Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/38183
Appears in Collections:Biological and Environmental Sciences Journal Articles
Peer Review Status: Refereed
Title: Emergent Dynamics From a Position‐Based Calving Function and the Limits of a Rate‐Based Calving Function
Author(s): Wheel, Iain
Benn, Douglas I
Crawford, Anna J
Contact Email: iain.wheel@stir.ac.uk
Keywords: calving
glacier modeling
climate prediction
icebergs
ice melange
submarine melt
Issue Date: Jul-2026
Date Deposited: 6-Jul-2026
Citation: Wheel I, Benn DI & Crawford AJ (2026) Emergent Dynamics From a Position‐Based Calving Function and the Limits of a Rate‐Based Calving Function. <i>Journal of Geophysical Research: Earth Surface</i>, 131 (7), Art. No.: e2025JF008631. https://doi.org/10.1029/2025jf008631
Abstract: A wide range of functions are currently available for simulating the calving of marine-terminating glaciers, but there is no consensus on the best approach to represent the calving process in glacier and ice-sheet models. Current assessments of calving functions are often crudely done by fitting functions to observed changes in terminus positions, neglecting the physical processes that drive changes in calving dynamics. Here, we use 3D simulations of synthetic tidewater glacier domains in Elmer/Ice, to determine whether natural behaviors emerge from the crevasse-depth and von Mises calving functions, and to provide a basis for more robust assessments of the potential capabilities of calving functions. The crevasse-depth calving function is shown to be able to simulate both serac and full-thickness calving events and simulates how their relative proportion is altered by changing the ice freeboard or submarine melting. A clear distinction between rate- and position-based calving is shown, with the von Mises calving function unable to respond to imposed changes in topography or freeboard ice. By comparing the two calving functions, it is apparent that the position-based crevasse-depth function more faithfully represents the calving behaviors observed in the natural world. Consequently, future projections should be made using position-based calving functions. Using a position function, calving rates vary with time and glacier state, so cannot be assumed to be a constant function of stress. In essence, a calving function must be able to capture the key physical processes that drive calving. If so, the transitions in calving dynamics will inherently emerge.
DOI Link: 10.1029/2025jf008631
Rights: This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
Licence URL(s): http://creativecommons.org/licenses/by/4.0/

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