HR: 0800h
AN: C31A-1122 [Abstracts]
TI: Means and Trends of Seasonally Frozen Ground Thickness in the Northern Hemisphere
AU: McCreight, J
EM: mccreigh@nsidc.org
AF: University of Colorado at Boulder, NSIDC/CIRES, 449 UCB, Boulder, CO 80309-0449
United States
AU: * Zhang, T
EM: tzhang@nsidc.org
AF: University of Colorado at Boulder, NSIDC/CIRES, 449 UCB, Boulder, CO 80309-0449
United States
AU: Frauenfeld, O W
EM: oliverf@nsidc.org
AF: University of Colorado at Boulder, NSIDC/CIRES, 449 UCB, Boulder, CO 80309-0449
United States
AU: Etringer, A
EM: etringer@nsidc.org
AF: University of Colorado at Boulder, NSIDC/CIRES, 449 UCB, Boulder, CO 80309-0449
United States
AU: Barry, R G
EM: rbarry@nsidc.org
AF: University of Colorado at Boulder, NSIDC/CIRES, 449 UCB, Boulder, CO 80309-0449
United States
AU: Gilichinsky, D
EM: gilichin@online.stack.net
AF: Russian Academy of Sciences, Institute for Physiochemical and Biological Problems in Soil Science,
Pushchino, 142290
Russian Federation
AB:
Seasonal freezing and thawing processes of soils have a great impact on surface energy balance, hydrological cycle, carbon
exchange, and serious natural hazard at middle and high latitudes. In this study, we will investigate spatial and temporal
variability of seasonally frozen ground thickness from 1950 through 2000 in the northern hemisphere. Seasonally frozen ground
thickness is estimated by a simplified Stefan solution using the "edaphic factor" and the annual freezing and thawing index
of air temperature. Over the permafrost regions, the "edaphic factor" is determined using ground-based active layer thickness
from 31 stations from 1950s through 1990 in the Russian Arctic, 103 CALM stations since the early 1990s, and six stations
over the Tibetan Plateau from 1996 through 2002. Over the non-permafrost regions, the "edaphic factor" is determined based on
ground-based measurements of seasonally frozen ground depth from 350 stations in Russia, 150 stations in China, 40 stations
in Mongolia, and 30 stations from the United States. Annual freezing and thawing index were calculated from gridded monthly
mean air temperature. After comparing with annual freezing and thawing index obtained using daily air temperature, errors of
annual freezing and thawing index obtained from mean monthly air temperature are relatively small. We will present
climatology, standard deviation, and trends of the "edaphic factor", annual freezing and thawing index, and seasonally frozen
ground thickness in the northern hemisphere using all available data. Seasonally frozen ground thickness obtained from this
study will also be compared with ground-based measurements and modeling outputs.
DE: 0702 Permafrost (0475)
DE: 0704 Seasonally frozen ground
DE: 0706 Active layer
DE: 1823 Frozen ground
DE: 1836 Hydrological cycles and budgets (1218, 1655)
SC: Cryosphere [C]
MN: Fall Meeting 2005