HR: 14:55h
AN: GC43B-05 [Abstracts]
TI: Spatial covariance of water isotope records in a global network of ice cores spanning 20th- Century climate change
AU: * Schneider, D P
EM: dschneid@ucar.edu
AF: National Center for Atmospheric Research, PO BOX 3000, Boulder, CO 80307, United
States
AU: Noone, D C
EM: dcn@colorado.edu
AF: CIRES, University of Colorado, 216 UCB, Boulder, CO 80309,
AB:
Estimating the spatial extent of past climate changes has been an ongoing challenge for paleoclimatology. For
such estimates to be made with confidence, it is important to establish an understanding of the spatial
coherence of proxy records during an interval of known climate change. We use water stable isotopes from high-
resolution ice cores and 20th-Century observations of sea-level pressures and sea surface temperatures to
assess the covariance among isotopic records and its link to organized patterns of climate variability. Covarying
signals in the cores are identified using empirical orthogonal function analysis. Results from regression analysis
show that the leading signals are consistent with key climate patterns including the Northern Atlantic Oscillation
and Southern Annular Mode, and variability in tropical Pacific sea surface temperatures associated with the El
Nino-Southern Oscillation. Patterns that have recently been identified in instrumental data, such as positive
tropical Pacific SST anomalies associated with the negative phase of the SAM, are evident in the ice cores. These
explanations for the variance of stable isotopes are consistent with recent studies using isotope-enabled
general circulation models, and provide a physical basis for interpreting the observed isotopic signals. While
there is also a global change signal that is evident when analyzing the records collectively, there are some
limitations in reconstructing global temperatures due to the geographic coverage of the available records and the
current lack of modeling studies to explain the observed global-scale changes. Still, water stable isotope ratios
preserved in ice cores provide a sufficiently rich sampling of large-scale climate variability that they can be more
widely used in physically-based paleoclimate reconstructions covering the last millennium and other periods.
DE: 1620 Climate dynamics (0429, 3309)
SC: Global Environmental Change [GC]
MN: 2007 Fall Meeting