HR: 1340h
AN: B43B-1174 [Abstracts]
TI: Mineralization of Soil Organic Matter in Two Elevated CO2 by Warming Experiments in Grassland
AU: * Pendall, E
EM: pendall@uwyo.edu
AF: University of Wyoming, 1000 E University Ave, Laramie, WY 82071, United States
AU: Hovenden, M
EM: mark.hovenden@utas.edu.au
AF: University of Tasmania, Privage Bag 55, Hobart, Tas 7001, Australia
AU: Williams, A
EM: awilliams@utas.edu.au
AF: University of Tasmania, Privage Bag 55, Hobart, Tas 7001, Australia
AU: Dijkstra, F A
EM: feike.dijkstra@ars.usda.gov
AF: Agricultural Research Service, 1701 Centre Ave., Fort Collins, CO 80526, United States
AU: Morgan, J A
EM: jack.morgan@ars.usda.gov
AF: Agricultural Research Service, 1701 Centre Ave., Fort Collins, CO 80526, United States
AB:
Experimentally elevated atmospheric CO2 has enhanced carbon (C) allocation belowground, while ecosystem
warming has led to losses of soil C due to enhanced mineralization of soil organic matter (SOM). Few
investigations of possible interactions between elevated CO2 and temperature have been reported, but the
potential for C cycling effects not to be simply additive is high. We have taken advantage of two multi-factor global
change experiments being conducted in mixed C3/C4 grasslands to evaluate similarities and differences in
responses of SOM mineralization rates. The TasFACE experiment in Tasmania, Australia, has been running for
over 5 years, while the Prairie Heating and CO2 Enrichment (PHACE) experiment in Wyoming, USA, has been
running for less than 2 years. Both experiments employ mini-FACE systems (enriched plots targeted at 550 at
TasFACE and 600 ppm at PHACE) and overhead ceramic infrared emitters (heated plots targeted at +2 degrees
C at TasFACE and +1.5/+3 degrees day/night at PHACE). Soil samples collected after 5 years at TasFACE and at
the beginning of the second year at PHACE were incubated for three weeks to evaluate changes in labile SOM
pool sizes and turnover rates. We hypothesized that elevated CO2 would enhance labile SOM pool size and that
warming would reduce it, and that warming would stimulate decomposition rate. Preliminary results suggested
that five years of warming enhanced decomposition rate in the TasFACE soils, but only under the C4 grass
species, whereas the first two months of warming had no effects on decomposition rate at PHACE. Elevated CO2
increased mineralizable C pool sizes by 10 to 30 percent, depending on depth, in the TasFACE soils, but did not
significantly alter C cycling in the PHACE soils. Short experimental duration likely explained the lack of treatment
effects seen at PHACE. We plan to continue conducting parallel experiments to track temporal changes in C
cycling with the expectation that interactive effects of elevated CO2 and warming may appear over the long term.
DE: 0428 Carbon cycling (4806)
DE: 0439 Ecosystems, structure and dynamics (4815)
DE: 0486 Soils/pedology (1865)
DE: 1615 Biogeochemical cycles, processes, and modeling (0412, 0414, 0793, 4805, 4912)
SC: Biogeosciences [B]
MN: 2007 Fall Meeting