HR: 1340h
AN: C23A-1165 [Abstracts]
TI: Elevation Change and Remote-Sensing Mass-Balance Methods on the Greenland Ice Sheet
AU: * Ahlstrom, A P
EM: aa@oersted.dtu.dk
AF: Ørsted-DTU, Technical University of Denmark, Ørsteds Plads, Building 348, Lyngby, DK-2800
Denmark
AU: Reeh, N
EM: nr@oersted.dtu.dk
AF: Ørsted-DTU, Technical University of Denmark, Ørsteds Plads, Building 348, Lyngby, DK-2800
Denmark
AU: Christensen, E L
EM: elc@oersted.dtu.dk
AF: Ørsted-DTU, Technical University of Denmark, Ørsteds Plads, Building 348, Lyngby, DK-2800
Denmark
AU: Kristensen, S S
EM: ssk@oersted.dtu.dk
AF: Ørsted-DTU, Technical University of Denmark, Ørsteds Plads, Building 348, Lyngby, DK-2800
Denmark
AU: Forsberg, R
EM: rf@spacecenter.dk
AF: Danish Space Center, Juliane Maries Vej 30, Copenhagen, DK-2100
Denmark
AU: Stenseng, L
EM: stenseng@rumcenter.dk
AF: Danish Space Center, Juliane Maries Vej 30, Copenhagen, DK-2100
Denmark
AB:
The mass balance of the Greenland Ice Sheet is virtually impossible to obtain with traditional ground-based methods alone due
to its vast size. It is thus desirable to develop mass-balance methods depending on remote sensing instead and this field
has experienced a dramatic development within the last decade. Large amounts of data have been collected from satellite and
airborne platforms, yielding surface elevation changes and surface velocity fields. Here we present data from the Greenland
Ice-Sheet margin acquired with a new small-scale airborne system, designed for regional high-density coverage. During
campaigns in 2000, 2003 and 2005, we have collected and processed ice-sheet surface elevation and ice-thickness data,
acquired with a laser altimeter and a 60~MHz ice-penetrating radar. Both instruments were mounted on a small Twin-Otter
aircraft which were positioned using three onboard differential GPS instruments and corrected for pitch, roll and crab using
an Inertial Navigation System. Knowledge of elevation change and ice thickness alone does not provide mass balance, but when
combined with the surface velocity field obtained from satellite repeat-track interferometric synthetic aperture radar
(InSAR), it is possible to apply the principle of mass conservation and derive the mass balance from this. The method has
previously been applied to a flow line, but the intention is here to attempt a regional, distributed calculation. We will
present the method and its weaknesses and show a map of measured surface elevation change over a 50x50~km part of the western
Greenland Ice-Sheet margin near Kangerlussuaq. In this region, the mean observed elevation change has been -0.5~m from 2000
to 2003. However, the change is unevenly distributed with the northern and central part generally in balance and the southern
part clearly thinning.
DE: 0726 Ice sheets
DE: 0758 Remote sensing
DE: 0762 Mass balance (1218, 1223)
SC: Cryosphere [C]
MN: Fall Meeting 2005