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Snow and ice on Bear Lake (Alaska) – sensitivity experiments with two lake ice models Cover

Snow and ice on Bear Lake (Alaska) – sensitivity experiments with two lake ice models

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Open Access
|Dec 2012

References

  1. ALISON. 2011. Alaska Lake Ice and Snow Observatory Network. Online at http://www.gi.alaska.edu/alison/ALISON_measures.html.
  2. Anderson, E. A. 1976. A Point Energy and Mass Balance Model of a Snow Cover. Technical Report NWS 19, 150 pp., Natl. Oceanic and Atmos. Admin., Washington, D. C.
  3. Ashton G. D. River and lake ice thickening, thinning and snow ice formation. Cold Regions Sci. Technol. 2011; 68: 319.
  4. Briegleb, B. P., Bitz, C. M., Hunke, E. C., Lipscomb, W. H., Holland, M. M. and co-authors. 2004. Scientific Description of the Sea Ice Component in the Community Climate System Model, Version Three. Technical Report NCAR/TN-463 + STR, National Center for Atmospheric Research, Boulder, CO, 78 pp.
  5. Bolsenga S. J. Preliminary observations on the daily variation of ice albedo. J. Glaciol. 1977; 18: 517521.
  6. Brown L. C. Duguay C. R. The response and role of ice cover in lake-climate interactions. Prog. Phys. Geogr. 2010; 34: 671704.
  7. Cheng B. Launianen J. Vihma T. Modelling of Superimposed ice formation and Sub-Surface melting in the Baltic Sea. Geophysica. 2003; 39: 3150.
  8. Cheng B. Vihma T. Pirazzini R. Granskog M. A. Modelling of superimposed ice formation during the spring snowmelt period in the Baltic Sea. Ann. Glaciol. 2006; 44: 139146.
  9. Cheng, B., Zhang, Z., Vihma, T., Johansson, M., Bian, L. and co-authors. 2008. Model experiments on snow and ice thermodynamics in the Arctic with CHINARE 2003 data. J. Geophys. Res., 113, C09020.
  10. Christensen J. H. Christensen O. B. A summary of the PRUDENCE model projections of changes in European climate by the end of this century. Clim. Change. 2007; 81: 730.
  11. Curry J. A. Schramm J. Perovich D. Pinto O. Application of SHEBA/FIRE data to evaluation of snow/ice albedo parameterizations. J. Geophys. Res. 2001; 106: 1534515355.
  12. Duguay, C. R., Flato, G. M., Jeffries, M. O., Ménard P., Morris, K. and co-authors. 2003. Ice cover variability on shallow lakes at high latitudes: model simulations and observations. Hydrol. Proc. 17, 3465–3483.
  13. Ebert E. E. Curry J. A. An intermediate one-dimensional thermodynamic sea ice model for investigating ice-atmosphere interaction. J. Geophys. Res. 1993; 98(C6): 1008510109.
  14. Eerola K. Rontu L. Kourzeneva E. Shcherbak E. A study on effects of lake temperature and ice cover in HIRLAM. Boreal. Env Res. 2010; 15: 130142.
  15. Gabison R. A thermodynamic model of the formation, growth, and decay of first-year sea ice. J. Glaciol. 1987; 33: 105109.
  16. Gardner, A. S. and Sharp, M. J. 2010. A review of snow and ice albedo and the development of a new physically based broadband albedo parameterization. J. Geophys. Res. 115, F01009, doi:10.1029/2009JF001444.
  17. Henneman H. E. Stefan H. G. Albedo models for snow and ice on a freshwater lake. Cold Regions Sci. Technol. 1999; 29: 3148.
  18. Heron R. Woo M. K. Decay of a High Arctic lake-ice cover: observations and modelling. J. Glaciol. 1994; 40: 283292.
  19. Huwald H. Tremblay L.-B. Blatter H. Reconciling different observational data sets from Surface Heat Budget of the Arctic Ocean (SHEBA) for model validation purposes. J. Geophys. Res. 2005; 110: C05009.
  20. Jeffries M. O. Morris K. Instantaneous daytime conductive heat flow through snow on lake ice in Alaska. Hydrol. Proc. 2006; 20: 803815.
  21. Jeffries M. O. Morris K. Duguay C. R. Lake ice growth and decay in central Alaska: observations and computer simulations compared. Ann. Glaciol. 2005; 40: 195199.
  22. Kawamura T. Ohshima K. I. Takizawa T. Ushio S. Physical, structural, and isotopic characteristics and growth processes of fast sea ice in Lutzow-Holm Bay, Antarctica. J. Geophys. Res. 1997; 102(C2): 33453355.
  23. Kitaigorodskii S. A. Miropolsky Y. Z. On the theory of the open ocean active layer. Izv. Akad. Nauk SSSR. Fizika Atmosfery I Okeana. 1970; 6: 178188.
  24. Launiainen J. Cheng B. Modelling of ice thermodynamics in natural water bodies. Cold Reg. Sci. Technol. 1998; 27(3): 153178.
  25. Leppäranta M. A growth model for black ice, snow ice and snow thickness in subantarctic basins. Nordic Hydrol. 1983; 14: 5970.
  26. Liu J. Zhang Z. Inoue J. Horton R. M. Evaluation of snow/ice albedo parameterizations and their impacts on sea-ice simulations. Int. J. Climatol. 2007; 27: 8191.
  27. MacKay, M. D., Neale, P. J., Arp, C. D., De Senerpont Domis, L. N., Fang, X., and co-authors. 2009. Modeling lakes and reservoirs in the climate system. Limnol. Oceanogr. 54, 2315–2329.
  28. Maykut G. A. Untersteiner N. Some results from a time-dependent thermodynamic model of sea ice. J. Geophys. Res. 1971; 76: 15501575.
  29. Mironov, D. V. 2008. Parameterization of Lakes in Numerical Weather Prediction. Description of a Lake Model. Technical Report of COSMO, No. 11. Deutscher Wetterdienst, Offenbach am Main, 41 pp.
  30. Mironov, D., Heise, E., Kourzeneva, E., Ritter, B., Schneider, N. and co-authors. 2010. Implementation of the lake parameterization scheme FLake into the numerical weather prediction model COSMO. Boreal Env. Res. 15, 218–230.
  31. Nicolaus M. Haas C. Bareiss J. Observations of superimposed ice formation at melt-onset on fast ice on Kongsfjorden, Svalbard. Phys Chem Earth. 2003; 28: 12411248.
  32. Perovich, D. K. 1996. The optical properties of sea ice. CRREL Monogr. 96–1, 25 pp.
  33. Prowse T. D. Marsh P. Thermal budget of river ice covers during break-up. Can. J. Civil Eng. 1989; 16: 6271.
  34. Salgado R. Le Moigne P. Coupling of the FLake model to the Surfex externalized surface model. Boreal Env. Res. 2010; 15: 231244.
  35. Samuelsson P. Kourzeneva E. Mironov D. The impact of lakes on the European climate as simulated by a regional climate model. Boreal Env. Res. 2010; 15: 113129.
  36. Stepanenko, V. M., Goyette, S., Martynov, A., Perroud, M., Fang, X. and co-authors. 2010. First steps of a Lake Model Intercomparison Project: LakeMIP. Boreal Env. Res. 15, 191–202.
  37. Sturm M. Holmgren J. König M. Morris K. The thermal conductivity of snow. J. Glaciol. 1997; 43: 2641.
  38. Sturm M. Liston G. E. The snow cover on lakes of the Arctic Coastal Plain of Alaska. J. Glaciol. 2003; 49(166): 370380.
  39. Sturm, M., Perovich, D. K. and Holmgren, J. 2002. Thermal conductivity and heat transfer through the snow and ice of the Beaufort Sea. J. Geophys. Res. Oceans 107(C21), 8043, doi:10.1029/2000JC000409.
  40. Undén, P., Rontu, L., Järvinen, H., Lynch, P., Calvo, J. and co-authors. 2002. The HIRLAM-5 scientific documentation. 144pp. Online at http://hirlam.org and SMHI, S-60176 Norrköping, Sweden.
  41. Vavrus S. J. Wynne R. H. Foley J. A. Measuring the sensitivity of southern Wisconsin lake ice to climate variations and lake depth using a numerical model. Limnol. Oceanogr. 1996; 41: 822831.
  42. Yang, Y., Leppäranta, M., Cheng, B., Li, Z. and Rontu, L. 2012. Numerical modelling of snow and ice thicknesses in Lake Vanajavesi, Finland. Tellus, 64A, 17202.
Language: English
Page range: 17339 - 17339
Submitted on: Apr 8, 2011
Published on: Dec 1, 2012
Published by: Stockholm University Press
In partnership with: Paradigm Publishing Services

© 2012 Tido Semmler, Bin Cheng, Yu Yang, Laura Rontu, published by Stockholm University Press
This work is licensed under the Creative Commons Attribution 4.0 License.