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Rb-Sr age determinations of rocks from the Okenyenya igneous complex, northwestern Namibia

Published online by Cambridge University Press:  01 May 2009

Simon C. Milner
Affiliation:
Department of Geology, University of Cape Town, Rondebosch 7700. Republic of South Africa
Anton P. Le Roex
Affiliation:
Department of Geology, University of Cape Town, Rondebosch 7700. Republic of South Africa
Ronald T. Watkins
Affiliation:
Department of Geology, University of Cape Town, Rondebosch 7700. Republic of South Africa

Abstract

The Okenyenya igneous complex is one of a suite of intrusions which define a prominent northeast-trending linear feature in Damaraland, northwestern Namibia. Precise Rb–Sr internal isochron ages range from 128.6 ± 1 to 123.4 ± 1.4 Ma for the major phases of intrusion identified within the complex. The tholeiitic gabbros forming the outer rings of the complex, and the later alkali gabbros which form the central hills, cannot be distinguished in terms of Rb–Sr ages, although field relations clearly indicate the younger age of the latter. The intrusionsof nepheline-syenite and essexite comprising the mountain of Okenyenya Bergon the northern edge of the complex give ages of 123.4 ± 1.4 and 126.3 ± 1 Ma, respectively, and form the final major phase of intrusion. The ages obtained for early and late intrusive phases define a minimum magmatic ‘life-span’ of approximately 5 Ma for the complex. The determined age of the Okenyenya igneous complex (129–123 Ma), when taken together with the few reliable published ages for other Damaraland complexes (130–134 Ma), suggests that these sub-volcanic complexes were emplaced contemporaneously with the widespread Etendeka volcanics (˜ 130 Ma), and relate to magmatism associated with the breakup of southern Africa and South America with the opening of the South Atlantic Ocean. The linear distributionof intrusions in Damaraland is interpreted to be due to magmatism resultingfrom the upwelling Tristan plume being focused along a structural discontinuity between the Pan-African, Damaran terrain to the south, and Proterozoiccratonic basement to the north.

Type
Articles
Copyright
Copyright © Cambridge University Press 1993

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References

Allsopp, H. L., Bristow, J. W., Logan, C. T., Eales, H. V. & Erlank, A. J. 1984 a. Rb-Sr geochronology of three Karoo-related intrusive complexes. Special Publication, Geological Society of South Africa 13, 281–7.Google Scholar
Allsopp, H. L., Manton, W. I., Bristow, J. W. & Erlank, A. J. 1984 b. Rb-Sr geochronology of Karoo felsic volcanics. Special Publication, Geological Society of South Africa 13, 273–80.Google Scholar
Ancochea, E., Fuster, J. M., Ibarrola, E., Cendrero, A., Coello, J., Hernan, F., Cantagrel, J. M. & Jamond, C. 1990. Volcanic evolution of the island of Tenerife (Canary Islands) in the light of new K-Ar data. Journal of Volcanology and Geothermal Research 44, 231–49.CrossRefGoogle Scholar
Clague, D. A. 1987. Hawaiian alkaline volcanism. In Alkaline Igneous Rocks (eds Fitton, J. G. and Upton, B. G. J.), pp. 227–52, Geological SocietySpecial Publication no. 30.Google Scholar
Dodson, M. H. 1973. Closure temperature in cooling geochronological and petrological systems. Contributions to Mineralogy and Petrology 40, 259–74.CrossRefGoogle Scholar
Eglington, B. M. & Harmer, R. E. 1991. GEODATE: a program for the processing and regression of isotope data using IBM compatible microcomputers. CSIR Manual EMA-H9101, 57 pp.Google Scholar
Erlank, A. J., Marsh, J. S., Duncan, A. R., Miller, R. McG., Hawkesworth, C. J., Betton, P. J. & Rex, D.C. 1984. Geochemistry and petrogenesis of the Etendeka volcanic rocks from SWA/Namibia. Special Publication, Geological Society of South Africa 13, 195245.Google Scholar
Fitch, F. J. & Miller, J. A. 1984. Dating Karoo igneous rocks by the conventional K-Ar and 40Ar/39Ar age spectrum methods. Special Publication, Geological Society of South Africa 13, 247–66.Google Scholar
Fitton, J. G. 1987. The Cameroon line, West Africa: a comparison between oceanic and continental alkaline volcanism. In Alkaline Igneous Rocks (eds Fitton, J. G. and Upton, B. G. J.), pp. 273–91, Geological Society Special Publication no. 30.Google Scholar
Fitton, J. G. & Upton, B. G. J. 1987. Introduction. In Alkaline Igneous Rocks (eds Fitton, J. G. and Upton, B. G. J.), pp. ix–xiv, GeologicalSociety Special Publication no. 30.Google Scholar
Korn, H. & Martin, H. 1954. The Messum Igneous Complex in South West Africa. Transactions of the Geological Society of South Africa 57, 83124.Google Scholar
McDougall, I. & Schmincke, H.-U. 1976. Geochronology of Gran Canaria, Canary Islands: Age of shield building volcanism and other magmatic phases. Bulletin of Volcanology 40, 5777.CrossRefGoogle Scholar
Manton, W. I. & Siedner, G. 1967. Age of the Paresis Complex, South West Africa. Nature 216, 1197–8.CrossRefGoogle Scholar
Mantovani, M. S. M., Cordani, U. G. & Roisenberg, A. 1985. Geoquimica isotópica em vulcânicas ácidas da bacia do Paraná, e implicações genéticas associadas. Revista Brasileira de Geociências 15, 61–6.CrossRefGoogle Scholar
Martin, H., Mathias, M. & Simpson, E. S. W. 1960. The Damaraland sub-volcanic ring complexes in South West Africa. Report of the International Geological Congress XXI 13, 156–74.Google Scholar
Miller, R. McG. 1983. The pan-African Damaran orogen of South West Africa/Namibia. Special Publication Geological Society of South Africa 11, 431515.Google Scholar
Milner, S. C., Duncan, A. R. & Ewart, A. 1992. Quartz latite rheoignimbrite flows of the Etendeka Formation, northwestern Namibia. Bulletin of Volcanology 54, 200–19.CrossRefGoogle Scholar
Milner, S. C. & Ewart, A. 1989. The geology of the Goboboseb Mountain volcanics and their relationship to the Messum Complex, Namibia. Communications of the Geological Survey of South West Africa/Namibia 5, 3140.Google Scholar
O'Connor, J. M. & Le Roex, A. P. 1992. South Atlantic hot spot-plume systems. 1. Distribution of volcanism in time and space. Earth and Planetary Science Letters 113, 343–64.CrossRefGoogle Scholar
Pirajno, F. & Schlögl, H. U. 1987. The alteration-mineralization of the Krantzberg tungsten deposit, South West Africa/Namibia. South African Journal of Geology 90, 499508.Google Scholar
Prins, P. 1981. The geochemical evolution of the alkaline and carbonatitic complexes of the Damaraland Igneous Province, South West Africa. Annals of the University of Stellenbosch, eries A1 (Geology) 3, 145278.Google Scholar
Richards, M. A., Duncan, R. A. & Courtillot, V. E. 1989. Flood basalts and hotspot tracks: plume heads and tails. Science 246, 103–7.CrossRefGoogle ScholarPubMed
Siedner, G. & Miller, J. A. 1968. K-Ar age determinations on basaltic rocks from South West Africa, and their bearing on continental drift. Earth and Planetary Science Letters 4, 451–58.CrossRefGoogle Scholar
Siedner, G. & Mitchell, J. G. 1976. Mesozoic volcanism in Namibia and Brazil: a K-Ar isochron study bearing on the opening of the South Atlantic. Earth and Planetary Science Letters 30, 292302.CrossRefGoogle Scholar
Simpson, E. S. W. 1954. The Okonjeje Igneous Complex, South West Africa. Transactions of the Geological Society of South Africa 107, 125–72.Google Scholar
Steiger, R. J. & Jager, E. 1977. Subcommission on geochronology: convention on the use of decay constants in geo- and cosmochronology. Earth and Planetary Science Letters 36, 359–62.CrossRefGoogle Scholar
Thompson, R. N. & Gibson, S. A. 1991. Subcontinental mantle plumes, hotspots and pre-existing thinspots. Journal of the Geological Society 89, 973–7.CrossRefGoogle Scholar
Titterington, D. M. & Halliday, A. N. 1979. On the fitting of parallel isochrons and the method of maximum likelihood. Chemical Geology 26, 183–95.CrossRefGoogle Scholar
Watkins, R. T. & Le Roex, A. P. 1991. Petrology and structure of syenite intrusions of the Okenyenya Igneous Complex. Communications of the Geological Survey of South West Africa/Namibia 7, 5570.Google Scholar
White, R. & McKenzie, D. 1989. Magmatism at rift zones: the generation of volcanic continental margins and flood basalts. Journal of Geophysical Research 94, 7685–729.CrossRefGoogle Scholar
Williamson, J. H. 1968. Least-squares fitting of a straight line. Canadian Journal of Physics 46, 1845–7.CrossRefGoogle Scholar
York, D. 1969. Least-squares fitting of a straight line with correlated errors. Earth and Planetary Science Letters 5, 320–4.CrossRefGoogle Scholar