HR: 08:00h
AN: H51K-01 [Abstracts]
TI: Developing Methods to Test the Influence of Critical Zone Development on Watershed Hydrology and Biogeochemistry
AU: * Anderson, S P
EM: suzanne.anderson@colorado.edu
AF: University of Colorado, INSTAAR, UCB-450, Boulder, CO 80309, United States
AU: Blum, A E
EM: aeblum@usgs.gov
AF: U.S. Geological Survey, 3215 Marine St., Boulder, CO 80303, United States
AU: Dethier, D P
EM: David.P.Dethier@williams.edu
AF: Williams College, Geosciences, Williamstown, MA 01267, United States
AU: Murphy, S F
EM: sfmurphy@usgs.gov
AF: U.S. Geological Survey, 3215 Marine St., Boulder, CO 80303, United States
AU: Williams, M W
EM: markw@culter.colorado.edu
AF: University of Colorado, INSTAAR, UCB-450, Boulder, CO 80309, United States
AU: McKnight, D
EM: Diane.McKnight@Colorado.EDU
AF: University of Colorado, INSTAAR, UCB-450, Boulder, CO 80309, United States
AU: Fierer, N
EM: fierer@cires.colorado.edu
AF: University of Colorado, CIRES, UCB-216, Boulder, CO 80309, United States
AU: Tucker, G
EM: gtucker@cires.colorado.edu
AF: University of Colorado, CIRES, UCB-216, Boulder, CO 80309, United States
AU: Wobus, C
EM: cameron.wobus@Colorado.EDU
AF: University of Colorado, CIRES, UCB-216, Boulder, CO 80309, United States
AU: Anderson, R S
EM: robert.s.anderson@Colorado.EDU
AF: University of Colorado, INSTAAR, UCB-450, Boulder, CO 80309, United States
AU: Caine, N
EM: cainen@Colorado.EDU
AF: University of Colorado, INSTAAR, UCB-450, Boulder, CO 80309, United States
AU: Loague, K
EM: kloague@stanford.edu
AF: Stanford University, Geological & Environmental Sciences, Stanford, CA 94305, United
States
AU: Leopold, M
EM: matthias.leopold@geographie.uni-regensburg.de
AF: University of Regensburg, Institute for Geography, Regensburg, D-93040, Germany
AU: Voelkel, J
EM: jvoelkel@wzw.tum.de
AF: Technische Universitaet Muenchen, Geomorphology and Soil Science, Freising-
Weihensteph, D-85350, Germany
AU: Sheehan, A
EM: afs@cires.colorado.edu
AF: University of Colorado, CIRES, UCB-216, Boulder, CO 80309, United States
AB:
The Boulder Creek Critical Zone Observatory in the Front Range of Colorado, USA, is designed to study the
development and function of the near-surface weathered profile. The critical zone is the interface between
bedrock and the atmosphere, where water and terrestrial ecosystems drive chemical transformations, and where
weathering and erosion transform landscapes and shape the critical zone itself. In Boulder Creek catchment,
erosion rates and processes vary dramatically over the 2600 m elevation range from the Colorado piedmont to
the headwaters at the continental divide. The topographic, climatic, erosional and ecologic variations result in a
critical zone that ranges from thin, fracture-dominated, weathered profiles truncated by glacial erosion to slowly
eroding, deeply weathered mantles. Quantifying these variations in critical zone development, and understanding
how erosion and weathering processes produce these variations, are primary goals of the Boulder Creek CZO.
Against this backdrop, we will use hydrochemistry to examine how critical zone development influences fluxes of
water, solutes, and nutrients to streams.
We expect that reaction progress will be low in glacially truncated critical zone profiles in the headwaters, since
water residence times are expected to be low in the thin fracture-dominated weathered zone. In contrast, we
expect deeply weathered profiles on post-Laramide low-relief surfaces to yield long residence time water that
approaches saturation with respect to minerals present. Dissolved organic matter (DOM) will likely show the
most evidence of microbial processing in the deeply weathered profiles. We will use a suite of tools to test these
expectations. Water will be collected from streams, wells and soil water samplers arrayed in three
subcatchments. Our headwater site is coincident with the Niwot Ridge LTER high elevation site and will be
managed jointly. In the case of dry regolith, we will use laboratory soil water extracts to test compositions of
subsurface water. Major element concentrations in these waters will be analyzed with respect to mineral suites
present as determined from quantitative XRD. The Proterozoic age of the crystalline parent rocks in this area
should make strontium isotopes a useful tool in deconvolving mineral weathering sources. DOM sources will be
identified with fluorescence spectroscopy. Isotopic sampling and hydrologic simulation will constrain water
residence times within our study subcatchments. Rates of processes will be constrained by elemental and
mineral budgets for individual soil profiles, and by solid and solution fluxes at the watershed scale. Through
standardized sampling within three subcatchments, we hope to identify how critical zone development- the size
and state of the reactor- affects the fluxes out of the critical zone.
DE: 1625 Geomorphology and weathering (0790, 1824, 1825, 1826, 1886)
SC: Hydrology [H]
MN: 2007 Fall Meeting