Comparing an exponential respiration model to alternative models for soil respiration components in a Canadian wildfire chronosequence (FireResp v1.0)
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Published:2021-10-29
Issue:10
Volume:14
Page:6605-6622
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ISSN:1991-9603
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Container-title:Geoscientific Model Development
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language:en
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Short-container-title:Geosci. Model Dev.
Author:
Zobitz JohnORCID, Aaltonen Heidi, Zhou Xuan, Berninger Frank, Pumpanen JukkaORCID, Köster KajarORCID
Abstract
Abstract. Forest fires modify soil organic carbon and suppress soil respiration
for many decades after the initial disturbance. The associated changes
in soil autotrophic and heterotrophic respiration from the time of the
forest fire, however, are less well characterized. The FireResp model
predicts soil autotrophic and heterotrophic respiration parameterized
with a novel dataset across a fire chronosequence in the Yukon and
Northwest Territories of Canada. The dataset consisted of soil
incubation experiments and field measurements of soil respiration and
soil carbon stocks. The FireResp model contains submodels that consider
a Q10 (exponential) model of respiration compared to models of
heterotrophic respiration using Michaelis–Menten kinetics parameterized
with soil microbial carbon. For model evaluation we applied the Akaike
information criterion and compared predicted patterns in components of
soil respiration across the chronosequence. Parameters estimated with
data from the 5 cm soil depth had better model–data comparisons than
parameters estimated with data from the 10 cm soil depth. The model–data
fit was improved by including parameters estimated from soil incubation
experiments. Models that incorporated microbial carbon with
Michaelis–Menten kinetics reproduced patterns in autotrophic and
heterotrophic soil respiration components across the chronosequence.
Autotrophic respiration was associated with aboveground tree biomass at
more recently burned sites, but this association was less robust at
older sites in the chronosequence. Our results provide support for more
structured soil respiration models than standard Q10 exponential
models.
Funder
Academy of Finland Horizon 2020 Framework Programme
Publisher
Copernicus GmbH
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