Lavas from the Elbrus volcano, Greater Caucasus


Autoria(s): Lebedev, VA; Chemyshev, IV; Chugaev, AV; Gol'tsman, YuV; Bairova, ED
Cobertura

MEDIAN LATITUDE: 43.349500 * MEDIAN LONGITUDE: 42.483626 * SOUTH-BOUND LATITUDE: 43.255000 * WEST-BOUND LONGITUDE: 42.354000 * NORTH-BOUND LATITUDE: 43.438000 * EAST-BOUND LONGITUDE: 42.535000

Data(s)

24/09/2010

Resumo

Comprehensive geochronological and isotope-geochemical studies showed that the Late Quaternary Elbrus Volcano (Greater Caucasus) experienced long (approximately 200 ka) discrete evolution with protracted periods of igneous quiescence (approximately 50 ka) between large-scale eruptions. Volcanic activity of Elbrus is subdivided into three phases: Middle Neopleistocene (225-170 ka), Late Neopleistocene (110-70 ka), and Late Neopleistocene - Holocene (earlier than 35 ka). Petrogeochemical and isotope (Sr-Nd-Pb) signatures of Elbrus lavas point to their mantle-crustal origin. It was shown that hybrid parental magmas of the volcano formed due to mixing and/or contamination of deep-seated mantle melts by Paleozoic upper crustal material of the Greater Caucasus. Mantle reservoir that participated in genesis of Elbrus lavas as well as most other Neogene-Quaternary magmatic rocks of Caucasus was represented by the lower mantle "Caucasus" source. Primary melts generated by this source in composition corresponded to K-Na subalkali basalts with the following isotopic characteristics: 87Sr/86Sr = 0.7041+/-0.0001, e-Nd = +4.1+/-0.2, 147Sm/144Nd = 0.105-0.114, 206Pb/204Pb = 18.72, 207Pb/204Pb = 15.62, and 208Pb/204Pb = 38.78. Temporal evolution of isotope characteristics for lavas of the Elbrus Volcano is well described by a Sr-Nd mixing hyperbole between "Caucasus" source and estimated average composition of the Paleozoic upper crust of the Greater Caucasus. It was shown that, with time, proportions of mantle material in parental magmas of Elbrus gently increased: from ~60% at the Middle-Neopleistocene phase of activity to ~80% at the Late Neopleistocene - Holocene phase, which indicates an increase of activity of a deep-seated source at decreasing input of crustal melts or contamination with time. Unraveled evolution of the volcano with discrete eruption events, lacking signs of cessation of the Late Neopleistocene - Holocene phase, increasing contribution of the deep-seated mantle source in genesis of Elbrus lavas with time as deduced from isotope-geochemical data, as well as numerous geophysical and geological evidence indicate that Elbrus is a potentially active volcano and its eruptions may be resumed. Possible scenarios were proposed for evolution of the volcano, if its eruptive activity continued.

Formato

application/zip, 6 datasets

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.789012

doi:10.1594/PANGAEA.789012

Idioma(s)

en

Publicador

PANGAEA

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Fonte

Supplement to: Lebedev, VA; Chemyshev, IV; Chugaev, AV; Gol'tsman, YuV; Bairova, ED (2010): Geochronology of eruptions and parental magma sources of Elbrus Volcano, the Greater Caucasus: K-Ar and Sr-Nd-Pb isotope data. Translated from Geokhimiya, 2010, 48(1), 45-73, Geochemistry International, 48(1), 41-67, doi:10.1134/S0016702910010039

Palavras-Chave #143Nd/144Nd; 143Nd/144Nd e; 147Sm/144Nd; 147Sm/144Nd std dev; 206Pb/204Pb; 206Pb/204Pb e; 207Pb/204Pb; 207Pb/204Pb e; 208Pb/204Pb; 208Pb/204Pb e; 2SE; 2 sigma; 40Ar; 40Ar std dev; 87Rb/86Sr; 87Sr/86Sr; 87Sr/86Sr e; Age, dated; Age, dated standard deviation; Age dated; Age std dev; air, in sample; Al2O3; Aluminium oxide; Archive of Ocean Data; ARCOD; Area; Area/locality; Argon-40; Argon-40, standard deviation; Ba; Barium; Calcium oxide; Calculated; CaO; Chlorine; Chromium; Cl; Co; Cobalt; Copper; Cr; Cu; e-Nd; epsilon-Neodymium; error, 2 sigma; Event; Fe2O3; Flame photometry; Ga; Gallium; Iron oxide, Fe2O3; K; K2O; K std dev; Lead; Lead 206/Lead 204, error; Lead 206/Lead 204 ratio; Lead 207/Lead 204, error; Lead 207/Lead 204 ratio; Lead 208/Lead 204, error; Lead 208/Lead 204 ratio; Magnesium oxide; Manganese oxide; Mass spectrometry; MC-ICP-MS Thermo-Finnigan Neptune; MgO; MnO; Na2O; Nb; Nd; Neodymium; Neodymium 143/Neodymium 144; Neodymium 143/Neodymium 144, error; Ni; Nickel; Niobium; of Elbrus activity; P2O5; Pb; Phosphorus oxide; Potassium; Potassium, standard deviation; Potassium oxide; radiogenic; Rb; Rock; Rock type; Rubidium; Rubidium 87/Strontium 86 ratio; S; Samarium; Samarium 147/Neodymium 144, standard deviation; Samarium 147/Neodymium 144 ratio; Sample position; Samp pos; Sc; Scandium; sigma; Silicon dioxide; SiO2; Sm; Sodium oxide; Sr; Stage; Strontium; Strontium 87/Strontium 86, error; Strontium 87/Strontium 86 ratio; Sulphur, total; TiO2; Titanium oxide; V; Vanadium; X-ray fluorescence (XRF); Y; Yttrium; Zinc; Zirconium; Zn; Zr
Tipo

Dataset