When crust comes of age: on the chemical evolution of Archaean, felsic continental crust by crustal drip tectonics

被引:116
作者
Nebel, O. [1 ]
Capitanio, F. A. [1 ]
Moyen, J-F [2 ]
Weinberg, R. F. [1 ]
Clos, F. [1 ]
Nebel-Jacobsen, Y. J.
Cawood, P. A. [1 ]
机构
[1] Monash Univ, Sch Earth Atmosphere & Environm, Clayton, Vic 3800, Australia
[2] Univ Lyon, Lab Magmas & Volcans, UJM UCA CNRS IRD, 23 Rue Dr Paul Michelon, F-42023 St Etienne, France
来源
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES | 2018年 / 376卷 / 2132期
基金
澳大利亚研究理事会;
关键词
crustal chemistry; Archaean-proterozoic transition; plate tectonics; tonalite-trondhjemite-granodiorite; TRONDHJEMITE-GRANODIORITE TTG; STYLE PLATE-TECTONICS; YILGARN CRATON; EARLY EARTH; LU-HF; GEOCHEMICAL CONSTRAINTS; SUBDUCTED LITHOSPHERE; PROTEROZOIC BOUNDARY; NEOPROTEROZOIC TIME; TERRESTRIAL CRUST;
D O I
10.1098/rsta.2018.0103
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The secular evolution of the Earth's crust is marked by a profound change in average crustal chemistry between 3.2 and 2.5 Ga. A key marker for this change is the transition from Archaean sodic granitoid intrusions of the tonalite-trondhjemite- granodiorite (TTG) series to potassic (K) granitic suites, akin (but not identical) to I-type granites that today are associated with subduction zones. It remains poorly constrained as to how and why this change was initiated and if it holds clues about the geodynamic transition from a pre-plate tectonic mode, often referred to as stagnant lid, to mobile plate tectonics. Here, we combine a series of proposed mechanisms for Archaean crustal geodynamics in a single model to explain the observed change in granitoid chemistry. Numeric modelling indicates that upper mantle convection drives crustal flow and subsidence, leading to profound diversity in lithospheric thickness with thin versus thick protoplates. When convecting asthenospheric mantle interacts with lower lithosphere, scattered crustal drips are created. Under increasing P-T conditions, partial melting of hydrated meta-basalt within these drips produces felsic melts that intrude the overlying crust to form TTG. Dome structures, in which these melts can be preserved, are a positive diapiric expression of these negative drips. Transitional TTG with elevated K mark a second evolutionary stage, and are blends of subsided and remelted older TTG forming K-rich melts and new TTG melts. Ascending TTG-derived melts from asymmetric drips interact with the asthenospheric mantle to form hot, high-Mg sanukitoid. These melts are small in volume, predominantly underplated, and their heat triggered melting of lower crustal successions mm to form higher-K granites. Importantly, this evolution operates as a disseminated process in mmspace and time over hundreds of millions of years (greater than 200 Ma) in all cratons. This focused ageing of the crust implies that compiled geochemical data can only broadly reflect geodynamic changes on a global or even craton-wide scale. The observed change in crustal chemistry does mark the lead up to but not the initiation of modern-style subduction. This article is part of a discussion meeting issue 'Earth dynamics and the development of plate tectonics'.
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相关论文
共 111 条
[41]   Highly depleted Hadean mantle reservoirs in the sources of early Archean arc-like rocks, Isua supracrustal belt, southern West Greenland [J].
Hoffmann, J. Elis ;
Muenker, Carsten ;
Polat, Ali ;
Koenig, Stephan ;
Mezger, Klaus ;
Rosing, Minik T. .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2010, 74 (24) :7236-7260
[42]   4.2 Ga zircon xenocryst in an Acasta Gneiss from northwestern Canada: Evidence for early continental crust [J].
Iizuka, T ;
Horie, K ;
Komiya, T ;
Maruyama, S ;
Hirata, T ;
Hidaka, H ;
Windley, BF .
GEOLOGY, 2006, 34 (04) :245-248
[43]   Zircon Lu-Hf isotopes and granite geochemistry of the Murchison Domain of the Yilgarn Craton: Evidence for reworking of Eoarchean crust during Meso-Neoarchean plume-driven magmatism [J].
Ivanic, Timothy J. ;
Van Kranendonk, Martin J. ;
Kirkland, Christopher L. ;
Wyche, Stephen ;
Wingate, Michael T. D. ;
Belousova, Elena A. .
LITHOS, 2012, 148 :112-127
[44]   Eoarchean within-plate basalts from southwest Greenland [J].
Jenner, F. E. ;
Bennett, V. C. ;
Yaxley, G. ;
Friend, C. R. L. ;
Nebel, O. .
GEOLOGY, 2013, 41 (03) :327-330
[45]  
Johnson TE, 2017, NATURE, V543, P239, DOI 10.1038/nature21383
[46]  
Johnson TE, 2014, NAT GEOSCI, V7, P47, DOI [10.1038/NGEO2019, 10.1038/ngeo2019]
[47]   Volcanic resurfacing and the early terrestrial crust: Zircon U-Pb and REE constraints from the Isua Greenstone Belt, southern West Greenland [J].
Kamber, BS ;
Whitehouse, MJ ;
Bolhar, R ;
Moorbath, S .
EARTH AND PLANETARY SCIENCE LETTERS, 2005, 240 (02) :276-290
[48]   RHEOLOGY OF THE UPPER MANTLE - A SYNTHESIS [J].
KARATO, S ;
WU, P .
SCIENCE, 1993, 260 (5109) :771-778
[49]   A new parameterization of hydrous mantle melting [J].
Katz, RF ;
Spiegelman, M ;
Langmuir, CH .
GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2003, 4
[50]   Plate tectonics and continental basaltic geochemistry throughout Earth history [J].
Keller, Brenhin ;
Schoene, Blair .
EARTH AND PLANETARY SCIENCE LETTERS, 2018, 481 :290-304