PHANEROZOIC EXHUMATION HISTORY OF NORTHERN PRINCE-CHARLES-MOUNTAINS (EAST ANTARCTICA)

被引:25
作者
ARNE, DC
机构
[1] School of Earth Sciences, University of Melbourne, Parkville
关键词
NORTHERN PRINCE CHARLES MOUNTAINS; PHANEROZOIC; EXHUMATION; APATITE FISSION-TRACK ANALYSIS;
D O I
10.1017/S0954102094000106
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Apatite fission-track data from samples of Precambrian basement, Late Permian-Triassic sedimentary rocks and inferred Cretaceous intrusive bodies are used to constrain the low-temperature (i.e. sub approximately 110-degrees-C) thermal history of the northern Prince Charles Mountains, East Antarctica. Two discrete phases of cooling have been identified, both of which are attributed to regional exhumation associated with rifting episodes. A phase of late Palaeozoic cooling, that began during the Carboniferous, is inferred to have been associated with the initial formation of the Lambert Graben. A more recent phase of cooling was initiated during the Early Cretaceous and is estimated to have locally involved the removal of at least 2 km of material using an assumed palaeotemperature gradient of approximately 25-degrees-C km-1 at the time of cooling. This latter phase of exhumation was closely accompanied by the emplacement of a variety of mafic alkaline rocks at ambient palaeotemperatures less than approximately 60-degrees-C and was probably related to renewed extension of the Lambert Graben during the break-up of eastern Gondwana. The results of this study suggest that final exhumation of high-grade Precambrian basement of the northern Prince Charles Mountains was largely controlled by Phanerozoic rifting events.
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页码:69 / 84
页数:16
相关论文
共 48 条
  • [1] ALLISON I.I., The mass budget of the Lambert Glacier drainage basin, Antarctica, Journal of Glaciology, 22, pp. 223-235, (1979)
  • [2] ANDRONIKOV A.V., Spinel-garnet lherzolite nodules from alkaline-ultrabasic rocks of Jetty Peninsula (East Antarctica), Antarctic Science, 1, pp. 321-330, (1990)
  • [3] ARNE D.C., Evidence for regional mid-Cretaceous cooling in the Ouachita Mountain Fold Belt and Arkoma Basin of Arkansa from apatite fission track analysis, American Association of Petroleum Geologists Bulletin, 76, pp. 392-402, (1992)
  • [4] ARNE D.C., KELLY P.R., BROWN R.W., GLEADOW A.J.W., Gondwana 8: assembly, evolution and dispersal, pp. 605-611, (1993)
  • [5] BENNETT A.J.R., TAYLOR G.H., Coals from the vicinity of the Prince Charles Mountains, Antarctica, Antarctic geology and geophysics, Oslo: Universitetsforlaget, pp. 591-598, (1972)
  • [6] BOHANNON R.G., NAESER C.W., SCHMIDT D.L., ZIMMERMANN R.A., The timing of uplift, volcanism, and rifting peripheral to the Red Sea: a case for passive rifting, Journal of Geophysical Research, 94, pp. 1683-1701, (1989)
  • [7] BROWN R.D., RUST D.J., SUMMERFIELD M.A., GLEADOW A.J.W., DE WIT M.C.J., An Early Cretaceous phase of accelerated erosion on the south-western margin of Africa: evidence from apatite fission track analysis and the offshore sedimentary record Nuclear Tracks and Radiation Measurments, 17, pp. 339-350, (1990)
  • [8] BURNHAM A.K., SWEENEY J.J., A chemical kinetic model of vitrinite maturation and reflectance, Geochimica et Ceosmochimica Acta, 53, pp. 2649-2657, (1989)
  • [9] CROHN P.W., A contribution to the geology and glaciology of the western part of Australian Antarctic Territory, Bulletin of the Bureau of Mineral Resources, Geology and Geophysics, Australia, 52, (1959)
  • [10] ENGLAND P., MOLNAR P., Surface uplift, uplift of rocks, and exhumation of rocks, Geology, 18, pp. 1173-1177, (1990)