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  Models in country scale carbon accounting of forest soils

Peltoniemi, M., Thürig, E., Ogle, S., Palosuo, T., Schrumpf, M., Wutzler, T., et al. (2007). Models in country scale carbon accounting of forest soils. Silva Fennica, 41(3), 575-602. doi:10.14214/sf.290.

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BGC1024.pdf (Publisher version), 604KB
 
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http://www.silvafennica.fi/article/290 (Publisher version)
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 Creators:
Peltoniemi, M., Author
Thürig, E., Author
Ogle, S., Author
Palosuo, T., Author
Schrumpf, M.1, Author           
Wutzler, Thomas1, Author           
Butterbach-Bahl, K., Author
Chertov, O., Author
Komarov, A., Author
Mikhailov, A., Author
Gärdenäs, A., Author
Perry, C., Author
Liski, J., Author
Smith, P., Author
Mäkipää, R., Author
Affiliations:
1Department Biogeochemical Processes, Prof. E.-D. Schulze, Max Planck Institute for Biogeochemistry, Max Planck Society, ou_1497751              

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 Abstract: Countries need to assess changes in the carbon stocks of forest soils as a part of national greenhouse gas (GHG) inventories under the United Nations Framework Convention on AM Climate Change (UNFCCC) and the Kyoto Protocol (KP). Since measuring these changes is expensive, it is likely that many countries will use alternative methods to prepare these estimates. We reviewed seven well-known soil carbon models from the point of view of preparing country-scale soil C change estimates. We first introduced the models and explained how they incorporated the most important input variables. Second, we evaluated their applicability at regional scale considering commonly available data sources. Third, we compiled references to data that exist for evaluation of model performance in forest soils. A range of process-based soil carbon models differing in input data requirements exist, allowing some flexibility to forest soil C accounting. Simple models may be the only reasonable option to estimate soil C changes if available resources are limited. More complex models may be used as integral parts of sophisticated inventories assimilating several data sources. Currently, measurement data for model evaluation are common for agricultural soils, but less data have been collected in forest soils. Definitions of model and measured soil pools often differ, ancillary model inputs require scaling of data, and soil C measurements are uncertain. These issues complicate the preparation of model estimates and their evaluation with empirical data, at large scale. Assessment of uncertainties that accounts for the effect of model choice is important part of inventories estimating large-scale soil C changes. Joint development of models and large-scale soil measurement campaigns could reduce the inconsistencies between models and empirical data, and eventually also the uncertainties of model predictions.

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 Dates: 2007
 Publication Status: Issued
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 Identifiers: Other: BGC1024
DOI: 10.14214/sf.290
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Title: Silva Fennica
  Abbreviation : Silva Fenn.
Source Genre: Journal
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Publ. Info: Helsinki : The Finnish Society of Forest Science
Pages: - Volume / Issue: 41 (3) Sequence Number: - Start / End Page: 575 - 602 Identifier: ISSN: 2242-4075
CoNE: https://pure.mpg.de/cone/journals/resource/2242-4075