Melt migration and melt-rock reaction in the Alpine-Apennine peridotites: Insights on mantle dynamics in extending lithosphere

被引:50
|
作者
Rampone, Elisabetta [1 ]
Borghini, Giulio [2 ]
Basch, Valentin [1 ]
机构
[1] Univ Genoa, DISTAV, Corso Europa 26, I-16132 Genoa, Italy
[2] Univ Milan, Dipartimento Sci Terra, Via Botticelli 23, I-20133 Milan, Italy
关键词
Mantle peridotite; Pyroxenite; Melt migration; Melt impregnation; Melt-rock reaction; Alpine-Apennine ophiolites; FRACTIONATING BASALTIC MAGMA; TRACE-ELEMENT COMPOSITIONS; OCEAN-RIDGE BASALT; ABYSSAL PERIDOTITES; LIGURIAN ALPS; NORTHERN APENNINES; TRANSITION ZONE; PROCESSES BENEATH; OMAN OPHIOLITE; MELT/PERIDOTITE INTERACTION;
D O I
10.1016/j.gsf.2018.11.001
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The compositional variability of the lithospheric mantle at extensional settings is largely caused by the reactive percolation of uprising melts in the thermal boundary layer and in lithospheric environments. The Alpine-Apennine (A-A) ophiolites are predominantly constituted by mantle peridotites and are widely thought to represent analogs of the oceanic lithosphere formed at ocean/continent transition and slow- to ultraslow-spreading settings. Structural and geochemical studies on the A-A mantle peridotites have revealed that they preserve significant compositional and isotopic heterogeneity at variable scale, reflecting a long-lived multi-stage melt migration, intrusion and melt-rock interaction history, occurred at different lithospheric depths during progressive uplift. The A-A mantle peridotites thus constitute a unique window on mantle dynamics and lithosphere-asthenosphere interactions in very slow spreading environments. In this work, we review field, microstructural and chemical-isotopic evidence on the major stages of melt percolation and melt-rock interaction recorded by the A-A peridotites and discuss their consequences in creating chemical-isotopic heterogeneities at variable scales and enhancing weakening and deformation of the extending mantle. Focus will be on three most important stages: (i) old (pre-Jurassic) pyroxenite emplacement, and the significant isotopic modification induced in the host mantle by pyroxenite-derived melts, (ii) melt-peridotite interactions during Jurassic mantle exhumation, i.e. the open-system reactive porous flow at spinel facies depths causing bulk depletion (origin of reactive harzburgites and dunites), and the shallower melt impregnation which originated plagioclase-rich peridotites and an overall mantle refertilization. We infer that migrating melts largely originated as shallow, variably depleted, melt fractions, and acquired Si-rich composition by reactive dissolution of mantle pyroxenes during upward migration. Such melt-rock reaction processes share significant similarities with those documented in modern oceanic peridotites from slow- to ultraslow-spreading environments and track the progressive exhumation of large mantle sectors at shallow depths in oceanic settings where a thicker thermal boundary layer exists, as a consequence of slow-spreading rate. (C) 2019, China University of Geosciences (Beijing) and Peking University. Production and hosting by Elsevier B.V.
引用
收藏
页码:151 / 166
页数:16
相关论文
共 42 条
  • [21] Platinum-group element signature of the primitive mantle rejuvenated by melt-rock reactions: evidence from Sumail peridotites (Oman Ophiolite)
    Lorand, J. -P.
    Alard, O.
    Godard, M.
    [J]. TERRA NOVA, 2009, 21 (01) : 35 - 40
  • [22] Effects of olivine fabric, melt-rock reaction, and hydration on the seismic properties of peridotites: Insight from the Luobusha ophiolite in the Tibetan Plateau
    Sun, Shengsi
    Ji, Shaocheng
    Michibayashi, Katsuyoshi
    Salisbury, Matthew
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2016, 121 (05) : 3300 - 3323
  • [23] Melt Percolation, Melt-Rock Reaction and Oxygen Fugacity in Supra-Subduction Zone Mantle and Lower Crust from the Leka Ophiolite Complex, Norway
    O'Driscoll, Brian
    Leuthold, Julien
    Lenaz, Davide
    Skogby, Henrik
    Day, James M.
    Adetunji, Jacob
    [J]. JOURNAL OF PETROLOGY, 2021, 62 (11)
  • [24] From mantle peridotites to hybrid troctolites: Textural and chemical evolution during melt-rock interaction history (Mt. Maggiore, Corsica, France)
    Basch, Valentin
    Rampone, Elisabetta
    Crispini, Laura
    Ferrando, Carlotta
    Ildefonse, Benoit
    Godard, Marguerite
    [J]. LITHOS, 2018, 323 : 4 - 23
  • [25] A Two-Porosity Double Lithology Model for Partial Melting, Melt Transport and Melt-rock Reaction in the Mantle: Mass Conservation Equations and Trace Element Transport
    Liang, Yan
    Parmentier, E. Marc
    [J]. JOURNAL OF PETROLOGY, 2010, 51 (1-2) : 125 - 152
  • [26] Diversity of mafic rocks in the Ronda peridotite: Evidence for pervasive melt-rock reaction during heating of subcontinental lithosphere by upwelling asthenosphere
    Garrido, CJ
    Bodinier, JL
    [J]. JOURNAL OF PETROLOGY, 1999, 40 (05) : 729 - 754
  • [27] Mineralogical and Re-Os isotope constraints on fluid- and melt-rock interactions and the origin of mantle peridotites from the Amdo ophiolite, northern Tibet
    Wu, Kang
    Shi, Ren-Deng
    Huang, Qi-Shuai
    Gong, Xiao-Han
    Chen, Sheng-Sheng
    Yang, Jing-Sui
    [J]. LITHOS, 2021, 406
  • [28] Highly refractory peridotites in Songshugou, Qinling orogen: Insights into partial melting and melt/fluid-rock reactions in forearc mantle
    Cao, Yi
    Song, Shuguang
    Su, Li
    Jung, Haemyeong
    Niu, Yaoling
    [J]. LITHOS, 2016, 252 : 234 - 254
  • [29] Ligurian pyroxenite-peridotite sequences (Italy) and the role of melt-rock reaction in creating enriched-MORB mantle sources
    Borghini, G.
    Rampone, E.
    Zanetti, A.
    Class, C.
    Fumagalli, P.
    Godard, M.
    [J]. CHEMICAL GEOLOGY, 2020, 532
  • [30] Geochemistry of Fe-rich peridotites and associated pyroxenites from Horni Bory, Bohemian Massif: Insights into subduction-related melt-rock reactions
    Ackerman, Lukas
    Jelinek, Emil
    Medaris, Gordon, Jr.
    Jezek, Josef
    Siebel, Wolfgang
    Strnad, Ladislav
    [J]. CHEMICAL GEOLOGY, 2009, 259 (3-4) : 152 - 167