Literature DB >> 33133995

A Lagrangian Snow-Evolution System for Sea-Ice Applications (SnowModel-LG): Part I-Model Description.

Glen E Liston1, Polona Itkin2, Julienne Stroeve3,4, Mark Tschudi5, J Scott Stewart5, Stine H Pedersen1,6, Adele K Reinking1, Kelly Elder7.   

Abstract

A Lagrangian snow-evolution model (SnowModel-LG) was used to produce daily, pan-Arctic, snow-on-sea-ice, snow property distributions on a 25 × 25-km grid, from 1 August 1980 through 31 July 2018 (38 years). The model was forced with NASA's Modern Era Retrospective-Analysis for Research and Applications-Version 2 (MERRA-2) and European Centre for Medium-Range Weather Forecasts (ECMWF) ReAnalysis-5th Generation (ERA5) atmospheric reanalyses, and National Snow and Ice Data Center (NSIDC) sea ice parcel concentration and trajectory data sets (approximately 61,000, 14 × 14-km parcels). The simulations performed full surface and internal energy and mass balances within a multilayer snowpack evolution system. Processes and features accounted for included rainfall, snowfall, sublimation from static-surfaces and blowing-snow, snow melt, snow density evolution, snow temperature profiles, energy and mass transfers within the snowpack, superimposed ice, and ice dynamics. The simulations produced horizontal snow spatial structures that likely exist in the natural system but have not been revealed in previous studies spanning these spatial and temporal domains. Blowing-snow sublimation made a significant contribution to the snowpack mass budget. The superimposed ice layer was minimal and decreased over the last four decades. Snow carryover to the next accumulation season was minimal and sensitive to the melt-season atmospheric forcing (e.g., the average summer melt period was 3 weeks or 50% longer with ERA5 forcing than MERRA-2 forcing). Observed ice dynamics controlled the ice parcel age (in days), and ice age exerted a first-order control on snow property evolution. ©2020. The Authors.

Entities:  

Keywords:  Arctic; Lagrangian; SnowModel‐LG; snow‐on‐sea‐ice

Year:  2020        PMID: 33133995      PMCID: PMC7583384          DOI: 10.1029/2019JC015913

Source DB:  PubMed          Journal:  J Geophys Res Oceans        ISSN: 2169-9275            Impact factor:   3.405


  4 in total

1.  Factors affecting projected Arctic surface shortwave heating and albedo change in coupled climate models.

Authors:  Marika M Holland; Laura Landrum
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2015-07-13       Impact factor: 4.226

2.  The Modern-Era Retrospective Analysis for Research and Applications, Version 2 (MERRA-2).

Authors:  Ronald Gelaro; Will McCarty; Max J Suárez; Ricardo Todling; Andrea Molod; Lawrence Takacs; Cynthia Randles; Anton Darmenov; Michael G Bosilovich; Rolf Reichle; Krzysztof Wargan; Lawrence Coy; Richard Cullather; Clara Draper; Santha Akella; Virginie Buchard; Austin Conaty; Arlindo da Silva; Wei Gu; Gi-Kong Kim; Randal Koster; Robert Lucchesi; Dagmar Merkova; Jon Eric Nielsen; Gary Partyka; Steven Pawson; William Putman; Michele Rienecker; Siegfried D Schubert; Meta Sienkiewicz; Bin Zhao
Journal:  J Clim       Date:  2017-06-20       Impact factor: 5.148

3.  Winter storms accelerate the demise of sea ice in the Atlantic sector of the Arctic Ocean.

Authors:  Robert M Graham; Polona Itkin; Amelie Meyer; Arild Sundfjord; Gunnar Spreen; Lars H Smedsrud; Glen E Liston; Bin Cheng; Lana Cohen; Dmitry Divine; Ilker Fer; Agneta Fransson; Sebastian Gerland; Jari Haapala; Stephen R Hudson; A Malin Johansson; Jennifer King; Ioanna Merkouriadi; Algot K Peterson; Christine Provost; Achim Randelhoff; Annette Rinke; Anja Rösel; Nathalie Sennéchael; Von P Walden; Pedro Duarte; Philipp Assmy; Harald Steen; Mats A Granskog
Journal:  Sci Rep       Date:  2019-06-25       Impact factor: 4.379

4.  The role of cyclone activity in snow accumulation on Arctic sea ice.

Authors:  M A Webster; C Parker; L Boisvert; R Kwok
Journal:  Nat Commun       Date:  2019-11-21       Impact factor: 14.919

  4 in total
  3 in total

1.  A year-round satellite sea-ice thickness record from CryoSat-2.

Authors:  Jack C Landy; Geoffrey J Dawson; Michel Tsamados; Mitchell Bushuk; Julienne C Stroeve; Stephen E L Howell; Thomas Krumpen; David G Babb; Alexander S Komarov; Harry D B S Heorton; H Jakob Belter; Yevgeny Aksenov
Journal:  Nature       Date:  2022-09-14       Impact factor: 69.504

2.  Local and Remote Forcing of Interannual Sea-Level Variability at Nantucket Island.

Authors:  Ou Wang; Tong Lee; Christopher G Piecuch; Ichiro Fukumori; Ian Fenty; Thomas Frederikse; Dimitris Menemenlis; Rui M Ponte; Hong Zhang
Journal:  J Geophys Res Oceans       Date:  2022-06-15       Impact factor: 3.938

3.  Habitat selection by Dall's sheep is influenced by multiple factors including direct and indirect climate effects.

Authors:  Jocelyn L Aycrigg; Adam G Wells; Edward O Garton; Buck Magipane; Glen E Liston; Laura R Prugh; Janet L Rachlow
Journal:  PLoS One       Date:  2021-03-18       Impact factor: 3.240

  3 in total

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