Improved representation of laminar and turbulent sheet flow in subglacial drainage models

Subglacial hydrology models struggle to reproduce seasonal drainage patterns that are consistent with observed subglacial water pressures and surface velocities. We modify the standard sheet-flow parameterization within a coupled sheet–channel subglacial drainage model to smoothly transition between...

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Bibliographic Details
Main Authors: Hill, Tim, Flowers, Gwenn E., Hoffman, Matthew J., Bingham, Derek, Werder, Mauro, id_orcid:0 000-0003-0137-9377
Format: Article in Journal/Newspaper
Language:English
Published: Cambridge University Press 2023
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Online Access:https://hdl.handle.net/20.500.11850/646919
https://doi.org/10.3929/ethz-b-000646919
Description
Summary:Subglacial hydrology models struggle to reproduce seasonal drainage patterns that are consistent with observed subglacial water pressures and surface velocities. We modify the standard sheet-flow parameterization within a coupled sheet–channel subglacial drainage model to smoothly transition between laminar and turbulent flow based on the locally computed Reynolds number in a physically consistent way (the “transition” model). We compare the transition model to standard laminar and turbulent models to assess the role of the sheet-flow parameterization in reconciling observed and modelled water pressures under idealized and realistic forcing. Relative to the turbulent model, the laminar and transition models improve seasonal simulations by increasing winter water pressure and producing a more prominent late-summer water pressure minimum. In contrast to the laminar model, the transition model remains consistent with its own internal assumptions across all flow regimes. Based on the internal consistency of the transition model and its improved performance relative to the standard turbulent model, we recommend its use for transient simulations of subglacial drainage. ISSN:0022-1430 ISSN:1727-5652