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The retreat of a tidewater glacier: observations and model calculations on Hansbreen, Spitsbergen

Published online by Cambridge University Press:  08 September 2017

Andreas Vieli
Affiliation:
Institute for Atmospheric and Climate Science, Eidgenössische Technische Hochschule, Winterthurerstrasse 190, CH-8057 Zürich, Switzerland E-mail: a.vieli@bristol.ac.uk Section of Glaciology, Versuchsanstalt für Wasserbau, Hydrologie und Glaziologie, Eidgenössische Technische Hochschule, ETH-Zentrum, CH-8092 Zürich, Switzerland
Jacek Jania
Affiliation:
Department of Geomorphology, Faculty of Earth Sciences, University of Silesia, ul. Będzińska 60, PL-41-200 Sosnowiec, Poland
Lezek Kolondra
Affiliation:
Department of Geomorphology, Faculty of Earth Sciences, University of Silesia, ul. Będzińska 60, PL-41-200 Sosnowiec, Poland
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Abstract

Based on observations and model calculations, the retreat over the last two decades of Hansbreen, a tidewater glacier in southern Spitsbergen, Svalbard, is investigated. The observations of the calving-front position between 1982 and 1998 show an abrupt retreat in 1990, which is suggested to be related to a depression in the glacier bed. The observed seasonal variations of the front position are mainly due to variations of the calving rate. The observations of Hansbreen further indicate that during periods of slow front-position changes, melting at the water-line may play an important role in triggering the process of calving. The evolution of Hansbreen between 1982 and 1998 is simulated with a numerical model for the dynamics of tidewater glaciers. Using a flotation criterion for calving in which for each time-step the part of the glacier terminus which is below a critical height above buoyancy is removed, we are able to reproduce the observed rapid retreat of Hansbreen through the depression in the glacier bed. From the observations and model calculations, we conclude that the rapid retreat is mainly an effect of basal topography in the terminus region and not a direct response to a change in mass balance.

Information

Type
Research Article
Copyright
Copyright © International Glaciological Society 2002
Figure 0

Fig 1. (a) Map of Hansbreen showing glacier surface topography (solid contour lines) and bed topography (dotted contour lines). The contour intervals are 50 m. The dashed line indicates the flowline used, and the star the location of a glacier moulin, in which water pressure was monitored. The locations of the stakes used for the velocity measurements are shown with triangles for 1998 and black dots for 1999. The dashed-dotted rectangular frame indicates the zoomed area shown in (b). (b) Map of the frontal part of Hansbreen showing all observed terminus positions between 1982 and 1998. The thick solid lines show the front lines before the abrupt retreat in 1991, and the dashed-dotted lines the front lines after it. Three additional terminus positions before 1982 are shown and labelled with the corresponding year. Basal topography is shown as grey shades and contour lines with a contour interval of 10 m. The dashed line indicates the flowline used for the model calculations.

Figure 1

Fig. 2. (a) Observed glacier front positions averaged over a 200 m wide stripe along the flowline for the period 1982–98. (b, c) The seasonal cycles of the years 1986 (b) and 1991/92 (c).

Figure 2

Table. 1 Estimated maximum summer retreat rates and winter advance rates from observed front-position changes

Figure 3

Fig. 3. View of the calving front of Hansbreen. The notch melted out at the water-line shown on the photograph extends all along the calving face and persisted throughout the melting season. The height of the calving face is 18–30 m, and the water depth 40–70 m. The photograph was taken at low tide in July 1999.

Figure 4

Fig. 4. (a) Sea surface temperatures of Hornsund in the vicinity of Hansbreen, shown for the year 1981/82 (crosses with dashed line; Moskal, 1987) and summer 1975 (triangles and thick solid line; Swerpel, 1982). (b) Observed seasonal pattern of sea ice covering Hornsund in the vicinity of the calving front of Hansbreen for the year 1981/82 (Moskal, 1987).

Figure 5

Fig. 5. (a) Profile along the flowline of Hansbreen with glacier bed (solid line) and surface topography for the years 1936, 1990 and 1999. The lines within the glacier show the assumed englacial water levels for the model calculations following later. The two crosses show observed englacial water levels measured in a glacier moulin during the mean-flow 99 (upper) and the slow-flow 99 period (lower). (b) The symbols indicate measured surface flow velocities for the three different periods. The lines show the velocities from the model calculations following later. The solid line represents the best fit of the modelled velocities to the observed mean-flow 99 velocities (crosses). The sliding parameter k is in m a−1.

Figure 6

Fig. 6. (a) Modelled (solid line) and observed (crosses) front positions of Hansbreen with time. The time axis is matched to observed front positions, (b) Modelled horizontal surface velocities at the terminus (left scale) and calving rates (right scale) are shown with time.

Figure 7

Fig. 7. Modelled evolution of the glacier surface with time along the flowline. The time interval between two surface profiles is 2 years. The starting geometry of 1936 is indicated by the dashed line.The dashed-dotted line indicates the glacier bed topography along the flowline.