Geophysical Monitoring Shows that Spatial Heterogeneity in Thermohydrological Dynamics Reshapes a Transitional Permafrost System

S. Uhlemann, B. Dafflon, J. Peterson, C. Ulrich, I. Shirley, S. Michail, S. S. Hubbard

Research output: Contribution to journalArticlepeer-review

37 Scopus citations

Abstract

Climate change is causing rapid changes of Arctic ecosystems. Yet, data needed to unravel complex subsurface processes are very rare. Using geophysical and in situ sensing, this study closes an observational gap associated with thermohydrological dynamics in discontinuous permafrost systems. It highlights the impact of vegetation and snow thickness distribution on subsurface thermohydrological properties and processes. Large snow accumulation near tall shrubs insulates the ground and allows for rapid and downward heat flow. Thinner snow pack above graminoid results in surficial freezing and prevents water from infiltrating into the subsurface. Analyzing short-term disturbances, we found that lateral flow could be a driving factor in talik formation. Interannual measurements show that deep permafrost temperatures increased by about 0.2°C over 2 years. The results, which suggest that snow-vegetation-subsurface processes are tightly coupled, will be useful for improving predictions of Arctic feedback to climate change, including how subsurface thermohydrology influences CO2 and CH4 fluxes.

Original languageEnglish
Article numbere2020GL091149
JournalGeophysical Research Letters
Volume48
Issue number6
DOIs
StatePublished - Mar 28 2021

Funding

We acknowledge the assistance of Berkeley Lab's Geoscience Measurement Facility for enabling the ERT monitoring system. This research has been supported by the Office of Biological and Environmental Research in the DOE Office of Science (Grant No. DE‐AC02‐05CH11231).

Keywords

  • geophysical monitoring
  • permafrost
  • thermohydrological processes

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