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High-temperature granulites and supercontinents 被引量:4

High-temperature granulites and supercontinents
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摘要 The formation of continents involves a combination of magmatic and metamorphic processes. These processes become indistinguishable at the crust-mantle interface, where the pressure-temperature(P-T)conditions of(ultra) high-temperature granulites and magmatic rocks are similar. Continents grow laterally, by magmatic activity above oceanic subduction zones(high-pressure metamorphic setting), and vertically by accumulation of mantle-derived magmas at the base of the crust(high-temperature metamorphic setting). Both events are separated from each other in time; the vertical accretion postdating lateral growth by several tens of millions of years. Fluid inclusion data indicate that during the high-temperature metamorphic episode the granulite lower crust is invaded by large amounts of low H2O-activity fluids including high-density CO2 and concentrated saline solutions(brines). These fluids are expelled from the lower crust to higher crustal levels at the end of the high-grade metamorphic event. The final amalgamation of supercontinents corresponds to episodes of ultra-high temperature metamorphism involving large-scale accumulation of these low-water activity fluids in the lower crust.This accumulation causes tectonic instability, which together with the heat input from the subcontinental lithospheric mantle, leads to the disruption of supercontinents. Thus, the fragmentation of a supercontinent is already programmed at the time of its amalgamation. The formation of continents involves a combination of magmatic and metamorphic processes. These processes become indistinguishable at the crust-mantle interface, where the pressure-temperature(P-T)conditions of(ultra) high-temperature granulites and magmatic rocks are similar. Continents grow laterally, by magmatic activity above oceanic subduction zones(high-pressure metamorphic setting), and vertically by accumulation of mantle-derived magmas at the base of the crust(high-temperature metamorphic setting). Both events are separated from each other in time; the vertical accretion postdating lateral growth by several tens of millions of years. Fluid inclusion data indicate that during the high-temperature metamorphic episode the granulite lower crust is invaded by large amounts of low H2O-activity fluids including high-density CO2 and concentrated saline solutions(brines). These fluids are expelled from the lower crust to higher crustal levels at the end of the high-grade metamorphic event. The final amalgamation of supercontinents corresponds to episodes of ultra-high temperature metamorphism involving large-scale accumulation of these low-water activity fluids in the lower crust.This accumulation causes tectonic instability, which together with the heat input from the subcontinental lithospheric mantle, leads to the disruption of supercontinents. Thus, the fragmentation of a supercontinent is already programmed at the time of its amalgamation.
出处 《Geoscience Frontiers》 SCIE CAS CSCD 2016年第1期101-113,共13页 地学前缘(英文版)
基金 funding received by James Cook University
关键词 CONTINENTS SUPERCONTINENTS Magmatism and metamorphism Fluids TECTONICS Continents Supercontinents Magmatism and metamorphism Fluids Tectonics
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  • 1Michael Brown.变质作用、板块构造及超级大陆旋回[J].地学前缘,2007,14(1):1-18. 被引量:24
  • 2Anderson, D.L., Bass, J.D., 1986, Transition region of the Earth's upper mantle. Nature 320, 321-328.
  • 3Armstrong, R.L., Harmon, R.S., 1981. Radiogenic isotopes: the case for crustal recy- cling on a near-steady-state no-continental-growth Earth [and discussion]. Philosophical Transactions of the Royal Society of London, Series A 301, 443-472.
  • 4Belousova, E.A., Kostitsyn, Y.A., Griffin, W.L., Begg, G.C., O'Reilly, S.Y., Pearson, N.J., 2010. The growth of the continental crust: constraints from zircon Hfisotope data. Lithos 119, 457-466.
  • 5Birch, A.E, LeComte, P., 1960. Temperature-pressure plane for albite composition. American Journal of Science 258, 209 -217.
  • 6Brown, J.M., Shankland, T.J., 1981. Thermodynamic parameters in the Earth as determined from seismic profiles. Geophysical Journal of the Royal Astronom- ical Society 66, 579-596.
  • 7Cammarano, F., Romanowicz, B., Stixrude, L., Lithgow-Bertelloni, C., Xu, W., 2009. Inferring the thermochemical structure of the upper mantle from seismic data. Geophysical Journal International 179, 1169-1185.
  • 8Chopin,'C.,'2OO3.Ultrahigh-pressure metamorphism: tracing continental crust into the mantle. Earth and Planetary Science Letters 212, 1-14.
  • 9Cliff, P.D., Vannucchi, P., Morgan, J.P., 2009. Crustal redistribution, crust-mantle recycling and Phanerozoic evolution of the continental crust. Earth-Science Reviews 97, 80-104.
  • 10da Silva, C., Stixrude, L., Wentzcovitch, R.M., 1997. Elastic constants and anlsotropy of forsterite at high pressure. Geophysical Research Letters 24, 1963-1966.

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