Effects of undercutting and sliding on calving: a global approach applied to Kronebreen, Svalbard
-
Published:2018-02-21
Issue:2
Volume:12
Page:609-625
-
ISSN:1994-0424
-
Container-title:The Cryosphere
-
language:en
-
Short-container-title:The Cryosphere
Author:
Vallot Dorothée, Åström Jan, Zwinger ThomasORCID, Pettersson RickardORCID, Everett AlistairORCID, Benn Douglas I., Luckman AdrianORCID, van Pelt Ward J. J.ORCID, Nick Faezeh, Kohler Jack
Abstract
Abstract. In this paper, we study the effects of basal friction, sub-aqueous
undercutting and glacier geometry on the calving process by combining six
different models in an offline-coupled workflow: a continuum–mechanical ice
flow model (Elmer/Ice), a climatic mass balance model, a simple subglacial
hydrology model, a plume model, an undercutting model and a discrete particle
model to investigate fracture dynamics (Helsinki Discrete Element Model,
HiDEM). We demonstrate the feasibility of reproducing the observed calving
retreat at the front of Kronebreen, a tidewater glacier in Svalbard, during a
melt season by using the output from the first five models as input to HiDEM.
Basal sliding and glacier motion are addressed using Elmer/Ice, while calving
is modelled by HiDEM. A hydrology model calculates subglacial drainage paths
and indicates two main outlets with different discharges. Depending on the
discharge, the plume model computes frontal melt rates, which are iteratively
projected to the actual front of the glacier at subglacial discharge
locations. This produces undercutting of different sizes, as melt is
concentrated close to the surface for high discharge and is more diffuse for
low discharge. By testing different configurations, we show that undercutting
plays a key role in glacier retreat and is necessary to reproduce observed
retreat in the vicinity of the discharge locations during the melting season.
Calving rates are also influenced by basal friction, through its effects on
near-terminus strain rates and ice velocity.
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Water Science and Technology
Reference53 articles.
1. Aliani, S., Sciascia, R., Conese, I., D'Angelo, A., Del Bianco, F., Giglio, F.,
Langone, L., and Miserocchi, S.: Characterization of seawater properties and
ocean heat content in Kongsfjorden, Svalbard Archipelago, Rendiconti Lincei,
27, 155–162, https://doi.org/10.1007/s12210-016-0544-4, 2016. a 2. Amundson, J. M. and Truffer, M.: A unifying framework for iceberg-calving
models, J. Glaciol., 56, 822–830,
https://doi.org/10.3189/002214310794457173, 2010. a 3. Åström, J. A., Riikilä, T. I., Tallinen, T., Zwinger, T., Benn, D., Moore, J.
C., and Timonen, J.: A particle based simulation model for glacier dynamics,
The Cryosphere, 7, 1591–1602, https://doi.org/10.5194/tc-7-1591-2013, 2013. a, b 4. Åström, J. A., Vallot, D., Schäfer, M., Welty, E. Z., O'Neel, S.,
Bartholomaus, T., Liu, Y., Riikilä, T., Zwinger, T., Timonen, J., and Moore, J. C.:
Termini of calving glaciers as self-organized critical systems, Nat.
Geosci., 7, 874–878, https://doi.org/10.1038/NGEO2290, 2014. a, b 5. Bassis, J. and Jacobs, S.: Diverse calving patterns linked to glacier geometry,
Nat. Geosci., 6, 833–836, https://doi.org/10.1038/ngeo1887, 2013. a
Cited by
28 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|