High-pressure melting of carbonated eclogite and experimental constraints on carbon recycling and storage in the mantle

被引:272
|
作者
Hammouda, T [1 ]
机构
[1] Univ Clermont Ferrand, CNRS, OPGC, Lab Magmas & Volcans, F-63038 Clermont Ferrand, France
关键词
carbon cycle; subduction; diamond; carbonatite; high pressure;
D O I
10.1016/S0012-821X(03)00361-3
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
High-pressure experiments (5-10 GPa, corresponding to approximately 150-300 km depth in the mantle) have been conducted on a basalt+calcite mixture in order to constrain the fate of carbonates carried on subducted ocean floor. At 5 GPa, carbonate breakdown occurs between 1100 and 1150degreesC, and coincides with silicate melting. At 6.5 GPa and above, only carbonatitic melts were produced and the solidus temperature is located below 1000degreesC. Liquid immiscibility is observed at the transition from silicate to carbonate melting (6 GPa and 1300degreesC). The carbonatitic solidus in the eclogite is located 4 GPa higher in pressure than in the peridotitic system. This is due to the difference of silicate mineralogies involved in carbonation reactions. In addition, carbonatites produced in the present study are calcium-rich (Ca/(Ca+Fe+Mg) ca. 0.80), in striking contrast to those produced by melting of carbonated peridotite (Ca/(Ca+Fe+Mg) ca. 0.50). Carbonated eclogite should therefore be considered as a potential source for the most abundant carbonatite type worldwide, but it is stressed that carbonatitic magmatism could be a multistage process. Compared to pressure-temperature paths of subducting slabs, the present results suggest that carbonates will most likely be removed from the slab before reaching 300 km, and are unlikely to be introduced by subduction either in the transition zone or in the lower mantle. Therefore, the deep carbon cycle appears to be restricted to the upper mantle (300 km or shallower depths). Carbonate-enriched portions located in cooler parts of the slab (fractures) could allow for oxidized carbon introduction to deeper mantle regions, but more experiments at higher pressures are necessary to evaluate this hypothesis. Because carbonatite production from carbonated eclogites occurs in the diamond stability field, the present experimental results lend further support to recent models of diamond formation involving carbonated melts in the mantle. (C) 2003 Elsevier B.V. All rights reserved.
引用
收藏
页码:357 / 368
页数:12
相关论文
共 50 条
  • [41] High-pressure melting curve of hydrogen
    Davis, Sergio M.
    Belonoshko, Anatoly B.
    Johansson, Borje
    Skorodumova, Natalia V.
    van Duin, Adri C. T.
    JOURNAL OF CHEMICAL PHYSICS, 2008, 129 (19):
  • [42] High-pressure melting curve of titanium
    Stutzmann, Vincent
    Dewaele, Agnes
    Bouchet, Johann
    Bottin, Francois
    Mezouar, Mohamed
    PHYSICAL REVIEW B, 2015, 92 (22):
  • [43] Formation and evolution of high-pressure leucogranulites:: Experimental constraints and unresolved issues
    Kotková, J
    Harley, SL
    PHYSICS AND CHEMISTRY OF THE EARTH PART A-SOLID EARTH AND GEODESY, 1999, 24 (03): : 299 - 304
  • [44] Ti and Cr in High-Pressure Mica: Experimental Study and Application to the Mantle Assemblages
    Bendeliani, A. A.
    Bobrov, A. V.
    Bindi, L.
    Eremin, N. N.
    PETROLOGY, 2022, 30 (SUPPL 1) : S157 - S173
  • [45] THE FORMATION OF ECLOGITE FROM AMPHIBOLITE DURING HIGH-PRESSURE METAMORPHOSIS
    MARESCH, W
    FORTSCHRITTE DER MINERALOGIE, 1982, 60 : 137 - 138
  • [46] High-Pressure Orthorhombic Ferromagnesite as a Potential Deep-Mantle Carbon Carrier
    Liu, Jin
    Lin, Jung-Fu
    Prakapenka, Vitali B.
    SCIENTIFIC REPORTS, 2015, 5
  • [47] Ti and Cr in High-Pressure Mica: Experimental Study and Application to the Mantle Assemblages
    A. A. Bendeliani
    A. V. Bobrov
    L. Bindi
    N. N. Eremin
    Petrology, 2022, 30 : S157 - S173
  • [48] Some experimental constraints on major and trace element partitioning during partial melting of eclogite
    Klemme, S
    Blundy, JD
    Wood, BJ
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2002, 66 (15A) : A405 - A405
  • [49] CARBON IN THE EARTHS MANTLE - PRESENT THEORIES IN THE LIGHT OF VERY HIGH-PRESSURE EXPERIMENTS
    SCHWAB, RG
    SCHEUBEL, B
    FORTSCHRITTE DER MINERALOGIE, 1982, 60 : 193 - 194
  • [50] High-Pressure Orthorhombic Ferromagnesite as a Potential Deep-Mantle Carbon Carrier
    Jin Liu
    Jung-Fu Lin
    Vitali B. Prakapenka
    Scientific Reports, 5