globalchange  > 影响、适应和脆弱性
DOI: 10.1002/2015MS000576
Scopus记录号: 2-s2.0-84981516279
论文题名:
Climate, soil organic layer, and nitrogen jointly drive forest development after fire in the North American boreal zone
作者: Trugman A; T; , Fenton N; J; , Bergeron Y; , Xu X; , Welp L; R; , Medvigy D
刊名: Journal of Advances in Modeling Earth Systems
ISSN: 19422466
出版年: 2016
卷: 8, 期:3
起始页码: 1180
结束页码: 1209
语种: 英语
英文关键词: Atmospheric temperature ; Carbon dioxide ; Climate models ; Ecology ; Ecosystems ; Feedback ; Fires ; Nitrogen ; Soils ; Boreal forests ; Carbon cycles ; Climate sensitivity ; Dynamic vegetation model ; Fire disturbance ; Organic layers ; Forestry ; boreal forest ; broad-leaved forest ; carbon dioxide ; carbon sequestration ; climate effect ; Environmentally Sensitive Area ; fire ; forest soil ; growth rate ; model validation ; nitrogen ; physical disturbance ; recruitment (population dynamics) ; soil organic matter ; succession ; temperature ; vegetation cover ; Alaska ; Canada ; Quebec [Canada] ; United States
英文摘要: Previous empirical work has shown that feedbacks between fire severity, soil organic layer thickness, tree recruitment, and forest growth are important factors controlling carbon accumulation after fire disturbance. However, current boreal forest models inadequately simulate this feedback. We address this deficiency by updating the ED2 model to include a dynamic feedback between soil organic layer thickness, tree recruitment, and forest growth. The model is validated against observations spanning monthly to centennial time scales and ranging from Alaska to Quebec. We then quantify differences in forest development after fire disturbance resulting from changes in soil organic layer accumulation, temperature, nitrogen availability, and atmospheric CO2. First, we find that ED2 accurately reproduces observations when a dynamic soil organic layer is included. Second, simulations indicate that the presence of a thick soil organic layer after a mild fire disturbance decreases decomposition and productivity. The combination of the biological and physical effects increases or decreases total ecosystem carbon depending on local conditions. Third, with a 4�C temperature increase, some forests transition from undergoing succession to needleleaf forests to recruiting multiple cohorts of broadleaf trees, decreasing total ecosystem carbon by ∼40% after 300 years. However, the presence of a thick soil organic layer due to a persistently mild fire regime can prevent this transition and mediate carbon losses even under warmer temperatures. Fourth, nitrogen availability regulates successional dynamics; broadleaf species are less competitive with needleleaf trees under low nitrogen regimes. Fifth, the boreal forest shows additional short-term capacity for carbon sequestration as atmospheric CO2 increases. � 2016. The Authors.
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/75885
Appears in Collections:影响、适应和脆弱性
气候变化与战略

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作者单位: Program in Atmospheric and Oceanic Sciences, Princeton University, Princeton, NJ, United States; Forest Research Institute, NSERC-UQAT-UQAM Industrial Chair in Sustainable Forest Management, Universit� du Qu�bec en Abitibi-T�miscamingue, Rouyn-Noranda, QC, Canada; Centre d' �tudes sur la For�t, Universit� du Qu�bec a Montr�al, Montr�al, QC, Canada; Department of Geosciences, Princeton University, Princeton, NJ, United States; Department of Earth, Atmospheric, and Planetary Sciences, Purdue University, West Lafayette, IN, United States

Recommended Citation:
Trugman A,T,, Fenton N,et al. Climate, soil organic layer, and nitrogen jointly drive forest development after fire in the North American boreal zone[J]. Journal of Advances in Modeling Earth Systems,2016-01-01,8(3)
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