<oai_dc:dc xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:oai_dc="http://www.openarchives.org/OAI/2.0/oai_dc/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/oai_dc/ http://www.openarchives.org/OAI/2.0/oai_dc.xsd">
  <dc:creator>Farzamian, Mohammad</dc:creator>
  <dc:creator>Vieira, Gonçalo</dc:creator>
  <dc:creator>Santos, Fernando A. Monteiro</dc:creator>
  <dc:creator>Tabar, Borhan Yaghoobi</dc:creator>
  <dc:creator>Hauck, Christian</dc:creator>
  <dc:creator>Paz, Maria Catarina</dc:creator>
  <dc:creator>Bernardo, Ivo</dc:creator>
  <dc:creator>Ramos, Miguel</dc:creator>
  <dc:creator>Pablo, Miguel Angel de</dc:creator>
  <dc:date>2020-03-25</dc:date>
  <dc:description xmlns:ns0="xml" ns0:lang="en">Climate-induced warming of permafrost soils is a global phenomenon, with  regional and site-specific variations which are not fully understood. In this  context, a 2-D automated electrical resistivity tomography (A-ERT) system was  installed for the first time in Antarctica at Deception Island, associated to the  existing Crater Lake site of the Circumpolar Active Layer Monitoring – South  Program (CALM-S) – site. This setup aims to (i) monitor subsurface freezing  and thawing processes on a daily and seasonal basis and map the spatial and  temporal variability in thaw depth and to (ii) study the impact of short-lived  extreme meteorological events on active layer dynamics. In addition, the  feasibility of installing and running autonomous ERT monitoring stations in  remote and extreme environments such as Antarctica was evaluated for the first  time. Measurements were repeated at 4 h intervals during a full year, enabling  the detection of seasonal trends and short-lived resistivity changes reflecting  individual meteorological events. The latter is important for distinguishing  between (1) long-term climatic trends and (2) the impact of anomalous seasons  on the ground thermal regime.Our full-year dataset shows large and fast  temporal resistivity changes during the seasonal active layer freezing and  thawing and indicates that our system setup can resolve spatiotemporal thaw  depth variability along the experimental transect at very high temporal  resolution. The largest resistivity changes took place during the freezing season  in April, when low temperatures induce an abrupt phase change in the active  layer in the absence of snow cover. The seasonal thawing of the active layer is  associated with a slower resistivity decrease during October due to the  presence of snow cover and the corresponding zero-curtain effect. Detailed  investigation of the daily resistivity variations reveals several periods with rapid  and sharp resistivity changes of the near-surface layers due to the brief surficial  refreezing of the active layer in summer or brief thawing of the active layer  during winter as a consequence of short-lived meteorological extreme events.  These results emphasize the significance of the continuous A-ERT monitoring  setup which enables detecting fast changes in the active layer during short-lived  extreme meteorological events.Based on this first complete year-round A-ERT  monitoring dataset on Deception Island, we believe that this system shows high  potential for autonomous applications in remote and harsh polar environments  such as Antarctica. The monitoring system can be used with larger electrode  spacing to investigate greater depths, providing adequate monitoring at sites  and depths where boreholes are very costly and the ecosystem is very sensitive  to invasive techniques. Further applications may be the estimation of ice and  water contents through petrophysical models or the calibration and validation of  heat transfer models between the active layer and permafrost.</dc:description>
  <dc:format>application/pdf</dc:format>
  <dc:identifier>https://folia.unifr.ch/global/documents/308442</dc:identifier>
  <dc:identifier>https://folia.unifr.ch/documents/308442/files/hau_dda.pdf</dc:identifier>
  <dc:language>eng</dc:language>
  <dc:relation>info:eu-repo/semantics/altIdentifier/doi/10.5194/tc-14-1105-2020</dc:relation>
  <dc:rights>info:eu-repo/semantics/openAccess</dc:rights>
  <dc:rights>License undefined</dc:rights>
  <dc:source>The Cryosphere. - 2020, vol. 14, no. 3, p. 1105–1120</dc:source>
  <dc:subject>info:eu-repo/classification/udc/55</dc:subject>
  <dc:title xmlns:ns1="xml" ns1:lang="en">Detailed detection of active layer freeze-thaw dynamics using quasi-continuous electrical resistivity tomography (Deception Island, Antarctica)</dc:title>
  <dc:type>http://purl.org/coar/resource_type/c_6501</dc:type>
</oai_dc:dc>
