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The iron-rich suite from the Amîtsoq gneisses of southern West Greenland: early Archaean plutonic rocks of mixed crustal and mantle origin

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Abstract

A distinctive group of augen gneisses and ferrodiorites (termed the iron-rich suite) is a component of the early Archaean Amîtsoq gneisses of southern West Greenland. The iron-rich suite outcrops south of the mouth of Ameralik fjord in an area that underwent granulite facies metamorphism in the early Archaean. The iron-rich suite forms approximately 30% of the Amîtsoq gneiss of this area and occurs as sheets and lenses up to 500 m thick. The rest of the Amîtsoq gneisses are predominantly tonalitic-granodioritic, banded grey gneisses. Despite intense deformation and polymetamorphism, there is local field evidence that the iron-rich suite was intruded into the grey gneisses after they had been affected by tectonism and metamorphism. The banded grey gneisses are interpreted as 3,700 to 3,800 Ma old; U-Pb zircon ages from the iron-rich suite give concordia intercepts at circa 3,600 Ma.

Coarse grained augen gneisses with microcline mega-crysts are the dominant lithology of the iron-rich suite. They are mostly granodioritic, grading locally into granite and diorite, and are generally rather massive, but locally have well-preserved layering or are markedly heterogeneous. Mafic components are commonly concentrated into “clots” rich in hornblende and biotite and containing apatite, ilmenite, sphene and zircon. Variation in the proportion of these clots is the main reason for the compositional variation of the augen gneisses. The ferrodiorites of the suite occur as lenses in the augen gneisses. Leucocratic granitoid sheets locally cut the iron-rich suite. The augen gneisses and ferrodiorites have geochemical characteristics in common, such as high Fe/Mg values and high contents of FeOt, TiO2, P2O5, Zr, Y and total REE (rare earth elements).

The iron-rich suite probably formed as follows:

Heating of the lower crust adjacent to mantle-derived basic intrusions caused melting of the lower crust, giving rise to granodioritic magmas. Disruption of partially crystallised basic intrusions caused mixing of the crustal melts and the fractionated mantle melts to produce the augen gneisses with their high FeOt, TiO2, P2O5, Zr, Y and total REE enrichment. Fragmented, crystallised parts of the basic intrusions gave rise to the ferrodiorite inclusions. These heterogeneous plutons rose to higher crustal levels where they crystallised as sheets and possibly were responsible for the local granulite facies metamorphism. The granitoid sheets that cut the iron-rich suite are interpreted as crustal melts of local origin.

The iron-rich suite resembles Proterozoic rapakivi granite-ferrodiorite-norite (anorthosite) associations which form characteristic suites in late- to post-tectonic environments in recently thickened sial. The occurrence of this type of magmatism in the early Archaean is evidence of the complex, polygenetic nature of the oldest known continental crust.

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References

  • Allaart JH (1976) The pre-3760 my. old supracrustal rocks of the Isua area, Central West Greenland, and the associated occurrence of quartz-banded ironstone. In: Windley BF (ed) Early History of the Earth. Wiley, London, pp 619

    Google Scholar 

  • Arth JG, Barker F (1976) Rare-earth partitioning between hornblende and dioritic liquid and implications for the genesis of trondhjemitic-tonalitic magmas. Geology 4:534–536

    Google Scholar 

  • Arth JG, Barker F, Peterman ZE, Friedman I (1973) Geochemistry of the gabbro-diorite-tonalite trondhjemite suite of Southwest Finland and its implications for the origin of tonalitic and trondhjemitic magmas. J Petrol 19:289–318

    Google Scholar 

  • Baadsgaard H (1973) U-Th-Pb dates on zircons from the very early Precambrian Amîtsoq gneisses, Godthaab district, West Greenland. Earth Planet Sci Lett 19:22–28

    Google Scholar 

  • Baadsgaard H (1983) U-Pb isotope systematics on minerals from the gneiss complex at Isukasia West Greenland. Rapp Grønlands Geol Unders 112:35–42

    Google Scholar 

  • Baadsgaard H, Nutman AP, Bridgwater D, McGregor VR, Allaart HJ (1984) The zircon chronology of the Akilia association and the Isua supracrustal belt, West Greenland. Earth Planet Sci Lett 68:221–228

    Google Scholar 

  • Barker F, Arth JG (1976) Generation of trondhjemitic-tonalitic liquids and Archaean bimodal trondhjemite-basalt suites. Geology 4:596–600

    Google Scholar 

  • Berthelsen A (1955) Structural studies in the Precambrian of Western Greenland. I, a small body of diorite, Godthåb district. Bull Grønlands Geol Unders 10:pp 27

    Google Scholar 

  • Bridgwater D, Collerson KD (1976) The major petrological and geochemical characters of the 3600 M.Y. Uivak gneisses from Labrador. Contrib Mineral Petrol 54:43–57

    Google Scholar 

  • Bridgwater D, Windley BF (1973) Anorthosites, post-orogenic granites, acid volcanic rocks and crustal development in the North Atlantic Shield during the Mid-Proterozoic. Geol Soc S Africa Spec Publ Vol 3:307–17

    Google Scholar 

  • Bridgwater D, Sutton J, Watterson J (1974) Crustal downfolding associated with igneous activity. Tectonophysics 21:57–77

    Google Scholar 

  • Bridgwater D, Collerson KD, Hurst RW, Jessau CW (1975) Field characters of the Early Precambrian Rocks from Saglek, Coast of Labrador. Geol Surv Can Pap 75-1, Part A

  • Bridgwater D, Keto L, McGregor VR, Myers JS (1976) Archaean gneiss complex of Greenland. In: Escher A, Watts WS (eds) Geology of Greenland. Geological Survey of Greenland, Copenhagen, pp 603

    Google Scholar 

  • Chadwick B, Nutman AP (1979) Archaean structural evolution in the northwest of the Buksefjorden region, southern West Greenland. Precambrian Res 9:199–226

    Google Scholar 

  • Chadwick B, Coe K (1983) Buksefjorden 63 V.1 Nord: The regional geology of a segment of the Archaean block of southern West Greenland. Geological Survey of Greenland, pp 70

  • Collerson KD, Bridgwater D (1979) Metamorphic development of early Archaean tonalitic and trondhjemitic gneisses: Saglek Area, Labrador. In: Barker F (ed) Developments in Petrology 6. Trondhjemites dacites and related rocks, Elsevier, Amsterdam

    Google Scholar 

  • Compton PM (1978) Rare earth evidence for the origin of the Nûk gneisses Buksefjorden region, southern West Greenland. Contrib Mineral Petrol 66:283–293

    Google Scholar 

  • Eby GN (1972) Determination of rare earth, yttrium and scandium abundances in rocks and minerals by an ion exchange — X-ray fluorescence procedure. Analytical Chem 44:2137–2143

    Google Scholar 

  • Emslie RF (1978) Anorthosite massifs, Rapakivi granites and late Proterozoic Rifting in N. America. Precambrian Res 7:61–98

    Google Scholar 

  • Griffin WL, McGregor VR, Nutman AP, Taylor PN, Bridgwater D (1980) Early Archaean granulite-facies metamorphism south of Ameralik, West Greenland. Earth Planet Sci Lett 50:59–74

    Google Scholar 

  • Hanson GN (1978) The application of the trace elements to the petrogenesis of igneous rocks of granitic composition. Earth Planet Sci Lett 38:26–43

    Google Scholar 

  • Krupica J (1975) Early Precambrian rocks of granitic composition. Can J Earth Sci 12:1307–1315

    Google Scholar 

  • Lambert R St J, Holland JG (1974) Yttrium geochemistry applied to petrogenesis utilising Calcium-Yttrium relationships in minerals and rocks. Geochim Cosmochim Acta 38:1393–1414

    Google Scholar 

  • Lambert R St J, Holland JG (1976) Amîtsoq gneiss geochemistry: preliminary observations. In: Windley BF (ed) The early history of the earth. Wiley, New York

    Google Scholar 

  • McBirney AR, Williams H (1969) Geology and petrology of the Galapagos islands. Geol Soc Am Mem, no 118

  • McGregor VR (1973) The early Precambrian gneisses of the Godthåb district, West Greenland. Phil Trans R Soc London, Ser A 273:343–358

    Google Scholar 

  • McGregor VR (1979) Archaean grey gneisses and the origin of the continental crust: Evidence from the Godthåb region, West Greenland. In: Barker F (ed) Trondhjemites, dacites and related rocks. Elsevier, Amsterdam

    Google Scholar 

  • McGregor VR, Mason B (1977) Petrogenesis and geochemistry of metabasaltic and metasedimentary enclaves in the Amîtsoq gneisses, West Greenland. Am Mineral 62:887–904

    Google Scholar 

  • Michard-Vitrac A, Lancelot J, Allegre CJ, Moorbath S (1977) U-Pb ages on single zircons from the early Precambrian rocks of W. Greenland and the Minnesota River Valley. Earth Planet Sci Lett 35:449–453

    Google Scholar 

  • Moorbath S, O'Nions RK, Pankhurst RJ, Gale NH, McGregor VR (1972) Further rubidium-strontium age determinations on very early Precambrian rocks of the Godthåb district, West Greenland. Nature Phys Sci 240:78–82

    Google Scholar 

  • Moorbath S, O'Nions RK, Pankhurst RJ (1975) The evolution of early Precambrian crustal rocks at Isua, West Greenland — geochemical and isotopic evidence. Earth Planet Sci Lett 27:229–239.

    Google Scholar 

  • Nagasawa H (1970) Rare earth concentrations in zircons and apatites and their host dacites and granites. Earth Planet Sci Lett 9:359–364

    Google Scholar 

  • Nagasawa H, Schnetzler CC (1971) Partition of rare earth, alkali and alkaline earth elements between phenocrysts and acidic igneous rocks. Geochim Cosmochim Acta 35:953–968

    Google Scholar 

  • Nagasawa H, Schreber HD, Morris RV (1980) Experimental mineral/liquid partition coefficients of the Rare Earth Elements (REE), Sc and Sr for perovskite, spinel and melilite. Earth Planet Sci Lett 46:431–437

    Google Scholar 

  • Nutman AP (1980) A field and laboratory study of the early Archaean rocks of the north western Buksefjorden region, southern West Greenland. Thesis, Univ. of Exeter (unpubl.)

  • Nutman AP, Bridgwater D (in prep) Tonalite and granite gneisses of the Isukasia area, southern West Greenland, evidence of early Archaean melting of continental crust

  • Nutman AP, Bridgwater D, Dimroth E, Gill R, Rosing M (1983) Field work on early (3,700 Ma) Archaean rocks of the Isua supracrustal belt and adjacent gneisses. Rapp Grønlands Geol Unders 112:5–22

    Google Scholar 

  • O'Nions RK, Pankhurst RJ (1974) Rare earth element distribution in Archaean gneisses and anorthosites, Godthaab area, West Greenland. Earth Planet Sci Lett 22:328–338

    Google Scholar 

  • Petersen JS (1980) Rare earth element fractionation and petrogenetic modelling in charnockitic rocks, southwest Norway. Contrib Mineral Petrol 73:161–172

    Google Scholar 

  • Pettingill HS, Patchett PJ, Tatsumoto M, Moorbath S (1982) Lu-Hf total-rock age for Amîtsoq gneisses West Greenland. Earth Planet Sci Lett 55:150–156

    Google Scholar 

  • Pidgeon RT, Kalsbeek F (1978) Zircon U-Pb isotopic systems in an augen gneiss a grey gneiss from the Amîtsoq gneisses of Akilia Island, West Greenland. In: Smith IEM, Williams JG (eds) Proceedings of the 1978 Archaean geochemistry conference, 363–365, Univ Toronto Press

  • Semenenko NP, Scherbak AP, Vinogradov AP, Tougarinov AI, Eliseeva GD, Cotlovskay FI, Demidenko SG (1968) Geochronology of the Ukrainian Precambrian. Can J Earth Sci 5:641–671

    Google Scholar 

  • Watson EB (1976) Two-liquid partitioning coefficients: Experimental data and geochemical implications. Contrib Mineral Petrol 56:119–134

    Google Scholar 

  • Wells PRA (1976) Late Archaean metamorphism in the Buksefjorden region of southwest Greenland. Contrib Mineral Petrol 58:229–242

    Google Scholar 

  • Wendlandt RF (1981) Influence of CO2 on melting of model granulite facies assemblages: a model for the genesis of charnockites. Am Mineral 66:1164–1174

    Google Scholar 

  • Wiebe RA (1979) Fractionation and liquid immiscibility in an anorthositic pluton of the Nain Complex, Labrador. J Petrol 20:239–269

    Google Scholar 

Download references

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Nutman, A.P., Bridgwater, D. & Fryer, B.J. The iron-rich suite from the Amîtsoq gneisses of southern West Greenland: early Archaean plutonic rocks of mixed crustal and mantle origin. Contr. Mineral. and Petrol. 87, 24–34 (1984). https://doi.org/10.1007/BF00371399

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