HR: 11:55h
AN: H52B-07 INVITED [Abstracts]
TI: Interplay between physical movements of soils and mineral grains and chemical weathering
AU: * Yoo, K
EM: kyoo@udel.edu
AF: University of Delaware
Plant and Soil Sciences Department, 531 S. College Av.
152 Townsend Hall, Newark, DE 19716-2170, United States
AB:
Most soil biogeochemistry studies treat the soils and their inorganic and organic constituents as physically
immobile. Those soil materials, however, are in perpetual motion due to the conversion of bedrock to soils,
colluvial transport, and vertical mixing by various biophysical perturbations of the soils. Subsequently, a soil is
continuously replaced by the materials from the neighboring soils and the underlying parent material, while its
individual horizons are gradually mixed with the materials in the neighboring horizons. The movements of bulk
soil materials are ultimately driven by moving individual mineral grains. While rarely appreciated, these physical
movements of soil's mineral components operate in the presence of strong vertical and topographic gradients of
the rates of mineral dissolution and leaching. The result is that the physical movement of soil constituents affects
chemical weathering. The fluxes of soil materials (via physical movements and solute fluxes) in and out of a soil
system defined by a researcher determine the time length that the materials reside in the system. The residence
time, together with the system-specific rates of chemical weathering, determine the degree of weathering of the
materials within the system. This presentation provides a new mathematical framework to consistently quantify
the residence times of minerals, individual soil horizons, soil profiles, and an entire soil within a watershed
boundary. Soil age, which is equivalent of the time length since the cessation of erosion or deposition on level
grounds, becomes a special case of the residence time. The model is combined with empirical data to
quantitatively illustrate the impacts that the physical motion of soil constituents have on the rates of chemical
weathering. The data are drawn from ongoing field and laboratory studies focusing on the impact of river incision,
colluvial flux, bioturbation, and agricultural tillage on the vertical and lateral variation of elemental composition
within the soils.
DE: 0330 Geochemical cycles (1030)
DE: 0414 Biogeochemical cycles, processes, and modeling (0412, 0793, 1615, 4805, 4912)
DE: 0486 Soils/pedology (1865)
DE: 1826 Geomorphology: hillslope (1625)
DE: 1886 Weathering (0790, 1625)
SC: Hydrology [H]
MN: 2007 Fall Meeting