Effects of Spatial Aggregation of Initial Conditions and Forcing Data on Modeling Snowmelt Using a Land Surface Scheme

Pablo F. Dornes Centre for Hydrology, University of Saskatchewan, Saskatoon, Saskatchewan, Canada

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John W. Pomeroy Centre for Hydrology, University of Saskatchewan, Saskatoon, Saskatchewan, Canada

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Alain Pietroniro National Hydrology Research Centre, Environment Canada, Saskatoon, Saskatchewan, Canada

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Diana L. Verseghy Climate Research Division, Environment Canada, Toronto, Ontario, Canada

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Abstract

Small-scale topography and snow redistribution have important effects on snow-cover heterogeneity and the timing, rate, and duration of spring snowmelt in mountain tundra environments. However, land surface schemes (LSSs) are usually applied as a means to provide large-scale surface states and vertical fluxes to atmospheric models and do not normally incorporate topographic effects or horizontal fluxes in their calculations

A study was conducted in Granger Creek, an 8-km2 catchment within Wolf Creek Research Basin in the Yukon Territory, Canada, to examine whether inclusion of the effects of wind redistribution of snow between landscape units, and slope and aspect in snowmelt calculations for tiles, could improve the simulation of snowmelt by an LSS.

Measured snow accumulation, reflecting overwinter wind redistribution of snow, was used to provide initial conditions for the melt simulation, and physically based algorithms from a small-scale hydrological model were used to calculate radiation on slopes during melt. Based on consideration of the spatial distribution of snow accumulation, topography, and shrub cover in the basin, it was divided into five landscapes units (tiles) for simulation of mass and energy balance using an LSS during melt. Effects of averaging initial conditions and forcing data on LSS model performance were contrasted against distributed simulations. Results showed that, in most of the cases, simulations using aggregated initial conditions and forcing data gave unsuccessful descriptions of snow ablation whereas the incorporation of both snow-cover redistribution and slope and aspect effects in an LSS improved the prediction of snowmelt rate, timing, and duration.

Corresponding author address: Pablo Dornes, Centre for Hydrology, University of Saskatchewan, 117 Science Place, Saskatoon, SK S7N 5C8, Canada. Email: pablo.dornes@usask.ca

Abstract

Small-scale topography and snow redistribution have important effects on snow-cover heterogeneity and the timing, rate, and duration of spring snowmelt in mountain tundra environments. However, land surface schemes (LSSs) are usually applied as a means to provide large-scale surface states and vertical fluxes to atmospheric models and do not normally incorporate topographic effects or horizontal fluxes in their calculations

A study was conducted in Granger Creek, an 8-km2 catchment within Wolf Creek Research Basin in the Yukon Territory, Canada, to examine whether inclusion of the effects of wind redistribution of snow between landscape units, and slope and aspect in snowmelt calculations for tiles, could improve the simulation of snowmelt by an LSS.

Measured snow accumulation, reflecting overwinter wind redistribution of snow, was used to provide initial conditions for the melt simulation, and physically based algorithms from a small-scale hydrological model were used to calculate radiation on slopes during melt. Based on consideration of the spatial distribution of snow accumulation, topography, and shrub cover in the basin, it was divided into five landscapes units (tiles) for simulation of mass and energy balance using an LSS during melt. Effects of averaging initial conditions and forcing data on LSS model performance were contrasted against distributed simulations. Results showed that, in most of the cases, simulations using aggregated initial conditions and forcing data gave unsuccessful descriptions of snow ablation whereas the incorporation of both snow-cover redistribution and slope and aspect effects in an LSS improved the prediction of snowmelt rate, timing, and duration.

Corresponding author address: Pablo Dornes, Centre for Hydrology, University of Saskatchewan, 117 Science Place, Saskatoon, SK S7N 5C8, Canada. Email: pablo.dornes@usask.ca

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  • Avissar, R., and Pielke R. , 1989: A parameterization of heterogeneous land surfaces for atmospheric numerical models and its impact on regional meteorology. Mon. Wea. Rev., 117 , 21132136.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Bewley, D., 2006: Shrub-tundra effects on snowmelt energectics and the atmospheric interaction with snow. Ph.D. thesis, University of Wales, Aberystwyth, Wales, 211 pp.

  • Bewley, D., Pomeroy J. W. , and Essery R. L. H. , 2007: Solar radiation transfer through a sub-arctic shrub canopy. Arct. Alp. Res., 39 , 365374.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Carey, S. K., and Quinton W. L. , 2005: Evaluation of runoff generation during summer using hydrometric, stable isotope and hydrochemical methods in a discontinuous permafrost environment. Hydrol. Processes, 19 , 95114.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Davison, B., Pohl S. , Dornes P. , Marsh P. , Pietroniro A. , and MacKay M. , 2006: Characterizing snowmelt variability in a land surface hydrologic model. Atmos.–Ocean, 44 , 271287.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Déry, S. J., Crow W. T. , Stieglitz M. , and Wood E. F. , 2004: Modeling snow-cover heterogeneity over complex arctic terrain for regional and global climate models. J. Hydrometeor., 5 , 3348.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Dickinson, R. E., Henderson-Sellers A. , and Kennedy P. J. , 1993: Biosphere Atmosphere Transfer Scheme (BATS) version 1e as coupled to the NCAR Community Climate Model. NCAR/NT-387+STR, National Center for Atmospheric Research, Boulder, CO, 72 pp.

  • Donald, J. R., Soulis E. D. , Kouwen N. , and Pietroniro A. , 1995: Snowcover depletion curves and satellite snowcover estimates for snowmelt runoff modelling. Water Resour. Res., 31 , 9951009.

    • Search Google Scholar
    • Export Citation
  • Dornes, P. F., Pomeroy J. W. , Pietroniro A. , Carey S. K. , and Quinton W. L. , 2008: Influence of landscape aggregation in modelling snow-cover ablation and snowmelt runoff in a subarctic mountainous environment. Hydrol. Sci. J., in press.

    • Search Google Scholar
    • Export Citation
  • Essery, R. L. H., and Pomeroy J. W. , 2004: Vegetation and topographic control of wind-blown snow distributions in distributed and aggregated simulations for an arctic tundra basin. J. Hydrometeor., 5 , 734744.

    • Search Google Scholar
    • Export Citation
  • Essery, R. L. H., Li L. , and Pomeroy J. W. , 1999: A distributed model of blowing snow fluxes over complex terrain. Hydrol. Processes, 13 , 24232438.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Essery, R. L. H., Best M. J. , Betts R. A. , Cox P. M. , and Taylor C. M. , 2003: Explicit representation of subgrid heterogeneity in a GCM land surface scheme. J. Hydrometeor., 4 , 530543.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Essery, R. L. H., Granger R. , and Pomeroy J. , 2006: Boundary-layer growth and advection of heat over snow and soil patches: Modelling and parameterization. Hydrol. Processes, 20 , 953967.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Etchevers, P., and Coauthors, 2004: Validation of the surface energy budget simulated by several snow models (SnowMIP project). Ann. Glaciol., 38 , 150158.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Frazer, G. W., Canham C. D. , and Lertzman K. P. , 1999: Gap light analyser GLA, version 2.0: Imaging software to extract canopy structure and gap light transmission indices from true-color fisheye photographs. User manual and program documentation, Simon Fraser University and Institute of Ecosystem Studies, 40 pp.

  • Garnier, B. J., and Ohmura A. , 1970: The evaluation of surface variations in solar radiation income. Sol. Energy, 13 , 2134.

  • Granger, R. J., Essery R. , and Pomeroy J. W. , 2006: Boundary-layer growth over snow and soil patches: Field observations. Hydrol. Processes, 20 , 943951.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Gray, D. M., and Landine P. G. , 1988: An energy-budget snowmelt model for the Canadian Prairies. Can. J. Earth Sci., 25 , 12921303.

  • Gray, D. M., Toth B. , Zhao L. , Pomeroy J. W. , and Granger R. J. , 2001: Estimation areal snowmelt infiltration into frozen soils. Hydrol. Processes, 15 , 30953111.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Henderson-Sellers, A., Pitman A. J. , Love P. K. , Irannejad P. , and Chen T. H. , 1995: The Project for Intercomparison of Land Surface Parameterization Schemes (PILPS): Phases 2 and 3. Bull. Amer. Meteor. Soc., 76 , 489503.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Kite, G. W., and Spence C. , 1994: Land cover, NDVI, LAI and evapotranpsiration in hydrological modelling. Application of Remote Sensing in Hydrology, Proceedings of the Second International Workshop, Meteor. Monogr., No. 14, NHRI, 223–239.

    • Search Google Scholar
    • Export Citation
  • Koster, R., and Suarez M. J. , 1992: Modeling the land surface boundary in climate models as a composite of independent vegetation stands. J. Geophys. Res., 97 , 26972715.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Kouwen, N., Soulis E. D. , Pietroniro A. , Donald J. , and Harrington R. A. , 1993: Grouped response units for distributed hydrological modeling. J. Water Resour. Plann. Manage., 119 , 289305.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Liston, G. E., 1999: Interrelationships among snow distribution, snowmelt, and snow cover depletion: Implications for atmospheric, hydrologic, and ecologic modeling. J. Appl. Meteor., 38 , 14741487.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Liston, G. E., and Sturm M. , 1998: A snow-transport model for complex terrain. J. Glaciol., 44 , 498516.

  • Liston, G. E., McFadden J. P. , Sturn M. , and Pielke R. A. , 2002: Modelled changes in arctic tundra snow, energy and moisture fluxes due to increased shrubs. Global Change Biol., 8 , 1732.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Luce, C. H., and Tarboton D. G. , 2004: An application of depletion curves for parameterization of subgrid variability of snow. Hydrol. Processes, 18 , 14091422.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Manabe, S., 1969: Climate and ocean circulation. Part I: The atmospheric circulation and the hydrology of the earth’s surface. Mon. Wea. Rev., 97 , 739744.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Marks, D., Link T. , Winstral A. , and Garen D. , 2001: Simulating snowmelt processes during rain-on-snow over semi-arid mountain basin. Ann. Glaciol., 32 , 195202.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Marsh, P., and Pomeroy J. W. , 1996: Meltwater fluxes at an arctic forest-tundra site. Hydrol. Processes, 10 , 13831400.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • McCartney, S. E., 2006: Spatial variability of snowmelt water balances in a subarctic catchment. M.S. thesis, University of Saskatchewan, Saskatoon, Saskatchewan, Canada, 125 pp.

  • McCartney, S. E., Carey S. K. , and Pomeroy J. W. , 2006: Intra-basin variability of snowmelt water balance calculations in a subarctic catchment. Hydrol. Processes, 20 , 10011016.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Pietroniro, A., and Coauthors, 2007: Development of the MESH modelling system for hydrological ensemble forecasting of the Laurentian Great Lakes at the regional scale. Hydrol. Earth Syst. Sci., 11 , 12791294.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Pohl, S., Davison B. , Marsh P. , and Pietroniro A. , 2005: Modelling spatially distributed snowmelt and meltwater runoff in a small arctic catchment with a hydrology–land surface scheme (WATCLASS). Atmos.–Ocean, 43 , 193211.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Pomeroy, J. W., Marsh P. , and Gray D. M. , 1997: Application of a distributed blowing snow model to the Arctic. Hydrol. Processes, 11 , 14511464.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Pomeroy, J. W., Parviainen J. , Hedstrom N. , and Gray D. M. , 1998: Coupled forest snow interception and sublimation. Hydrol. Processes, 12 , 23172337.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Pomeroy, J. W., Toth B. , Granger R. J. , Hedstrom N. R. , and Essery R. L. H. , 2003: Variation in surface energetics during snowmelt in a subarctic mountain catchment. J. Hydrometeor., 4 , 702719.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Pomeroy, J. W., and Coauthors, 2006: Shrub tundra snowmelt. Hydrol. Processes, 20 , 923942.

  • Pomeroy, J. W., Gray D. M. , Brown T. , Hedstrom N. R. , Quinton W. , Granger R. J. , and Carey S. K. , 2007: The cold regions hydrological model: A platform for basing process representation and model structure on physical evidence. Hydrol. Processes, 21 , 26502667.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Quinton, W. L., Shirazi T. , Carey S. K. , and Pomeroy J. W. , 2005: Soil water storage and active-layer development in a sub-alpine tundra hillslope, southern Yukon Territory, Canada. Permafrost Periglacial Processes, 16 , 369382.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Sicart, J. E., Pomeroy J. W. , Essery R. L. H. , and Dewley D. , 2006: Incoming longwave radiation to melting snow: Observations, sensitivity and estimation in northern environments. Hydrol. Processes, 20 , 36973708.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Sivapalan, M., and Woods R. A. , 1995: Evaluation of the effects of general circulation models’ subgrid variability and patchiness of rainfall and soil moisture on land surface water balance fluxes. Hydrol. Processes, 9 , 697717.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Slater, G., and Coauthors, 2001: The representation of snow in land surface schemes: Results from PILPS 2(d). J. Hydrometeor., 2 , 725.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Soulis, E. D., Snelgrove K. R. , Kouwen N. , Seglenieks F. , and Verseghy D. L. , 2000: Towards closing the vertical water balance in Canadian atmospheric models: Coupling of the land surface scheme CLASS with the distributed hydrological model WATFLOOD. Atmos.–Ocean, 38 , 251269.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Sturm, M., McFadden J. P. , Liston G. E. , Chapin F. S. , Racine C. H. , and Holmgren J. , 2001: Snow–shrub interactions in arctic tundra: A hypothesis with climate implications. J. Climate, 14 , 336344.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Tolson, B. A., and Shoemaker C. A. , 2007: Dynamically Dimensioned Search algorithm for computationally efficient watershed model calibration. Water Resour. Res., 43 .W01413, doi:10.1029/2005WR004723.

    • Search Google Scholar
    • Export Citation
  • Verseghy, D. L., 1991: CLASS—A Canadian land surface scheme for GCMs. I. Soil model. Int. J. Climatol., 11 , 111133.

  • Verseghy, D. L., McFarlane N. A. , and Lazare M. , 1993: CLASS—A Canadian land surface scheme for GCMs. II. Vegetation model and coupled runs. Int. J. Climatol., 13 , 347370.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Wood, E. F., 1995: Scaling behaviour of hydrological fluxes and variables: Empirical studies using hydrological model and remote sensing data. Hydrol. Processes, 10 , 2136.

    • Search Google Scholar
    • Export Citation
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