HR: 0800h
AN: GC51D-1093 [Abstracts]
TI: Evidence for a Direct Link Between Solar Variability and Holocene Climate in the Southwest
USA
AU: * Asmerom, Y
EM: asmerom@unm.edu
AF: Dept. of Earth and Planetary Sciences, University of New Mexico
, Albuquerque, NM 87131
United States
AU: Polyak, V
EM: polyak@unm.edu
AF: Dept. of Earth and Planetary Sciences, University of New Mexico
, Albuquerque, NM 87131
United States
AU: Burns, S
EM: sburns@geo.umass.edu
AF: Department of Geosciences, University of Massachusetts, Amherst, MA 01003
United States
AU: Rasmussen, J
EM: jbtoledo@unm.edu
AF: Dept. of Earth and Planetary Sciences, University of New Mexico
, Albuquerque, NM 87131
United States
AB:
We obtained high-resolution ($<$20 yr sample interval) O and C isotopic data for the past 12,000 years from a well-dated
speleothem with continuous growth from the Guadalupe Mountains, New Mexico. The $\delta$$^{18}$O and $\delta$$^{13}$C data
show significant variability (-5.81 to -2.66 and 0.35 to -5.26, respectively). At short time scales variations in
$\delta$$^{18}$O and $\delta$$^{13}$C are incoherent, while large shifts in both isotopic values are fairly coherent over the
period of interest. It is unlikely that changes in $\delta$$^{18}$O and $\delta$$^{13}$C values are driven by kinetic
fractionation. Large shifts in $\delta$$^{18}$O and $\delta$$^{13}$C values coincide with changes in other climate proxies
such as tree ring data (although these data cover a short period) and speleothem gray scale data. Summer moisture is
primarily derived from the Gulf of Mexico, while isotopically lighter Pacific moisture dominates winter precipitation. Stable
isotope variations in our speleothem likely reflect variability in the amount of precipitation and/or balance in moisture
source. The most salient feature of our stable isotopic data, and especially the $\delta$$^{18}$O data, is that shifts in
isotopic values at centennial time-scales strongly coincide with shifts in the $\Delta$$^{14}$C values. Variations in
$\Delta$$^{14}$C values are thought to reflect changes in solar activity and intensity. Residuals of the detrended
$\delta$$^{18}$O and $\Delta$$^{14}$C values are negatively correlated. The excellent visual match is supported by
preliminary results from cross correlation and spectral analyses. The strong coherence between the stable isotope data and
the $\Delta$$^{14}$C data suggests solar forcing may play a role in continental climate variability at centennial to
millennial time scales. The forcing may not be necessarily direct however, given the inferred magnitudes in solar
variability over the past 12,000 years are not large.
DE: 3344 Paleoclimatology
DE: 3309 Climatology (1620)
DE: 1620 Climate dynamics (3309)
SC: Global Climate Change [GC]
MN: 2004 AGU Fall Meeting