Towards composition of carbonatite melts in peridotitic mantle

被引:11
|
作者
Shatskiy, Anton [1 ,2 ,3 ]
Bekhtenova, Altyna [1 ,2 ,3 ]
Podborodnikov, Ivan, V [1 ,2 ,3 ]
Areflev, Anton V. [1 ,2 ,3 ]
Litasov, Konstantin D. [3 ]
机构
[1] Russian Acad Sci, Sobolev Inst Geol & Mineral, Siberian Branch, Novosibirsk 630090, Russia
[2] Novosibirsk State Univ, Novosibirsk 630090, Russia
[3] Russian Acad Sci, Vereshchagin Inst High Pressure Phys, Troitsk 108840, Moscow, Russia
基金
俄罗斯科学基金会;
关键词
mantle metasomatism; carbonatite melt; Earth's mantle; high-pressure experiment; lherzolite; wehrlitization; UDACHNAYA-EAST KIMBERLITE; PHASE-RELATIONS; SYSTEM K2CO3-MGCO3; GPA IMPLICATIONS; DIAMOND; FLUID; METASOMATISM; ECLOGITE; EQUILIBRIUM; CONSTRAINTS;
D O I
10.1016/j.epsl.2022.117395
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
It is generally accepted that carbonatite metasomatism in the subcontinental lithospheric mantle (SCLM) inevitably causes wehrlitization of the primary lherzolite substrate. However, the K-rich carbonatite inclusions in kimberlitic diamonds containing orthopyroxene indicate that this is not always the case. In the present study, we equilibrated natural garnet lherzolite with carbonate melts containing 33-38 wt% K2O with various Ca# = 10, 20, 30, and 40 at 6 GPa and 1200-1500 degrees C, where Ca# = 100.Ca/(Ca+Mg+Fe). The original ratio of peridotite to carbonate was 58 to 42 by weight. In the studied temperature range, the melt retains essentially carbonate composition with silica content increasing from 1 to 11-12 wt%. The melt with Ca# 10 alters lherzolite to harzburgite, replacing clinopyroxene by orthopyroxene and decreasing CaO content in garnet below 4 wt%. The melts with Ca# 20-30 also consume clinopyroxene; although CaO content in garnet remains in the range of lherzolitic compositions. The melt with Ca# 40 yields wehrlitization, consuming orthopyroxene, increasing clinopyroxene fraction, and increasing CaO content in garnet above 6 wt%. After the interaction, the Ca# of the melt changes as follows 10 -> 16-28, 20 -> 20-33, 30 -> 27-34, and 40 -> 30-34. The olivine + orthopyroxene + clinopyroxene + garnet assemblage was found in equilibrium with carbonatite melt with Ca# 34 at 1200 degrees C and Ca# 30 at 1400 degrees C. Thus, K-rich (26-35 wt% K2O) carbonatite melts with Ca# = 30-34 can appear in equilibrium with garnet lherzolite, while the melts with Ca# < 30 and > 34 can be in equilibrium with harzburgite and wehrlite, respectively, at 6 GPa and 1200-1400 degrees C. Considering that Ca-Mg-Fe carbonates do not melt at the geothermal conditions of the SCLM, while sodic, dolomitic melt causes wehrlitization, high-Mg (Ca# < 35) K-rich dolomitic melt is the only possible carbonatite fluids that are thermodynamically stable in equilibrium with garnet harzburgites and lherzolites in the SCLM at a depth of about 200 km. At higher temperatures corresponding to the underlying asthenosphere, the high alkalinity ceases to be a requirement for the stability of the carbonate melt. Nevertheless, the regularities established here for the K-rich melts remain valid for less alkaline (4-15 wt% Na2O+K2O) primary kimberlite (i.e., mantle carbonatite) melts in the sublithospheric mantle. (C) 2022 Elsevier B.V. All rights reserved.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Trace element partitioning between garnet lherzolite and carbonatite at 6.6 and 8.6 GPa with applications to the geochemistry of the mantle and of mantle-derived melts
    Dasgupta, Rajdeep
    Hirschmann, Marc M.
    McDonough, William F.
    Spiegelman, Marc
    Withers, Anthony C.
    CHEMICAL GEOLOGY, 2009, 262 (1-2) : 57 - 77
  • [22] Mantle xenoliths from Tenerife (Canary Islands): Evidence for reactions between mantle peridotites and silicic carbonatite melts inducing Ca metasomatism
    Neumann, ER
    Wulff-Pedersen, E
    Pearson, NJ
    Spencer, EA
    JOURNAL OF PETROLOGY, 2002, 43 (05) : 825 - 857
  • [23] EoS of mantle minerals coupled with composition and thermal state of the lithosphere: Inferring the density structure of peridotitic systems
    Faccincani, Luca
    Faccini, Barbara
    Casetta, Federico
    Mazzucchelli, Maurizio
    Nestola, Fabrizio
    Coltorti, Massimo
    LITHOS, 2021, 404
  • [24] The effect of composition of mantle fluids/melts on diamond formation processes
    Palyanov, Yuri N.
    Sokol, Alexander G.
    LITHOS, 2009, 112 : 690 - 700
  • [25] Carbonatite Melts and Electrical Conductivity in the Asthenosphere
    Gaillard, Fabrice
    Malki, Mohammed
    Iacono-Marziano, Giada
    Pichavant, Michel
    Scaillet, Bruno
    SCIENCE, 2008, 322 (5906) : 1363 - 1365
  • [26] Chlorine in mantle-derived carbonatite melts revealed by halite in the St.-Honore intrusion (Quebec, Canada)
    Kamenetsky, Vadim S.
    Mitchell, Roger H.
    Maas, Roland
    Giuliani, Andrea
    Gaboury, Damien
    Zhitova, Liudmila
    GEOLOGY, 2015, 43 (08) : 687 - 690
  • [27] MOLECULAR-DYNAMICS SIMULATIONS OF CACO3 MELTS TO MANTLE PRESSURES AND TEMPERATURES - IMPLICATIONS FOR CARBONATITE MAGMAS
    GENGE, MJ
    PRICE, GD
    JONES, AP
    EARTH AND PLANETARY SCIENCE LETTERS, 1995, 131 (3-4) : 225 - 238
  • [28] Mantle carbonatite magma in diamond genesis
    Litvin, Yu. A.
    Bobrov, A. V.
    Kuzyura, A. V.
    Spivak, A. V.
    Litvin, V. Yu.
    Butvina, V. G.
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2009, 73 (13) : A774 - A774
  • [29] Solidus of alkaline carbonatite in the deep mantle
    Litasov, Konstantin D.
    Shatskiy, Anton
    Ohtani, Eiji
    Yaxley, Gregory M.
    GEOLOGY, 2013, 41 (01) : 79 - 82
  • [30] Towards a lower mantle reference temperature and composition
    Deschamps, F
    Trampert, J
    EARTH AND PLANETARY SCIENCE LETTERS, 2004, 222 (01) : 161 - 175