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Surface water inundation in the boreal-Arctic: potential impacts on regional methane emissions

Environmental Research Letters · 2014 · Vol. 9(7) · pp. 075001–075001
Jennifer D. WattsJohn S. KimballAnnett BartschK. C. McDonald

Abstract

Northern wetlands may be vulnerable to increased carbon losses from methane (CH4), a potent greenhouse gas, under current warming trends. However, the dynamic nature of open water inundation and wetting/drying patterns may constrain regional emissions, offsetting the potential magnitude of methane release. Here we conduct a satellite data driven model investigation of the combined effects of surface warming and moisture variability on high northern latitude (>= 45 degrees N) wetland CH4 emissions, by considering (1) sub-grid scale changes in fractional water inundation (Fw) at 15 day, monthly and annual intervals using 25 km resolution satellite microwave retrievals, and (2) the impact of recent (2003-11) wetting/drying on northern CH4 emissions. The model simulations indicate mean summer contributions of 53 Tg CH4 yr(-1) from boreal-Arctic wetlands. Approximately 10% and 16% of the emissions originate from open water and landscapes with emergent vegetation, as determined from respective 15 day Fw means or maximums, and significant increases in regional CH4 efflux were observed when incorporating satellite observed inundated land fractions into the model simulations at monthly or annual time scales. The satellite Fw record reveals widespread wetting across the Arctic continuous permafrost zone, contrasting with surface drying in boreal Canada, Alaska and western Eurasia. Arctic wetting and summer warming increased wetland emissions by 0.56 Tg CH4 yr(-1) compared to the 2003-11 mean, but this was mainly offset by decreasing emissions (-0.38 Tg CH4 yr(-1)) in sub-Arctic areas experiencing surface drying or cooling. These findings underscore the importance of monitoring changes in surface moisture and temperature when assessing the vulnerability of boreal-Arctic wetlands to enhanced greenhouse gas emissions under a shifting climate.

Climate change and permafrostPeatlands and Wetlands EcologyCryospheric studies and observationsEnvironmental scienceBorealPermafrostArcticTundraWetlandGreenhouse gasTaigaAtmospheric sciencesThermokarst

Funding

  • National Aeronautics and Space Administration
  • California Institute of Technology
  • Lehigh University
  • University of Montana
  • Jet Propulsion Laboratory
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References
The Soil Moisture Active Passive (SMAP) Mission
Proceedings of the IEEE · 2010 · 3,644 citations
Arctic warming, increasing snow cover and widespread boreal winter cooling
Environmental Research Letters · 2012 · 533 citations
The Global Land Data Assimilation System
Bulletin of the American Meteorological Society · 2004 · 5,589 citations
Circumglobal Teleconnection in the Northern Hemisphere Summer*
Journal of Climate · 2005 · 1,117 citations
Hydrological Processes
Hydrological Processes · 2006 · 686 citations
Global peatland dynamics since the Last Glacial Maximum
Geophysical Research Letters · 2010 · 1,411 citations
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