HR: 08:00h
AN: B31A-01    [PDF]
TI: Effects of Introduced Grasses, Grazing and Fire on Regional Biogeochemistry in Hawaii
AU: * Elmore, A J
EM: andrew@elmore.cc
AF: Carnegie Institution of Washington, 260 Panama St., Stanford, CA 94305 United States
AU: Asner, G P
EM: gasner@globalecology.stanford.edu
AF: Carnegie Institution of Washington, 260 Panama St., Stanford, CA 94305 United States
AB: African grasses introduced for grazing have expanded in geographic extent in mesic tropical systems of Hawaii and other regions of the world. Grassland expansion leads to increases in fire frequency, speeding woodland and forest destruction at greater geographic scales than occurs with grazing alone. At Pu'uwa'awa'a Ranch, Hawaii, restoration of the native woodland habitat has become a critical objective following the introduction and dominance of the African grass species {\it Pennisetum clandestinum} and {\it P. setaceum}. Grazing and grass-fueled fires have destroyed over 60% of the original forest. To stabilize these communities, managers must balance the combined effects of grazing and fire. Grazing reduces the recruitment success of native tropical trees, but grazing also reduces fire risk by moderating grass fuel conditions and restricting the extent and density of the most flammable grass species. Our study focuses on two questions: (1) What grazing intensity is necessary to change the fire conditions of a region given in situ soil and precipitation conditions? (2) Have long-term grazing conditions altered soil carbon and nitrogen stocks? We used high resolution imaging spectrometer data to measure photosynthetic and non-photosynthetic vegetation cover, analysis of soil carbon and nitrogen stocks, and measurements of plant community composition along gradients in grazing intensity. {\it P. setaceum}, the more flammable alien grass, was dominant where grazing intensity was low and at lower elevations where precipitation is low. The less flammable grass, {\it P. clandestinum}, occurred in regions of high grazing intensity and higher precipitation. Grazing influenced the dominance of {\it P. setaceum} and {\it P. clandestinum} only where precipitation and soil characteristics were suitable for both grasses to occur. At suitable sites, grazing reduced fire conditions through a species sift towards {\it P. clandestinum}. Soil carbon and nitrogen stocks decreased with grazing intensity, which was correlated with the fractional cover of {\it P. setaceum}. Soil carbon also increased with precipitation. These results show how grazing impacts fire conditions and soil chemistry through changes in species composition, and not through removal of carbon inputs (direct removal of biomass).
DE: 0933 Remote sensing
DE: 1615 Biogeochemical processes (4805)
DE: 4815 Ecosystems, structure and dynamics
SC: Biogeosciences [B]
MN: 2003 Fall Meeting