Publication:

Verification of the multi-layer SNOWPACK model with different water transport schemes

cris.lastimport.scopus

2024-08-08T10:32:19Z

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215076

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6603785154

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CRYOS

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0000-0002-8442-0875

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IIE

cris.virtual.parent-organization

ENAC

cris.virtual.parent-organization

EPFL

cris.virtual.sciperId

216515

cris.virtual.sciperId

167659

cris.virtual.unitId

12533

cris.virtual.unitManager

Lehning, Michael

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d3b41c07-ae55-4bdc-b82d-af9c52f77e28

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a9741e6e-6775-4526-83bd-601bebf33716

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d3b41c07-ae55-4bdc-b82d-af9c52f77e28

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a9741e6e-6775-4526-83bd-601bebf33716

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ed5b47ea-0033-428e-b2c9-b72177bd7833

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ed5b47ea-0033-428e-b2c9-b72177bd7833

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ed5b47ea-0033-428e-b2c9-b72177bd7833

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ed5b47ea-0033-428e-b2c9-b72177bd7833

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d3b41c07-ae55-4bdc-b82d-af9c52f77e28

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a9741e6e-6775-4526-83bd-601bebf33716

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ed5b47ea-0033-428e-b2c9-b72177bd7833

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datacite.rights

openaccess

dc.contributor.author

Wever, Nander

dc.contributor.author

Schmid, Lino

dc.contributor.author

Heilig, Achim

dc.contributor.author

Eisen, Olaf

dc.contributor.author

Fierz, Charles

dc.contributor.author

Lehning, Michael

dc.date.accessioned

2016-01-18T17:12:09

dc.date.available

2016-01-18T17:12:09

dc.date.created

2016-01-18

dc.date.issued

2015

dc.date.modified

2025-01-23T22:22:39.641895Z

dc.description.abstract

The widely used detailed SNOWPACK model has undergone constant development over the years. A notable recent extension is the introduction of a Richards equation (RE) solver as an alternative for the bucket-type approach for describing water transport in the snow and soil layers. In addition, continuous updates of snow settling and new snow density parameterizations have changed model behavior. This study presents a detailed evaluation of model performance against a comprehensive multiyear data set from Weissfluhjoch near Davos, Switzerland. The data set is collected by automatic meteorological and snowpack measurements and manual snow profiles. During the main winter season, snow height (RMSE: < 4.2 cm), snow water equivalent (SWE, RMSE: < 40 mm w.e.), snow temperature distributions (typical deviation with measurements: < 1.0 °C) and snow density (typical deviation with observations: < 50 kg m−3) as well as their temporal evolution are well simulated in the model and the influence of the two water transport schemes is small. The RE approach reproduces internal differences over capillary barriers but fails to predict enough grain growth since the growth routines have been calibrated using the bucket scheme in the original SNOWPACK model. However, the agreement in both density and grain size is sufficient to parameterize the hydraulic properties successfully. In the melt season, a pronounced underestimation of typically 200 mm w.e. in SWE is found. The discrepancies between the simulations and the field data are generally larger than the differences between the two water transport schemes. Nevertheless, the detailed comparison of the internal snowpack structure shows that the timing of internal temperature and water dynamics is adequately and better represented with the new RE approach when compared to the conventional bucket scheme. On the contrary, the progress of the meltwater front in the snowpack as detected by radar and the temporal evolution of the vertical distribution of melt forms in manually observed snow profiles do not support this conclusion. This discrepancy suggests that the implementation of RE partly mimics preferential flow effects.

dc.description.sponsorship

CRYOS

dc.identifier.doi

10.5194/tc-9-2271-2015

dc.identifier.isi

WOS:000367523400017

dc.identifier.uri

https://infoscience.epfl.ch/handle/20.500.14299/122305

dc.relation

https://infoscience.epfl.ch/record/215076/files/9-2271-2015-tc-9-2271-2015.pdf

dc.relation.journal

The Cryosphere

dc.title

Verification of the multi-layer SNOWPACK model with different water transport schemes

dc.type

text::journal::journal article::research article

dspace.entity.type

Publication

dspace.file.type

Publisher's version

dspace.legacy.oai-identifier

oai:infoscience.tind.io:215076

epfl.legacy.itemtype

Journal Articles

epfl.legacy.submissionform

ARTICLE

epfl.oai.currentset

ENAC

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fulltext

epfl.oai.currentset

article

epfl.oai.currentset

OpenAIREv4

epfl.peerreviewed

REVIEWED

epfl.publication.version

http://purl.org/coar/version/c_970fb48d4fbd8a85

epfl.writtenAt

EPFL

oaire.citation.endPage

2293

oaire.citation.startPage

2271

oaire.citation.volume

9

oaire.licenseCondition

CC BY

oaire.version

http://purl.org/coar/version/c_970fb48d4fbd8a85

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