Simulating carbon stocks and fluxes of an African tropical montane forest with an individual-based forest model.

Tropical forests are carbon-dense and highly productive ecosystems. Consequently, they play an important role in the global carbon cycle. In the present study we used an individual-based forest model (FORMIND) to analyze the carbon balances of a tropical forest. The main processes of this model are...

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Main Authors: Rico Fischer, Andreas Ensslin, Gemma Rutten, Markus Fischer, David Schellenberger Costa, Michael Kleyer, Andreas Hemp, Sebastian Paulick, Andreas Huth
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4410999?pdf=render
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author Rico Fischer
Andreas Ensslin
Gemma Rutten
Markus Fischer
David Schellenberger Costa
Michael Kleyer
Andreas Hemp
Sebastian Paulick
Andreas Huth
author_facet Rico Fischer
Andreas Ensslin
Gemma Rutten
Markus Fischer
David Schellenberger Costa
Michael Kleyer
Andreas Hemp
Sebastian Paulick
Andreas Huth
author_sort Rico Fischer
collection DOAJ
description Tropical forests are carbon-dense and highly productive ecosystems. Consequently, they play an important role in the global carbon cycle. In the present study we used an individual-based forest model (FORMIND) to analyze the carbon balances of a tropical forest. The main processes of this model are tree growth, mortality, regeneration, and competition. Model parameters were calibrated using forest inventory data from a tropical forest at Mt. Kilimanjaro. The simulation results showed that the model successfully reproduces important characteristics of tropical forests (aboveground biomass, stem size distribution and leaf area index). The estimated aboveground biomass (385 t/ha) is comparable to biomass values in the Amazon and other tropical forests in Africa. The simulated forest reveals a gross primary production of 24 tcha(-1) yr(-1). Modeling above- and belowground carbon stocks, we analyzed the carbon balance of the investigated tropical forest. The simulated carbon balance of this old-growth forest is zero on average. This study provides an example of how forest models can be used in combination with forest inventory data to investigate forest structure and local carbon balances.
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spelling doaj.art-a171b45820a1486ca78bf407f29ebc492022-12-21T23:44:31ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01104e012330010.1371/journal.pone.0123300Simulating carbon stocks and fluxes of an African tropical montane forest with an individual-based forest model.Rico FischerAndreas EnsslinGemma RuttenMarkus FischerDavid Schellenberger CostaMichael KleyerAndreas HempSebastian PaulickAndreas HuthTropical forests are carbon-dense and highly productive ecosystems. Consequently, they play an important role in the global carbon cycle. In the present study we used an individual-based forest model (FORMIND) to analyze the carbon balances of a tropical forest. The main processes of this model are tree growth, mortality, regeneration, and competition. Model parameters were calibrated using forest inventory data from a tropical forest at Mt. Kilimanjaro. The simulation results showed that the model successfully reproduces important characteristics of tropical forests (aboveground biomass, stem size distribution and leaf area index). The estimated aboveground biomass (385 t/ha) is comparable to biomass values in the Amazon and other tropical forests in Africa. The simulated forest reveals a gross primary production of 24 tcha(-1) yr(-1). Modeling above- and belowground carbon stocks, we analyzed the carbon balance of the investigated tropical forest. The simulated carbon balance of this old-growth forest is zero on average. This study provides an example of how forest models can be used in combination with forest inventory data to investigate forest structure and local carbon balances.http://europepmc.org/articles/PMC4410999?pdf=render
spellingShingle Rico Fischer
Andreas Ensslin
Gemma Rutten
Markus Fischer
David Schellenberger Costa
Michael Kleyer
Andreas Hemp
Sebastian Paulick
Andreas Huth
Simulating carbon stocks and fluxes of an African tropical montane forest with an individual-based forest model.
PLoS ONE
title Simulating carbon stocks and fluxes of an African tropical montane forest with an individual-based forest model.
title_full Simulating carbon stocks and fluxes of an African tropical montane forest with an individual-based forest model.
title_fullStr Simulating carbon stocks and fluxes of an African tropical montane forest with an individual-based forest model.
title_full_unstemmed Simulating carbon stocks and fluxes of an African tropical montane forest with an individual-based forest model.
title_short Simulating carbon stocks and fluxes of an African tropical montane forest with an individual-based forest model.
title_sort simulating carbon stocks and fluxes of an african tropical montane forest with an individual based forest model
url http://europepmc.org/articles/PMC4410999?pdf=render
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