<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>Hadi, Jebril</dc:creator>
  <dc:creator>Wersin, Paul</dc:creator>
  <dc:creator>Serneels, Vincent</dc:creator>
  <dc:creator>Greneche, Jean-Marc</dc:creator>
  <dc:date>2019</dc:date>
  <dc:description xmlns:ns0="xml" ns0:lang="en">Corrosion of steel canisters containing buried high-level radioactive waste is a  relevant issue for the long-term integrity of repositories. The purpose of the present  study was to evaluate this issue by examining two differently corroded blocks  originating from a full-scale in situ test of the FEBEX bentonite site in Switzerland. The  FEBEX experiment was designed initially as a feasibility test of an engineered clay  barrier system and was recently dismantled after 18 years of activity. Samples were  studied by ‘spatially resolved’ and ‘bulk’ experimental methods, including Scanning  Electron Microscopy, Elemental Energy Dispersive Spectroscopy (SEM-EDX), μ-  Raman spectroscopy, X-ray Fluorescence (XRF), X-ray Diffraction (XRD), and 57Fe  Mössbauer spectrometry, with a focus on Fe-bearing phases. In one of the blocks,  corrosion of the steel liner led to diffusion of Fe into the bentonite, resulting in the  formation of large (width &gt; 140 mm) red, orange, and blue colored halos. Goethite was  identified as the main corrosion product in the red and orange zones while no excess  Fe2+ (compared to the unaffected bentonite) was observed there. Excess Fe2+ was  found to have diffused further into the clay (in the blue zones) but its speciation could  not be unambiguously clarified. The results indicate the occurrence of newly formed  octahedral Fe2+ either as Fe2+ sorbed on the clay or as structural Fe2+ inside the  clay (following electron transfer from sorbed Fe2+). No other indications of clay  transformation or newly formed clay phases were found. The overall pattern indicates  that diffusion of Fe was initiated when oxidizing conditions were still prevailing inside  the bentonite block, resulting in the accumulation of Fe3+ close to the interface (up to  three times the original Fe content), and continued when reducing conditions were  reached, allowing deeper diffusion of Fe2+ into the clay (inducing an increase of 10–  12% of the Fe content).</dc:description>
  <dc:format>application/pdf</dc:format>
  <dc:identifier>https://folia.unifr.ch/global/documents/308115</dc:identifier>
  <dc:identifier>https://folia.unifr.ch/documents/308115/files/ser_eys.pdf</dc:identifier>
  <dc:identifier>https://folia.unifr.ch/documents/308115/files/ser_eys_sm.pdf</dc:identifier>
  <dc:language>eng</dc:language>
  <dc:relation>info:eu-repo/semantics/altIdentifier/doi/10.1007/s42860-019-00012-5</dc:relation>
  <dc:rights>info:eu-repo/semantics/openAccess</dc:rights>
  <dc:rights>License undefined</dc:rights>
  <dc:source>Clays and Clay Minerals. - 2019, vol. 67, no. 2, p. 111–131</dc:source>
  <dc:subject>info:eu-repo/classification/udc/620.1</dc:subject>
  <dc:title xmlns:ns1="xml" ns1:lang="en">Eighteen years of steel–bentonite interaction in the FEBEX in situ test at the Grimsel Test Site in Switzerland</dc:title>
  <dc:type>http://purl.org/coar/resource_type/c_6501</dc:type>
</oai_dc:dc>
