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    <title>eCommons Collection:</title>
    <link>http://hdl.handle.net/1813/3003</link>
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    <pubDate>Thu, 23 May 2013 07:17:29 GMT</pubDate>
    <dc:date>2013-05-23T07:17:29Z</dc:date>
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      <title>A direct method for the determination of the mean orientation-dependent elastic</title>
      <link>http://hdl.handle.net/1813/3019</link>
      <description>Title: A direct method for the determination of the mean orientation-dependent elastic
Authors: Bernier, Joel V.; Miller, Matthew P.
Abstract: A salient manifestation of anisotropy in the mechanical response of polycrystal-&#xD;
line materials is the inhomogeneous partitioning of elastic strains over the&#xD;
aggregate. For bulk samples, the distributions of these intergranular strains are&#xD;
expected to have a strong functional dependence on grain orientations. It is then&#xD;
useful to formulate a mean lattice strain distribution function (LSDF) over the&#xD;
orientation space, which serves to characterize the micromechanical state of the&#xD;
aggregate. Orientation-dependent intergranular stresses may be recovered from&#xD;
the LSDF via a constitutive assumption, such as anisotropic linear elasticity.&#xD;
While the LSDF may be determined directly from simulation data, its&#xD;
experimental determination relies on solving an inverse problem that is similar&#xD;
in character to the fundamental problem of texture analysis. In this paper, a&#xD;
versatile and robust direct method for determining an LSDF from strain pole&#xD;
figures is presented. The effectiveness of this method is demonstrated using&#xD;
synthetic strain pole figures from a model LSDF obtained from the simulated&#xD;
uniaxial deformation of a 1000-crystal aggregate.</description>
      <pubDate>Sun, 01 Jan 2006 00:00:00 GMT</pubDate>
      <guid isPermaLink="false">http://hdl.handle.net/1813/3019</guid>
      <dc:date>2006-01-01T00:00:00Z</dc:date>
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