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Enriched komatiitic basalts from Newton Township, Ontario: their genesis by crustal contamination of depleted komatiite magma

Published online by Cambridge University Press:  01 May 2009

Alan Cattell
Affiliation:
Geology Department, The University SouthamptonSO9 5NH, U.K.

Abstract

LREE-enriched komatiitic basalts are commonly found in association with LREE-depleted komatiites. This association is found in a sequence of late Archaean lavas from Newton Township, Ontario. The komatiitic lavas at Newton Township differ from most late Archaean examples in that both the komatiites and the komatiitic basalts are depleted in Al and in the HREE. The close association and distinctive Al and HREE depletions of the two lava types strongly suggest a common origin, despite their contrasting LREE patterns.

A model is proposed whereby the LREE-depleted komatiites represent the parental magma to the LREE-enriched komatiitic basalts, the two being linked by a combination of crystal fractionation and crustal assimilation. The composition of the contaminant is estimated by comparing the LREE-enriched komatiitic basalts with the evolved part of a thick layered komatiite flow that has similar major element chemistry. The contaminant composition coincides closely with Taylor & McLennan's estimate of the composition of the Archaean upper crust. It is concluded that LREE-enriched komatiitic basalts can be produced from LREE-depleted komatiite parent magmas by combined assimilation and fractionation, and that such a process best explains the geochemistry and Nd isotopic features of most komatiitic basalts.

Type
Articles
Copyright
Copyright © Cambridge University Press 1987

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References

Arndt, N. T. & Brooks, C. 1980. Penrose conference on komatiites. Geology 8, 155–6.2.0.CO;2>CrossRefGoogle Scholar
Arndt, N. T. & Nisbet, E. G. 1982. Komatiites. George Allen & Unwin. 526 pp.Google Scholar
Cameron, W. & Nisbet, E. G. 1982. Phanerozoic analogues of komatiitic basalts. In Komatiites (ed. Arndt, N. T., Nisbet, E. G.), pp. 2950. George Allen & Unwin.Google Scholar
Cattell, A., Krogh, T. E. & Arndt, N. T. 1984. Conflicting Sm–Nd whole-rock and U – Pb zircon ages for Archean lavas from Newton Township, Abitibi Belt, Ontario. Earth and Planetary Science Letters 70, 280–90.CrossRefGoogle Scholar
Chauvel, C., Dupre, B. & Jenner, G. A. 1985. The Sm – Nd age of Kambalda volcanics is 500 Ma too old! Earth and Planetary Science Letters 74, 315–24.CrossRefGoogle Scholar
Compston, W., Williams, I. S., Campbell, I. H. & Gresham, J. J. 1986. Zircon xenocrysts from the Kambalda volcanics: age constraints and direct evidence for older continental crust below the Kambalda–Norseman greenstones. Earth and Planetary Science Letters 76, 299312.CrossRefGoogle Scholar
Huppert, H. E. & Sparks, R. S. J. 1980. The fluid dynamics of a basaltic magma chamber replenished by influx of hot dense ultrabasic magma. Contributions to Mineralogy and Petrology 75, 279–89.CrossRefGoogle Scholar
Huppert, H. E. & Sparks, R. S. J. 1985. Cooling and contamination of mafic and ultramafic magmas during ascent through continental crust. Earth and Planetary Science Letters 74, 371–86.CrossRefGoogle Scholar
Huppert, H. E., Sparks, R. S. J., Turner, J. S. & Arndt, N. T. 1984. Emplacement and cooling of komatiite lavas. Nature 309, 1921.CrossRefGoogle Scholar
Jahn, B–M., Gruau, G. & Glikson, A. Y. 1982. Komatiites of the Onverwacht Group, S. Africa: REE geochemistry, Sm/Nd age, and mantle evolution. Contributions to Mineralogy and Petrology 80, 2540.CrossRefGoogle Scholar
Ludden, J. N. & Thompson, G. 1979 a. Behaviour of Rare Earth Elements during submarine weathering of tholeiitic basalt. Nature 274, 147–9.CrossRefGoogle Scholar
Ludden, J. N. & Thompson, G. 1979 b. An evaluation of the Rare Earth Elements during the weathering of sea-floor basalt. Earth and Planetary Science Letters 43, 8592.CrossRefGoogle Scholar
Nesbitt, R. W., Jahn, B-M. & Purvis, A. C. 1982. Komatiites: an early Precambrian phenomenon. Journal of Volcanological and Geothermal Research 14, 3145.CrossRefGoogle Scholar
Nisbet, E. G. & Chinner, G. A. 1981. Controls of the eruption of mafic and ultramafic lavas, Ruth Well Ni – Cu prospect, West Pilbara. Economic Geology 76, 1729–35.CrossRefGoogle Scholar
Percival, J. A. & Card, K. D. 1983. Archean crust as revealed in the Kapuskasing uplift, Superior Province, Canada. Geology 11, 323–6.2.0.CO;2>CrossRefGoogle Scholar
Percival, J. A. & Krogh, T. E. 1983. U – Pb zircon geochronology of the Kapuskasing structural zone and vicinity in the Chapleau – Foleyet area, Ontario. Canadian Journal of Earth Sciences 20, 830–43.CrossRefGoogle Scholar
Taylor, S. R. & Mclennan, S. M. 1985. The Continental Crust: Its Composition and Evolution. Blackwell. 312 pp.Google Scholar
Turek, A., Smith, P. E. & VAN Schmus, W. R. 1984. U – Pb zircon ages and the evolution of the Michipicoten plutonic – volcanic terrane of the Superior Province, Ontario. Canadian Journal of Earth Sciences 21, 457–64.CrossRefGoogle Scholar