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Abstract
Growing season CH
4 fluxes were monitored over a two year period following the start of ecosystem-scale manipulations of water table position and surface soil temperatures in a moderate rich fen in interior Alaska. The largest CH
4 fluxes occurred in plots that received both flooding (raised water table position) and soil warming, while the lowest fluxes occurred in unwarmed plots in the lowered water table treatment. A combination of treatment and soil hydroclimate variables explained more than 70% of the variation in Intransformed CH
4 fluxes, with mean daily water table position representing the strongest predictor. Our results show that water table manipulations that led to soil inundation (flooding) had a stronger effect on CH
4 fluxes than water table drawdown. Seasonal CH
4 fluxes increased by 80-300% under the combined wetter and warmer soil climate treatments. Thus, while warming is expected to increase CH
4 emissions from Alaskan wetlands, higher water table positions caused by increases in precipitation or disturbances such as permafrost thaw that lead to thermokarst and flooding in wetlands will stimulate CH
4 emissions beyond the effects of soil warming alone. Consequently, we argue that modeling the effects of climate change on Alaskan wetland CH
4 emissions needs to consider the interactive effects of soil warming and water table position on CH
4 production and transport.
Citation
Turetsky, M.R.; Treat, C.C.; Waldrop, M.; Waddington, J.M.; Harden, J.W.; McGuire, A.D. 2008. Short-term response of methane fluxes and methanogen activity to water table and soil warming manipulations in an Alaskan peatland. Journal of Geophysical Research. 113: G00A10.