  • Matsuoka N., 2001. Microgelivation versus Macrogelivation: Towards Bridging the Gap between Laboratory and Field Frost Weathering. Permafrost and Periglacial Processes 12, 299–313.
  • Matsuoka N., Murton J., 2008. Frost weathering: Recent Advances and Future Directions. Permafrost and Periglacial Processes 19, 195–210.
  • Migoń P., 2006. Geomorfologia. PWN, Warszawa.
  • Nowakowski A., Młynarczuk M., Ratajczak T., Gustkiewicz J., 2003. Wpływ warunków termicznych na zmianę niektórych właściwości fizycznych i strukturalnych wybranych skał. Prace Instytutu Mechaniki Górotworu PAN Kraków 5, 29–32.
  • Paasche Ø., Strømsøe J.R., Dahl S.O., Linge H., 2006. Weathering characteristics of Arctic islands in northern Norway. Geomorphology 82, 430–452.
  • Piotrowska K., Danel W., Iwanow A., Gaździcka E., Rączkowski W., Bezák V., Maglay J., Polák M., Kohút M., Gross P., 2015. Mapa geologiczna. [in:] Atlas Tatr – Przyroda nieożywiona. Tatrzański Park Narodowy, Zakopane.
  • Rączkowska Z., 2007. Współczesna rzeźba peryglacjalna wysokich gór Europy. Prace Geograficzne IGiPZ PAN 212, 1–252.
  • Sass O., 2005. Rock moisture measurements: Techniques, results, and implications for weathering. Earth Surface Processes and Landforms 30, 3, 359–374.
  • Traczyk A., Migoń P., 2000. Cold-climate landform patterns in the Sudetes. Effects of lithology, relief and glacial history. Acta Universitatis Carolinae 25, Supplementum, 185–210.
  • Tricart J., 1960. Prace doświadczalne w zakresie zagadnienia wietrzenia mrozowego. [in:] J. Tricart (ed.), Zagadnienia geomorfologiczne. PWN, Warszawa, 201–234.
  • Turkington A.V., Paradise R.T., 2005. Sandstone weathering: a century of research and innovation. Geomorphology 67, 229–253.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-c4d3456b-9b87-48e8-9cf2-af4097a2f6f1
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