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      Strain bursts in plastically deforming Molybdenum micro- and nanopillars

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          Abstract

          Plastic deformation of micron and sub-micron scale specimens is characterized by intermittent sequences of large strain bursts (dislocation avalanches) which are separated by regions of near-elastic loading. In the present investigation we perform a statistical characterization of strain bursts observed in stress-controlled compressive deformation of monocrystalline Molybdenum micropillars. We characterize the bursts in terms of the associated elongation increments and peak deformation rates, and demonstrate that these quantities follow power-law distributions that do not depend on specimen orientation or stress rate. We also investigate the statistics of stress increments in between the bursts, which are found to be Weibull distributed and exhibit a characteristic size effect. We discuss our findings in view of observations of deformation bursts in other materials, such as face-centered cubic and hexagonal metals.

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          Author and article information

          Journal
          13 February 2008
          Article
          10.1080/14786430802132522
          0802.1843
          6fbb75e5-aee0-48de-a6fd-bb4b375b69e4

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          14 pages, 8 figures, submitted to Phil Mag
          cond-mat.mtrl-sci

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