Sources and geodynamics of the Late Cenozoic volcanism of Central Mongolia: Evidence from isotope-geochemical studies

被引:36
|
作者
Savatenkov, V. M. [1 ]
Yarmolyuk, V. V. [2 ]
Kudryashova, E. A. [2 ]
Kozlovskii, A. M. [2 ]
机构
[1] Russian Acad Sci, Inst Precambrian Geol & Geochronol, St Petersburg 199034, Russia
[2] Russian Acad Sci, Inst Geol Ore Deposits Petrog Mineral & Geochem, Moscow 119017, Russia
基金
俄罗斯基础研究基金会;
关键词
CENTRAL-ASIA; LITHOSPHERIC MANTLE; TRACE-ELEMENT; EAST SIBERIA; HOT-SPOT; SR; ND; PB; SYSTEMATICS; MAGMATISM;
D O I
10.1134/S0869591110030057
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
In the Late Cenozoic, the volcanism of the South Khangai Volcanic Region (SKhVR) spanned the Khangai Range and its framing. Geochronological, petrochemical, geochemical, and isotope studies were performed for volcanic rocks of this region, which are represented by high-K basic and intermediate rocks of OIB affinity. Initial Sr, Nd, and Pb isotope ratios in the volcanic rocks of the SKhVR are close to those of the volcanic rocks of Pitcairn Island and form trends between PREMA, EMI, and EMII sources. The petrochemical, geochemical, and isotope zoning is unraveled in distribution of the Late Cenozoic associations within SKhVR. Volcanic sequences of the Vodorazdel'nyi graben occupying the watershed part of the Khangai Range and adjacent valley lava flows are located in the central part of the area. The peripheral part is made up of the volcanic associations formed within the Lake Valley and Taryat grabens and the Orkhon-Selenga area. Compositional zoning is characterized by an increase in contents of alkalis, Ti, P, and some other lithophile elements, as well as systematic changes of isotope composition of the rocks from central part toward periphery. Taking into account gravimetric and seismotomographic data marking asthenospheric rise beneath Central Khangai, it was concluded that the studied volcanism is related to mantle plume activity. Revealed compositional zoning of the volcanic region presumably reflects the plume heterogeneity. The volcanism of the watershed part of the Khangai Range was controlled by plume channel, which was presumably fed by PREMA-type lower mantle. The isotopic enrichment of lavas in the peripheral parts of the volcanic region was not related to participation of lithospheric components, but reflects the distribution of compositionally different mantle sources in plume structure. The most probable source of enriched components in the Late Cenozoic rocks of SKhVR was Early Precambrian recycled crustal material, which was isolated from upper mantle convection after subduction and transported by the ascending mantle jet to the lithosphere base only in the Late Cenozoic.
引用
收藏
页码:278 / 307
页数:30
相关论文
共 50 条
  • [21] Mantle sources of quaternary volcanism on Zhokhov Island (De Long Islands, East Arctic): Isotope-geochemical features of the basalts and spinel lherzolite xenoliths
    V. G. Sakhno
    R. Sh. Krymsky
    B. V. Belyatsky
    S. S. Shevchenko
    S. A. Sergeev
    Doklady Earth Sciences, 2015, 460 : 123 - 129
  • [22] Mantle sources of quaternary volcanism on Zhokhov Island (De Long Islands, East Arctic): Isotope-geochemical features of the basalts and spinel lherzolite xenoliths
    Sakhno, V. G.
    Krymsky, R. Sh.
    Belyatsky, B. V.
    Shevchenko, S. S.
    Sergeev, S. A.
    DOKLADY EARTH SCIENCES, 2015, 460 (02) : 123 - 129
  • [23] Mantle source of the Archean Panozero pluton, Karelia: evidence from isotope-geochemical study of rocks and minerals
    S. B. Lobach-Zhuchenko
    V. M. Savatenkov
    A. V. Kovalenko
    V. P. Chekulaev
    N. S. Guseva
    Geochemistry International, 2010, 48 : 366 - 380
  • [24] Genesis of Cenozoic basalts in Central Asia and northern Mongolia (from helium isotope and petrochemical data)
    Zhukova, I. A.
    Litasov, Yu. D.
    Duchkov, A. D.
    Novikov, D. D.
    RUSSIAN GEOLOGY AND GEOPHYSICS, 2007, 48 (02) : 157 - 166
  • [25] Late Triassic stage of formation of the Mongolo-Transbaikalian alkaline-granitoid province: Data of isotope-geochemical studies
    Litvinovsky, BA
    Yarmolyuk, VV
    Vorontsov, AA
    Zhuravlev, DZ
    Posokhov, VF
    Sandimirova, GP
    Kuz'min, DV
    GEOLOGIYA I GEOFIZIKA, 2001, 42 (03): : 445 - 455
  • [26] Mantle source of the Archean Panozero pluton, Karelia: evidence from isotope-geochemical study of rocks and minerals
    Lobach-Zhuchenko, S. B.
    Savatenkov, V. M.
    Kovalenko, A. V.
    Chekulaev, V. P.
    Guseva, N. S.
    GEOCHEMISTRY INTERNATIONAL, 2010, 48 (04) : 366 - 380
  • [27] Feedback of Slab Distortion on Volcanic Arc Evolution: Geochemical Perspective From Late Cenozoic Volcanism in SW Japan
    Nguyen, Tai Truong
    Kitagawa, Hiroshi
    Pineda-Velasco, Ivan
    Nakamura, Eizo
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2020, 125 (10)
  • [28] Geochemical constraints on the formation of late Cenozoic ferromanganese micronodules from the central Arctic Ocean
    Winter, BL
    Johnson, CM
    Clark, DL
    MARINE GEOLOGY, 1997, 138 (1-2) : 149 - 169
  • [29] Stages of the Epigenetic Alteration of Upper Precambrian Rocks from the Central East European Platform: Evidence from Rb–Sr and K–Ar Isotope-Geochemical Investigations
    V. I. Vinogradov
    D. I. Golovin
    M. I. Bujakaite
    M. B. Burzin
    Lithology and Mineral Resources, 2003, 38 : 177 - 182
  • [30] The age of young intrusions of Tsana Complex (Greater Caucasus) and isotope-geochemical evidence for their origin from hybrid magmas
    Lebedev, V. A.
    Dudauri, O. Z.
    Togonidze, M. G.
    Gol'tsman, Yu. V.
    PETROLOGY, 2016, 24 (04) : 315 - 335