Permafrost degradation and methane: low risk of biogeochemical climate-warming feedback

Climate change and permafrost thaw have been suggested to increase high latitude methane emissions that could potentially represent a strong feedback to the climate system. Using an integrated earth-system model framework, we examine the degradation of near-surface permafrost, temporal dynamics of i...

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Bibliographic Details
Published in:Environmental Research Letters
Main Authors: Xiang Gao, C Adam Schlosser, Andrei Sokolov, Katey Walter Anthony, Qianlai Zhuang, David Kicklighter
Format: Article in Journal/Newspaper
Language:English
Published: IOP Publishing 2013
Subjects:
Q
Online Access:https://doi.org/10.1088/1748-9326/8/3/035014
https://doaj.org/article/250bbf89a9194136846192435abe1a52
Description
Summary:Climate change and permafrost thaw have been suggested to increase high latitude methane emissions that could potentially represent a strong feedback to the climate system. Using an integrated earth-system model framework, we examine the degradation of near-surface permafrost, temporal dynamics of inundation (lakes and wetlands) induced by hydro-climatic change, subsequent methane emission, and potential climate feedback. We find that increases in atmospheric CH _4 and its radiative forcing, which result from the thawed, inundated emission sources, are small, particularly when weighed against human emissions. The additional warming, across the range of climate policy and uncertainties in the climate-system response, would be no greater than 0.1 ° C by 2100. Further, for this temperature feedback to be doubled (to approximately 0.2 ° C) by 2100, at least a 25-fold increase in the methane emission that results from the estimated permafrost degradation would be required. Overall, this biogeochemical global climate-warming feedback is relatively small whether or not humans choose to constrain global emissions.