Modeling micro-topographic controls on boreal peatland hydrology and methane fluxes
Small-scale surface heterogeneities can influence land-atmosphere fluxes and therefore carbon, water and energy budgets on a larger scale. This effect is of particular relevance for high-latitude ecosystems, because of the great amount of carbon stored in their soils. We introduce a novel micro-topo...
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doaj-8359b8a50b6743baa171c17623480aa42020-11-24T20:42:51ZengCopernicus PublicationsBiogeosciences1726-41701726-41892015-10-0112195689570410.5194/bg-12-5689-2015Modeling micro-topographic controls on boreal peatland hydrology and methane fluxesF. Cresto Aleina0B. R. K. Runkle1T. Kleinen2L. Kutzbach3J. Schneider4V. Brovkin5Max Planck Institute for Meteorology, Hamburg, GermanyInstitute of Soil Science, Center for Earth System Research and Sustainability, Universität Hamburg, Hamburg, GermanyMax Planck Institute for Meteorology, Hamburg, GermanyInstitute of Soil Science, Center for Earth System Research and Sustainability, Universität Hamburg, Hamburg, GermanyInstitute for Environmental Sciences, University of Koblenz-Landau, Landau in der Pfalz, GermanyMax Planck Institute for Meteorology, Hamburg, GermanySmall-scale surface heterogeneities can influence land-atmosphere fluxes and therefore carbon, water and energy budgets on a larger scale. This effect is of particular relevance for high-latitude ecosystems, because of the great amount of carbon stored in their soils. We introduce a novel micro-topographic model, the Hummock-Hollow (HH) model, which explicitly represents small-scale surface elevation changes. By computing the water table at the small scale, and by coupling the model with a process-based model for soil methane processes, we are able to model the effects of micro-topography on hydrology and methane emissions in a typical boreal peatland. In order to assess the effect of micro-topography on water the balance and methane emissions of the peatland we compare two versions of the model, one with a representation of micro-topography and a classical single-bucket model version, and show that the temporal variability in the model version with micro-topography performs better if compared with local data. Accounting for micro-topography almost triples the cumulative methane flux over the simulated time-slice. We found that the single-bucket model underestimates methane emissions because of its poor performance in representing hydrological dynamics. The HH model with micro-topography captures the spatial dynamics of water and methane fluxes, being able to identify the hotspots for methane emissions. The model also identifies a critical scale (0.01 km<sup>2</sup>) which marks the minimal resolution for the explicit representation of micro-topography in larger-scale models.http://www.biogeosciences.net/12/5689/2015/bg-12-5689-2015.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
F. Cresto Aleina B. R. K. Runkle T. Kleinen L. Kutzbach J. Schneider V. Brovkin |
spellingShingle |
F. Cresto Aleina B. R. K. Runkle T. Kleinen L. Kutzbach J. Schneider V. Brovkin Modeling micro-topographic controls on boreal peatland hydrology and methane fluxes Biogeosciences |
author_facet |
F. Cresto Aleina B. R. K. Runkle T. Kleinen L. Kutzbach J. Schneider V. Brovkin |
author_sort |
F. Cresto Aleina |
title |
Modeling micro-topographic controls on boreal peatland hydrology and methane fluxes |
title_short |
Modeling micro-topographic controls on boreal peatland hydrology and methane fluxes |
title_full |
Modeling micro-topographic controls on boreal peatland hydrology and methane fluxes |
title_fullStr |
Modeling micro-topographic controls on boreal peatland hydrology and methane fluxes |
title_full_unstemmed |
Modeling micro-topographic controls on boreal peatland hydrology and methane fluxes |
title_sort |
modeling micro-topographic controls on boreal peatland hydrology and methane fluxes |
publisher |
Copernicus Publications |
series |
Biogeosciences |
issn |
1726-4170 1726-4189 |
publishDate |
2015-10-01 |
description |
Small-scale surface heterogeneities can influence land-atmosphere fluxes and
therefore carbon, water and energy budgets on a larger scale. This effect is
of particular relevance for high-latitude ecosystems, because of the great
amount of carbon stored in their soils. We introduce a novel
micro-topographic model, the Hummock-Hollow (HH) model, which explicitly
represents small-scale surface elevation changes. By computing the water
table at the small scale, and by coupling the model with a process-based
model for soil methane processes, we are able to model the effects of
micro-topography on hydrology and methane emissions in a typical boreal
peatland. In order to assess the effect of micro-topography on water the
balance and methane emissions of the peatland we compare two versions of the
model, one with a representation of micro-topography and a classical
single-bucket model version, and show that the temporal variability in the
model version with micro-topography performs better if compared with local
data. Accounting for micro-topography almost triples the cumulative methane
flux over the simulated time-slice. We found that the single-bucket model
underestimates methane emissions because of its poor performance in
representing hydrological dynamics. The HH model with micro-topography
captures the spatial dynamics of water and methane fluxes, being able to
identify the hotspots for methane emissions. The model also identifies a
critical scale (0.01 km<sup>2</sup>) which marks the minimal resolution for the
explicit representation of micro-topography in larger-scale models. |
url |
http://www.biogeosciences.net/12/5689/2015/bg-12-5689-2015.pdf |
work_keys_str_mv |
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1716821494765453312 |