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GLOBAL BIOGEOCHEMICAL CYCLES,
VOL. 17, NO. 2,
1051,
doi:10.1029/2002GB001958,
2003
Connecting methane fluxes to vegetation cover and water table fluctuations at microsite level: A modeling study
Anu Kettunen
Peatland Ecology and Forestry, Department of Forest Ecology, Helsinki University, Helsinki, Finland
Abstract
The paper presents a process-based model describing methane flux dynamics in different microsites of boreal peatlands. The
simulated fluxes matched well to measurements in all microsites without any parameter adjustment. The model emphasizes the
importance of microsite characteristics, water table and vegetation cover for methane fluxes. Water level determines the moisture
and oxygen profile in peat matrix and therefore affects methane production and oxidation rates in peat profile. Vascular plants
provide methanogenesis with substrates, form a pathway for methane to liberate from peat to the atmosphere and enhance methane
oxidation by transporting oxygen to water saturated peat. The model connects methane fluxes to the seasonal photosynthetic
cycle of plants at the microsite level and hence dynamically combines the microbial processes in peat to changing environmental
factors in the level of peatland ecosystem. Sensitivity analysis of the model reveals the importance of substrate supply to
methane fluxes. In addition, the capability of the vascular plants to transport oxygen downwards has a large effect on model
outcome. Lack of oxygen and methane keep methane oxidation at a low level in the model simulations, and changes that compensate
for these lacks have a remarkable decreasing effect on simulated flux. Dry periods decrease the simulated methane flux considerably,
especially if the drought prevails long, threshold for a dramatic decrease lying between 4 and 6 weeks of drought. Increase
in air temperature enhances methane flux, especially if the effect of increased temperature on gross primary production is
taken into account.
Received 7
July
2002;
accepted 18
December
2002;
published 21
May
2003.
Index Terms: 0315 Atmospheric Composition and Structure: Biosphere/atmosphere interactions; 1615 Global Change: Biogeochemical processes (4805); 4806 Oceanography: Biological and Chemical: Carbon cycling; 4842 Oceanography: Biological and Chemical: Modeling.
Read Full Article (file size: 2593754 bytes) Cited by
Citation: Kettunen, A.
(2003),
Connecting methane fluxes to vegetation cover and water table fluctuations at microsite level: A modeling study,
Global Biogeochem. Cycles,
17(2),
1051,
doi:10.1029/2002GB001958.
Copyright 2003 by the American Geophysical Union.
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