Item request has been placed! ×
Item request cannot be made. ×
loading  Processing Request

Avalanches in compressed porous SiO2-based materials

Item request has been placed! ×
Item request cannot be made. ×
loading   Processing Request
  • Additional Information
    • Publication Information:
      American Physical Society
    • Publication Date:
      2014
    • Collection:
      Dipòsit Digital de la Universitat de Barcelona
    • Abstract:
      The failure dynamics in SiO2-based porous materials under compression, namely the synthetic glass Gelsil and three natural sandstones, has been studied for slowly increasing compressive uniaxial stress with rates between 0.2 and 2.8 kPa/s. The measured collapsed dynamics is similar to Vycor, which is another synthetic porous SiO2 glass similar to Gelsil but with a different porous mesostructure. Compression occurs by jerks of strain release and a major collapse at the failure point. The acoustic emission and shrinking of the samples during jerks are measured and analyzed. The energy of acoustic emission events, its duration, and waiting times between events show that the failure process follows avalanche criticality with power law statistics over ca. 4 decades with a power law exponent ε 1.4 for the energy distribution. This exponent is consistent with the mean-field value for the collapse of granular media. Besides the absence of length, energy, and time scales, we demonstrate the existence of aftershock correlations during the failure process.
    • File Description:
      9 p.; application/pdf
    • ISSN:
      1539-3755
    • Relation:
      Reproducció del document publicat a: http://dx.doi.org/10.1103/PhysRevE.90.022405; Physical Review E, 2014, vol. 90, num. 022405, p. 022405-1-022405-9; http://dx.doi.org/10.1103/PhysRevE.90.022405; http://hdl.handle.net/2445/69541; 647133
    • Online Access:
      http://hdl.handle.net/2445/69541
    • Rights:
      (c) American Physical Society, 2014 ; info:eu-repo/semantics/openAccess
    • Accession Number:
      edsbas.522D656D