Observed and modeled moulin heads in the Pâkitsoq region of Greenland suggest subglacial channel network effects
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Published:2023-11-30
Issue:12
Volume:17
Page:5075-5094
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ISSN:1994-0424
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Container-title:The Cryosphere
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language:en
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Short-container-title:The Cryosphere
Author:
Trunz CeliaORCID, Poinar KristinORCID, Andrews Lauren C., Covington Matthew D.ORCID, Mejia Jessica, Gulley Jason, Siegel Victoria
Abstract
Abstract. In the ablation zone of land-terminating areas of the Greenland Ice Sheet, water pressures at the bed control seasonal and daily ice motion variability. During the melt season, large amounts of surface meltwater access the bed through moulins, which sustain an efficient channelized subglacial system. Water pressure within these subglacial channels can be inferred by measuring the hydraulic head within moulins. However, moulin head data are rare, and subglacial hydrology models that simulate water pressure fluctuations require water storage in moulins or subglacial channels. Neither the volume nor the location of such water storage is currently well constrained. Here, we use the Moulin Shape (MouSh) model, which quantifies time-evolving englacial storage, coupled with a subglacial channel model to simulate head measurements from a small moulin in Pâkitosq, western Greenland. We force the model with surface meltwater input calculated using field-acquired weather data. Our first-order simulations of moulin hydraulic head either overpredict the diurnal range of oscillation of the moulin head or require an unrealistically large moulin size to reproduce observed head oscillation ranges. We find that to accurately match field observations of moulin head, additional subglacial water must be added to the system. This subglacial baseflow is likely sourced from basal melt and nonlocal surface water inputs upstream. We hypothesize that the additional baseflow represents strong subglacial network connectivity throughout the channelized system and is consistent with our small moulin likely connecting to a higher-order subglacial channel.
Funder
National Science Foundation National Aeronautics and Space Administration
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Water Science and Technology
Reference92 articles.
1. Andrews, L. C.: Spatial and temporal evolution of the glacial hydrologic system of the western Greenland ice sheet: observational and remote sensing results, Thesis, The University of Texas at Austin, https://doi.org/10.15781/T2WM4V, 2015. a, b 2. Andrews, L. C., Catania, G. A., Hoffman, M., Gulley, J., Lüthi, M. P., Ryser, C., Hawley, R. L., and Neumann, T. A.: Direct observations of evolving subglacial drainage beneath the Greenland Ice Sheet, Nature, 514, 80–83, https://doi.org/10.1038/nature13796, 2014. a, b, c, d, e, f 3. Andrews, L. C., Poinar, K., and Trunz, C.: Controls on Greenland moulin geometry and evolution from the Moulin Shape model, The Cryosphere, 16, 2421–2448, https://doi.org/10.5194/tc-16-2421-2022, 2022a. a, b, c, d, e, f, g, h, i, j 4. Andrews, L. C., Trunz, C., and Poinar, K.: kpoinar/moulin-physical-model: Moulin Shape model for The Cryosphere article, 2022 (MouSh-v1.0), Zenodo [code], https://doi.org/10.5281/zenodo.6585291, 2022b. a 5. Badino, G. and Piccini, L.: Englacial water fluctuation in moulins: an example from Tyndall Glacier (Patagonia, Chile), Nimus, 23–24, 125–129, 2002. a
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