Simulating the effects of climate change on the carbon balance of North American high-latitude forests
Summary The large magnitude of predicted warming at high latitudes and the potential feedback of ecosystems to atmospheric CO2 concentrations make it important to quantify both warming and its effects on high‐latitude carbon balance. We analysed long‐term, daily surface meteorological records for 13...
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Published in | Global change biology Vol. 6; no. S1; pp. 185 - 195 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
Oxford, UK
Blackwell Publishing Ltd
01.12.2000
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Subjects | |
Online Access | Get full text |
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Summary: | Summary
The large magnitude of predicted warming at high latitudes and the potential feedback of ecosystems to atmospheric CO2 concentrations make it important to quantify both warming and its effects on high‐latitude carbon balance. We analysed long‐term, daily surface meteorological records for 13 sites in Alaska and north‐western Canada and an 82‐y record of river ice breakup date for the Tanana River in interior Alaska. We found increases in winter and spring temperature extrema for all sites, with the greatest increases in spring minimum temperature, average 0.47 °C per 10 y, and a 0.7‐day per 10 y advance in ice breakup on the Tanana River. We used the climate records to drive an ecosystem process model, BIOME_BGC, to simulate the effects of climate change on the carbon and water balances of boreal forest ecosystems. The growing season has lengthened by an average of 2.6 days per 10 y with an advance in average leaf onset date of 1.10 days per 10 y. This advance in the start of the active growing season correlates positively with progressively earlier ice breakup on the Tanana River in interior Alaska. The advance in the start of the growing season resulted in a 20% increase in net primary production for both aspen (Populus tremuloides) and white spruce (Picea glauca) stands. Aspen had a greater mean increase in maintenance respiration than spruce, whereas spruce had a greater mean increase in evapotranspiration. Average decomposition rates also increased for both species. Both net primary production and decomposition are enhanced in our simulations, suggesting that productive forest types may not experience a significant shift in net carbon flux as a result of climate warming. |
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Bibliography: | ark:/67375/WNG-4DNHSXKR-9 ArticleID:GCB6020 istex:7DB4AC1184EFC92D8578701464B5EDD7499F90AA ObjectType-Article-2 SourceType-Scholarly Journals-1 ObjectType-Feature-1 content type line 23 ObjectType-Article-1 ObjectType-Feature-2 |
ISSN: | 1354-1013 1365-2486 |
DOI: | 10.1046/j.1365-2486.2000.06020.x |