HR: 0800h
AN: C21B-0444 [Abstracts]
TI: Predicting Soil Frost and its Response to Climate Change in Northeastern U.S. Forests
AU: * Wicklein, H F
EM: wicklha@earlham.edu
AF: Earlham College, 801 National Rd West, Richmond, IN 47374, United States
AU: Ollinger, S V
AF: Institute for the Study of Earth, Oceans, and Space, University of new Hampshire
39 College Rd, Durham, NH 03824, United States
AU: Campbell, J
AF: USDA Forest Service, 271 Mast Rd, Durham, NH 03824, United States
AU: Frolking, S
AF: Institute for the Study of Earth, Oceans, and Space, University of new Hampshire
39 College Rd, Durham, NH 03824, United States
AB:
Depth and duration of seasonal snow cover has important effects on temperate forest ecosystems. In the
northeastern U.S., recent predictions are that climate warming over the coming century will cause an increase in
soil freezing as soils lose the insulation of continuous wintertime snow cover. These studies have also linked
soil freezing to elevated nitrate export from soils and streams. In the present study, we used a physically based
energy and water exchange model, SHAW (Simultaneous Heat and Water), to predict soil frost and snowpack
dynamics at three forested sites in New England: Hubbard Brook (NH), Harvard Forest (MA), and Howland Forest
(ME). Results indicate an inverse relationship across all three sites between the depth and duration of the
snowpack and soil frost. Simulations were conducted for all three sites with historical weather data for the past
20-40 years, and for future projections (2000-2100) using two different IPCC climate scenarios (A1fi and BI)
derived from statistically downscaled GCM simulations. Under both scenarios and at all three sites, SHAW
predicted that both the amount of soil frost and the number of extreme soil freezing events will decrease during
the 2000-2100 period. In addition, there was no relationship between predicted soil frost, 1966-2000, and
observed stream nitrate concentration at Hubbard Brook. These results run counter to existing theories regarding
both the impacts of soil frost and the changes that are expected to occur into the future. There was, however, a
positive correlation between predicted soil frost and growing season CO2 uptake at Harvard Forest over the
1992-2002 period. This suggests that soil freezing does play an important role in forest biogeochemistry, albeit a
different role than that which has been discussed in the literature.
DE: 0414 Biogeochemical cycles, processes, and modeling (0412, 0793, 1615, 4805, 4912)
DE: 0704 Seasonally frozen ground
DE: 1600 GLOBAL CHANGE
SC: Cryosphere [C]
MN: 2007 Fall Meeting