247
Modeling Snowmelt Runoff under Climate Change Scenarios
Harshburger, B. J., Humes, K. S., Walden, V. P., Blandford, T. R., Moore, B. C., and
Dessani, R. J. (2010). Spatial Interpolation of snow water equivalency using surface observations and remotely sensed images of snow-covered area. Hydrological
Processes, 24, 1285–1295.
Hock, R. (2003). Temperature index melt modeling in mountain areas. Journal of Hydrology,
282, 104–115, doi:10.1016/S0022-1694(03)00257-9.
Homan, J. W., Luce, C. H., McNamara, J. P., and Glenn, N. F. (2011). Improvement of distributed snowmelt energy balance modeling with MODIS-based NDSI-derived fractional
snow-covered area data. Hydrological Processes, 25(4), 650–660.
Hong, M. A. and Guodong, C. (2003). A test of snowmelt runoff model (SRM) for the
Gongnaisi River basin in the western Tianshan Mountains, China. Chinese Science
Bulletin, 48(20), 2253–2259.
Jackson, T. J. and Hsu, A.Y. (2001). Soil moisture and TRMM microwave imager relationship in the Southern Great Plains 1999 (SGP99) experiment. IEEE Transactions on
Geoscience and Remote Sensing, 39, 1632–1642.
Jordan, R. (1991). Special Report 91-16, A One Dimensional Temperature Model for a Snow
Cover: Technical Documentation for SYNTHERM.89, 49 pp. US Army Corps of
Engineers Cold Regions Research and Engineering Laboratory, Hanover, NH.
Kawanishi, T., Sezai, T., Ito, Y., Imaoka, K., Takeshima, T., Ishido, Y., Shibata, A., Miura, M.,
Inahata, H., and Spencer, R. W. (2003). The advanced microwave scanning radiometer for the
earth observing system (AMSR-E), NASDA’s contribution to the EOS for global energy and
water cycle studies. IEEE Transactions on Geoscience and Remote Sensing, 41(2), 184–194.
Kelly, R., Chang, A., Tsang, L., and Foster, J. (2003). A prototype AMSR-E global snow
area and snow depth algorithm. IEEE Transactions on Geoscience and Remote Sensing,
41(2), 230–242.
Kirnbauer, R. and Bloschl, G. (1994). How similar are snow cover patterns from year to year?
Deutsche Gewasserkundliche, Mitteilungen, 37, 113–121.
König, M. (2001). Measuring snow and glacier ice properties from satellite. Reviews of
Geophysics, 39(1), 1–27.
Kustas, W. P., Rango, A., and Uijlenhoef, R. (1994). A simple energy budget algorithm for the
snowmelt runoff model. Water Resources Research, 30(5), 1515–1527.
Liang, T. G., Zhang, X. T., Xie, H. J., Wu, C. X., Feng, Q. S., Huang, X. D., and Chen, Q. G.
(2008). Toward improved daily snow cover mapping with advanced combination of
MODIS and AMSR-E measurements. Remote Sensing of Environment, 112, 3750–3761.
Luce, C. H. and Tarboton, D. G. (2004). The application of depletion curves for parameterization of subgrid variability of snow. Hydrological Processes, 18, 1409–1422.
Luce, C. H., Tarboton, D. G., and Cooley, K. R. (1999). Subgrid parameterization of snow
distribution for an energy and mass balance snow cover model. Hydrological Processes,
13, 1921–1933.
Marks, D., Domingo, J., Susong, D., Link, T., and Garen, D. (1999). A spatially distributed
energy balance snowmelt model for application in mountain basins. Hydrological
Processes, 13, 1935–1959.
Martinec, J. and Rango, A. (1986). Parameter values for snowmelt runoff modeling. Journal
of Hydrology, 84, 197–219.
Martinec, J. and Rango, A. (1989). Effects of climate change on snowmelt runoff patterns,
in Remote Sensing and Large Scale Global Processes (Proc. Baltimore Symp.), IAHS
Publication No. 186, 31–38.
Martinec, J., Rango, A., and Roberts, R. (2005). SRM Snowmelt Runoff Model, User’s Manual
(Updated edition for Windows, WinSRM Version 1.10). USDA Jornada Experimental
Range, New Mexico State University, Las Cruces, NM 88003, USA.
Martinec, J., Rango, A., and Roberts, R. (2008). SRM Snowmelt Runoff Model, User’s Manual,
175 pp. New Mexico State University, Las Cruces, NM.
Modeling Snowmelt Runoff under Climate Change Scenarios
Harshburger, B. J., Humes, K. S., Walden, V. P., Blandford, T. R., Moore, B. C., and
Dessani, R. J. (2010). Spatial Interpolation of snow water equivalency using surface observations and remotely sensed images of snow-covered area. Hydrological
Processes, 24, 1285–1295.
Hock, R. (2003). Temperature index melt modeling in mountain areas. Journal of Hydrology,
282, 104–115, doi:10.1016/S0022-1694(03)00257-9.
Homan, J. W., Luce, C. H., McNamara, J. P., and Glenn, N. F. (2011). Improvement of distributed snowmelt energy balance modeling with MODIS-based NDSI-derived fractional
snow-covered area data. Hydrological Processes, 25(4), 650–660.
Hong, M. A. and Guodong, C. (2003). A test of snowmelt runoff model (SRM) for the
Gongnaisi River basin in the western Tianshan Mountains, China. Chinese Science
Bulletin, 48(20), 2253–2259.
Jackson, T. J. and Hsu, A.Y. (2001). Soil moisture and TRMM microwave imager relationship in the Southern Great Plains 1999 (SGP99) experiment. IEEE Transactions on
Geoscience and Remote Sensing, 39, 1632–1642.
Jordan, R. (1991). Special Report 91-16, A One Dimensional Temperature Model for a Snow
Cover: Technical Documentation for SYNTHERM.89, 49 pp. US Army Corps of
Engineers Cold Regions Research and Engineering Laboratory, Hanover, NH.
Kawanishi, T., Sezai, T., Ito, Y., Imaoka, K., Takeshima, T., Ishido, Y., Shibata, A., Miura, M.,
Inahata, H., and Spencer, R. W. (2003). The advanced microwave scanning radiometer for the
earth observing system (AMSR-E), NASDA’s contribution to the EOS for global energy and
water cycle studies. IEEE Transactions on Geoscience and Remote Sensing, 41(2), 184–194.
Kelly, R., Chang, A., Tsang, L., and Foster, J. (2003). A prototype AMSR-E global snow
area and snow depth algorithm. IEEE Transactions on Geoscience and Remote Sensing,
41(2), 230–242.
Kirnbauer, R. and Bloschl, G. (1994). How similar are snow cover patterns from year to year?
Deutsche Gewasserkundliche, Mitteilungen, 37, 113–121.
König, M. (2001). Measuring snow and glacier ice properties from satellite. Reviews of
Geophysics, 39(1), 1–27.
Kustas, W. P., Rango, A., and Uijlenhoef, R. (1994). A simple energy budget algorithm for the
snowmelt runoff model. Water Resources Research, 30(5), 1515–1527.
Liang, T. G., Zhang, X. T., Xie, H. J., Wu, C. X., Feng, Q. S., Huang, X. D., and Chen, Q. G.
(2008). Toward improved daily snow cover mapping with advanced combination of
MODIS and AMSR-E measurements. Remote Sensing of Environment, 112, 3750–3761.
Luce, C. H. and Tarboton, D. G. (2004). The application of depletion curves for parameterization of subgrid variability of snow. Hydrological Processes, 18, 1409–1422.
Luce, C. H., Tarboton, D. G., and Cooley, K. R. (1999). Subgrid parameterization of snow
distribution for an energy and mass balance snow cover model. Hydrological Processes,
13, 1921–1933.
Marks, D., Domingo, J., Susong, D., Link, T., and Garen, D. (1999). A spatially distributed
energy balance snowmelt model for application in mountain basins. Hydrological
Processes, 13, 1935–1959.
Martinec, J. and Rango, A. (1986). Parameter values for snowmelt runoff modeling. Journal
of Hydrology, 84, 197–219.
Martinec, J. and Rango, A. (1989). Effects of climate change on snowmelt runoff patterns,
in Remote Sensing and Large Scale Global Processes (Proc. Baltimore Symp.), IAHS
Publication No. 186, 31–38.
Martinec, J., Rango, A., and Roberts, R. (2005). SRM Snowmelt Runoff Model, User’s Manual
(Updated edition for Windows, WinSRM Version 1.10). USDA Jornada Experimental
Range, New Mexico State University, Las Cruces, NM 88003, USA.
Martinec, J., Rango, A., and Roberts, R. (2008). SRM Snowmelt Runoff Model, User’s Manual,
175 pp. New Mexico State University, Las Cruces, NM.
