Warianty tytułu
Języki publikacji
Abstrakty
Wydawca
Czasopismo
Rocznik
Tom
Numer
Opis fizyczny
p.95-103,fig.,ref.
Twórcy
autor
- Institute of Geography and Spatial Management, Jagiellonian University, Gronostajowa 7, 30-387 Krakow, Poland
autor
Bibliografia
- Beylich A., Sandberg O., Molau U. & Wache S., 2006. Intensity and spatio-temporal variability of fluvial sediment transfers in an Arctic-oceanic periglacial environment in northernmost Swedish Lapland (Latnjavagge catchment). Geomorphology 80(1-2): 114-130, D0I:10.1016/j. Geomorph.2005.09.014.
- Beylich A. Kolstrup E. Thyrsted T. & Gintz D., 2004. Water chemistry and its diversity in relation to local factors in the Latnjavagge drainage basin, arctic-oceanic Swedish Lapland. Geomorphology 58 (1-4): 125-143, D0I:10.1016/ S0169-555X(03)00228-9.
- Bolewski A., 1982. Mineralogia szczegółowa (Detailed Mineralogy). Wydawnictwa Geologiczne, Warszawa.
- Brown G., 2002. Glacial meltwater hydrochemistry. Applied Geochemistry 17(7): 855-883, D0I:10.1016/S0883- 2927(01)00123-8.
- Caine N., 1992. Spatial patterns of geochemical denudation rate in a Colorado Alpine Environment. In: J.C. Dixon, A.D. Abrahams (eds.), Periglacial Geomorphology Proceedings to the 22nd Annual Binghamton Symposium in Geomorphology, John Wiley and sons, Chichester: 63-88.
- Caine N., 1979. Rock weathering rates at the soil surface in an alpine environment. Catena 6(2): 131-144, D0I:10.1016/0341-8162(79)90003-1.
- Collins N., 1979. Hydrochemistry of meltwaters draining from an alpine glacier (Gornergletsher, Switzerland). Arctic and Alpine Research, 11(3): 307-324.
- Darmody R.G., Thorn C.E., Harder R.L., Schlyter J.P. & Dixon J.C., 2000. Weathering implications of water chemistry in an arctic-alpine environment, northern Sweden. Geomorphology, 34(1-2): 89-100, D0I:10.1016/S0169- 555X(00)00002-7.
- Dixon J.C., Thorn C.E. & Darmody R.G., 1984. Chemical weathering processes on the Vantage Peak Nunatak, Juneau Icefield, southern Alaska. Physical Geography, 5: 111-131.
- Hodson A., Tranter M. & Vante G., 2000. Contemporary rates of chemical denudation and C02 sequestration in glacier basins: an Arctic perspective. Earth Surface Processes and Landforms, 25: 1447-1471, D0I: 10.1002/1096.9837(200012)25:13<1447::AID-ESP156>3.0.C0; 2-9
- Hounslow A.W., 1995. Water Quality Data Analysis and Interpretation. Lewis Publisher, Los Angeles.
- Kononov Y., Ananicheva, M. & Willis, I., 2005. High-resolution reconstruction of Polar Ural glaciers mass balance for the last millennium. Annals of Glaciology, 42: 163-170, DOI: 10.3189/172756405781812709.
- Krawczyk W. & Pettersson L.-E. 2007. Chemical denudation rates and carbon dioxide drawdown in an ice-free polar karst catchment: Londonelva, Svalbard. Permafrost and Periglacial Processes 18(4): 337-350, DOI: 10.1002/ppp. 599.
- Lessovaia S.N. & Polekhovsky Yu., 2009. Mineralogical composition of shallow soils on basic and ultrabasic rocks of East Fennoscandia and of the Ural Mountains, Russia. Clays and Clay Minerals, 57(4): 476-485, DOI: 10.1346/ CCMN.2009.0570408.
- Mangerud J., Gosse J., Matiouchkov A. & Dolvik T., 2008. Glaciers in the Polar Urals, Russia, were not much larger during the Last Global Glacial Maximum than today. Quaternary Science Reviews, 27 (9-10): 1047-1057, DOI: 10.1016/j.quascirev.2008.01.015.
- Rapp A., 1960. Recent development of mountain slopes in Karkevagge and surroundings, northern Scandinavia. Geografiska Annaler, 42: 71-200.
- Stupnicka E., 1978. Zarys geologii regionalnej świata. Wydawnictwa Geologiczne, Warszawa.
- Tranter M., Brown G. H., Hodson A. J. & Gurnell A. M. 1996: Hydrochemistry as an indicator of subglacial drainage system structure: A comparison of alpine and sub-polar environments. Hydrological Processes 10(4): 541-556, DOI: 10.1002/(SICI)1099-1085(199604)10:4<541::AID- HYP391>3.0.C0; 2-9.
- Troitsky L.S., 1961. Some features of modern glaciation of Polar Urals. (Nekotoriye osobennosti sovremennogo oledeneniya Poliarnogo Urala). Glaciological Studies. (Gliatsiologicheskiye issledovaniya) 6: 70-85.
- Tushinskiy G.K., 1963. Glaciers, snowfield, and avalanche of the Soviet Union. State Publishing House of Geographical Literature, Moscow.
- Wadham J.L., Hodson A.J., Tranter M. & Dowdeswell J.A., 1998. The hydrochemistry of meltwaters draining a polythermal-based, high arctic glacier, south Svalbard: I. The ablation season. Hydrological Processes 12(12): 1825-1849, DOI: 10.1002/(SICI)1099- 1085(19981015)12:12<1825::AID-HYP669>3.0.CO; 2-R.
- Wadham J.L., Tranter M. & Dowdeswell J.A., 2000. Hydrochemistry of meltwaters draining a polythermal-based, high-arctic glacier, south Svalbard: II. winter and early spring. Hydrological Processes 14(10): 1767-1786, DOI: 10.1002/1099-1085(200007)14:10<1767::AID-HYP103 >3.0.CO; 2-Q.
- Wałach P., 2008. The daily air temperature course in the bottom of selected glacier cirques in the Polar Ural. Problemy Klimatologii Polarnej, 18: 171-180.
- Wałach P. & Stachnik Ł., 2011. Wpływ warunków meteorologicznych na kształtowanie się odpływu i chemizmu wód w zlewni lodowca Obrucheva (Ural Polarny). Przegląd Geograficzny. (in review)
- Voloshina A.P., 1987. Some totals of the mass balance studies of Polar Ural glaciers. Data of Glaciologic Studies 61: 44-51.
- Zakharova E.A., Pokrovsky O.S., Dupre B., Gaillardet J. & Efimova L.E., 2007. Chemical weathering of silicate rocks in Karelia region and Kola peninsula, NW Russia: Assessing the effect of rock composition, wetlands and vegetation. Chemical Geology 242: 255-277, DOI: 10.1016/j. chemgeo.2007.03.018.
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.agro-287df89a-5a96-48e4-9b03-46ef67ea5528