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Geophysical investigations of ice-sheet internal layering and deformation in the Dome C region of central East Antarctica

Published online by Cambridge University Press:  08 September 2017

Richard Hodgkins
Affiliation:
Department of Geography, Royal Holloway, University of London, Egham, Surrey TW20 0EX, England
Martin J. Siegert
Affiliation:
Bristol Glaciology Centre, School of Geographical Sciences, University of Bristol, Bristol BS8 1SS, England
Julian A. Dowdeswell
Affiliation:
Bristol Glaciology Centre, School of Geographical Sciences, University of Bristol, Bristol BS8 1SS, England
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Abstract

New maps are presented of three internal ice-sheet radio-echo sounding (RES) layers in the region 73.5–75.75° S, 120–127° E (56 000 km2) around Dome C, central East Antarctica. These layers represent horizons of enhanced acidity resulting from volcanic aerosol deposition, identified from analogue RES data. They are continuous over the entire mapped area, and constitute deformation markers in the ice column. Internal RES layers were initially identified from discrete radar power reflection coefficient profiles and subsequently digitized directly from prints of ice-sheet cross-sections, acquired by continuous RES profiling. Georeferenced vector data are used to generate a 5 km gridcell raster of depth for each internal RES layer, as a basis for contour mapping. Ice deformation in the Dome C region is significant because this is the location of the European Project for Ice Coring in Antarctica. Since internal layers are isochronous, the one-dimensional ice-core data at Dome C can be correlated over the survey area to produce a three-dimensional context.

Information

Type
Research Article
Copyright
Copyright © International Glaciological Society 2000
Figure 0

Fig. 1. (a) Location of Dome C. (b) ERS-1 radar altimeter-derived surface elevation in the study area; contours in m a.s.l. (source: Siegert and Ridley, 1998).

Figure 1

Fig. 2. Sample analogue RES data: a time-continuous “Z-scope” pseudo-ice-sheet cross-section, and corresponding single-pulse “A-scope” returns; Pr/Pt is the amplitude of the received radio wave relative to the transmitted power. The prominent lowermost Pr/Pt peak represents bedrock, which in this example can be traced from left to right, decreasing in depth.

Figure 2

Fig. 3. (a) Location of data points within the study area. There are 500 latitude/longitude (x, y) locations, each with the depths of three internal RES layers and the bedrock (z). Flight-line numbers are indicated. (b) 5 km grid raster derived from bedrock depths; lighter shading indicates greater elevation/shallower depth. There are 50 gridcells in the latitudinal direction and 45 cells in the longitudinal direction. A similar raster was generated for each of the three RES internal layers as well as the bedrock, as the basis for contour mapping (see Figs. 4 and 5).

Figure 3

Fig. 4. (a) Depth of RES internal layer 1 (age 76 700 BP). (b) Depth of RES internal layer 2 (age 107200 BP). (c) Depth of RES internal layer 3 (age 144 300 BP), (d) Depth of bedrock. Contours in metres. Ages are from radio-echo layer correlation with the Vostok ice core (Siegert and others, 1998a)

Figure 4

Fig. 5. Cross-sections showing ice surface, RES internal layers 1–3 and bedrock profiles in the study area along (a) flight-line 102 and (b) flight-line 136. Locations are given in Figure 3a. Note the separate scale for the ice-surface elevation on each profile.

Figure 5

Table 1. Descriptive statistics for internal RES layer and bed depths