The late Cainozoic East Antarctic ice sheet
Creators
- 1. The University of Newcastle, Callaghan, NSW (Australia). Department of Geography and Environmental Science
Description
A review, mainly of East Antarctic late Cainozoic (post 40 Ma) geological and geomorphological evidence, supports the hypothesis of the continuous presence of an ice sheet, of about the present size, since the late Miocene. Evidence is presented and the view advanced that, during the late Wisconsin maximum of isotope stage 2, ice was not nearly as thick or extensive over the continental shelf as required by the model of 'maximum' Antarctic glaciation. Some of the factors influencing the contribution of Antarctica to post-glacial sea-level rise are discussed. It is considered that Antarctica's contribution was probably considerably less than previously estimated. The dating of marine and freshwater sequences in the Vestfold and Bunger Hills is consistent with deglaciation around the Pleistocene Holocene boundary, after the Late Wisconsin maximum. A date of ∼25 ka BP from permafrost in the Larsemann Hills means that either the Larsemann Hills were not glaciated during the Late Wisconsin or the ice failed to erode much of the permafrost surface. The degree of weathering of rock and glacial drifts in the Vestfold, Larsemann and Bunger Hills suggests a long time for formation, perhaps considerably longer than indicated by the dated marine and freshwater sediment sequences. Cosmogenic isotope dating in the Vestfold Hills has provided equivocal ages for deglaciation. While the results could indicate deglaciation before 80 ka BP, they do not confirm such early deglaciation. If the ice cover was thin and failed to remove the previous rock exposure profile, then the assays could predate the last ice advance. Weathered iron crust fragments in the till suggest little erosion. The raised beaches of the oases are Holocene. Assuming they have been produced by post Late Wisconsin isostatic uplift and by the Holocene transgression, calculations show that the Antarctic continental ice sheet could not have been more than ∼500 m thicker in the inner shelf-coastal zone. The Antarctic contribution to sea-level fall may have been much less than previously suggested by theoretical models. Most evidence points to the need to revise the maximum view of the model of Late Wisconsin glaciation in East Antarctica, derived from the maximum model of Ross Sea glaciation, towards a model of less extensive and thinner ice over the continental shelf
Additional details
Publishing Information
- Journal Title
- AGSO Journal of Australian Geology and Geophysics
- Journal Volume
- 17
- Journal Issue
- 5/6
- Journal Page Range
- p. 121-131
- ISSN
- 1320-1271
- CODEN
- AJGGEF
INIS
- Country of Publication
- Australia
- Country of Input or Organization
- Australia
- INIS RN
- 31037852
- Subject category
- S58: GEOSCIENCES;
- Descriptors DEI
- ANTARCTICA; DATA COVARIANCES; GEOLOGIC FORMATIONS; GEOLOGIC HISTORY; GEOLOGIC MODELS; ICE CAPS; ISOTOPE DATING; STRATIGRAPHY
- Descriptors DEC
- AGE ESTIMATION; ANTARCTIC REGIONS; CRYOSPHERE; GEOLOGY; ICE; POLAR REGIONS
Optional Information
- Notes
- 75 refs., 8 figs.