Importance of recent shifts in soil thermal dynamics on growing season length, productivity, and carbon sequestration in terrestrial high-latitude ecosystems

dc.contributor.author Euskirchen, Eugenie
dc.contributor.author McGuire, A. David
dc.contributor.author Kicklighter, David W.
dc.contributor.author Zhuang, Qianlai
dc.contributor.author Clein, Joy S.
dc.contributor.author Dargaville, R. J.
dc.contributor.author Dye, D. G.
dc.contributor.author Kimball, John S.
dc.contributor.author McDonald, Kyle C.
dc.contributor.author Melillo, Jerry M.
dc.contributor.author Romanovsky, Vladimir
dc.contributor.author Smith, N. V.
dc.date.accessioned 2006-05-01T13:33:55Z
dc.date.available 2006-05-01T13:33:55Z
dc.date.issued 2005-10-07
dc.description Author Posting. © The Authors, 2005. This is the author's version of the work. It is posted here by permission of Blackwell for personal use, not for redistribution. The definitive version was published in Global Change Biology 12 (2006): 731-750, doi:10.1111/j.1365-2486.2006.01113.x. en
dc.description.abstract In terrestrial high-latitude regions, observations indicate recent changes in snow cover, permafrost, and soil freeze-thaw transitions due to climate change. These modifications may result in temporal shifts in the growing season and the associated rates of terrestrial productivity. Changes in productivity will influence the ability of these ecosystems to sequester atmospheric CO2. We use the Terrestrial Ecosystem Model (TEM), which simulates the soil thermal regime, in addition to terrestrial carbon, nitrogen and water dynamics, to explore these issues over the years 1960-2100 in extratropical regions (30°-90°N). Our model simulations show decreases in snow cover and permafrost stability from 1960 to 2100. Decreases in snow cover agree well with NOAA satellite observations collected between the years 1972-2000, with Pearson rank correlation coefficients between 0.58-0.65. Model analyses also indicate a trend towards an earlier thaw date of frozen soils and the onset of the growing season in the spring by approximately 2-4 days from 1988-2000. Between 1988 and 2000, satellite records yield a slightly stronger trend in thaw and the onset of the growing season, averaging between 5-8 days earlier. In both the TEM simulations and satellite records, trends in day of freeze in the autumn are weaker, such that overall increases in growing season length are due primarily to earlier thaw. Although regions with the longest snow cover duration displayed the greatest increase in growing season length, these regions maintained smaller increases in productivity and heterotrophic respiration than those regions with shorter duration of snow cover and less of an increase in growing season length. Concurrent with increases in growing season length, we found a reduction in soil carbon and increases in vegetation carbon, with greatest losses of soil carbon occurring in those areas with more vegetation, but simulations also suggest that this trend could reverse in the future. Our results reveal noteworthy changes in snow, permafrost, growing season length, productivity, and net carbon uptake, indicating that prediction of terrestrial carbon dynamics from one decade to the next will require that large-scale models adequately take into account the corresponding changes in soil thermal regimes. en
dc.description.sponsorship Funds were provided by the NSF for the Arctic Biota/Vegetation portion of the ‘Climate of the Arctic: Modeling and Processes’ project (OPP- 0327664), and by the USGS ‘Fate of Carbon in Alaska Landscapes’ project. en
dc.format.extent 819344 bytes
dc.format.mimetype application/pdf
dc.identifier.uri https://hdl.handle.net/1912/909
dc.language.iso en_US en
dc.relation.uri https://doi.org/10.1111/j.1365-2486.2006.01113.x
dc.subject Growing season en
dc.subject Carbon sequestration en
dc.subject Productivity en
dc.subject Respiration en
dc.subject Snow cover en
dc.subject Permafrost en
dc.subject Climate change en
dc.subject Terrestrial ecosystem model en
dc.title Importance of recent shifts in soil thermal dynamics on growing season length, productivity, and carbon sequestration in terrestrial high-latitude ecosystems en
dc.type Preprint en
dspace.entity.type Publication
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