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The generation and evolution of the continental crust

C.J. Hawkesworth, B. Dhuime, A.B. Pietranik, P.A. Cawood, A.I.S. Kemp and C.D. Storey
Journal of the Geological Society, 167, 229-248, 1 March 2010, https://doi.org/10.1144/0016-76492009-072
C.J. Hawkesworth
1
2 Present address: School of Geography and Geosciences, University of St. Andrews, North Street, St. Andrews KY16 9AL, UK
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B. Dhuime
1
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A.B. Pietranik
3 Institute of Geological Sciences, University of Wrocław, 50-205 Wrocław, Poland
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P.A. Cawood
4 School of Earth and Environment, University of Western Australia, 35 Stirling Highway, Crawley, WA 6009, Australia
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A.I.S. Kemp
5 School of Earth and Environmental Sciences, James Cook University, Townsville, QLD 4811, Australia
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C.D. Storey
1
6 School of Earth and Environmental Sciences, University of Portsmouth, Portsmouth PO1 3QL, UK
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Abstract:

The continental crust is the archive of the geological history of the Earth. Only 7% of the crust is older than 2.5 Ga, and yet significantly more crust was generated before 2.5 Ga than subsequently. Zircons offer robust records of the magmatic and crust-forming events preserved in the continental crust. They yield marked peaks of ages of crystallization and of crust formation. The latter might reflect periods of high rates of crust generation, and as such be due to magmatism associated with deep-seated mantle plumes. Alternatively the peaks are artefacts of preservation, they mark the times of supercontinent formation, and magmas generated in some tectonic settings may be preferentially preserved. There is increasing evidence that depletion of the upper mantle was in response to early planetary differentiation events. Arguments in favour of large volumes of continental crust before the end of the Archaean, and the thickness of felsic and mafic crust, therefore rely on thermal models for the progressively cooling Earth. They are consistent with recent estimates that the rates of crust generation and destruction along modern subduction zones are strikingly similar. The implication is that the present volume of continental crust was established 2–3 Ga ago.

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Journal of the Geological Society: 167 (2)
Journal of the Geological Society
Volume 167, Issue 2
March 2010
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The generation and evolution of the continental crust

C.J. Hawkesworth, B. Dhuime, A.B. Pietranik, P.A. Cawood, A.I.S. Kemp and C.D. Storey
Journal of the Geological Society, 167, 229-248, 1 March 2010, https://doi.org/10.1144/0016-76492009-072
C.J. Hawkesworth
1
2 Present address: School of Geography and Geosciences, University of St. Andrews, North Street, St. Andrews KY16 9AL, UK
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
B. Dhuime
1
  • Find this author on Google Scholar
  • Find this author on PubMed
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A.B. Pietranik
3 Institute of Geological Sciences, University of Wrocław, 50-205 Wrocław, Poland
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  • Find this author on PubMed
  • Search for this author on this site
P.A. Cawood
4 School of Earth and Environment, University of Western Australia, 35 Stirling Highway, Crawley, WA 6009, Australia
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  • Search for this author on this site
A.I.S. Kemp
5 School of Earth and Environmental Sciences, James Cook University, Townsville, QLD 4811, Australia
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C.D. Storey
1
6 School of Earth and Environmental Sciences, University of Portsmouth, Portsmouth PO1 3QL, UK
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The generation and evolution of the continental crust

C.J. Hawkesworth, B. Dhuime, A.B. Pietranik, P.A. Cawood, A.I.S. Kemp and C.D. Storey
Journal of the Geological Society, 167, 229-248, 1 March 2010, https://doi.org/10.1144/0016-76492009-072
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  • Article
    • Abstract:
    • Old problems and new ways forward
    • Terms
    • The timing of events: crystallization and crust formation ages
    • Variations in Sm/Nd and Lu/Hf ratios and the composition of initial continental crust
    • Zircons as archives of the continental crust
    • Differentiation of the infant silicate Earth: formation of early depleted and enriched reservoirs
    • Composition of the oldest crust
    • Peaks of ages, preservation and crust generation
    • The igneous record: insights from granites
    • The sedimentary record: erosion models and continental maturation
    • Synthesis
    • Acknowledgments
    • References
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