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- W2478082014 abstract "The topic is presented as a series of slides. Motivation for the work included the following: X-ray tomography is a fantastic technique for characterizing a material’s starting structure as well as for non-destructive, in situ experiments to investigate material response; 3D X-ray tomography is needed to fully characterize the morphology of cellular materials; and synchrotron micro-CT can capture 3D images without pausing experiment. Among the conclusions reached are these: High-rate radiographic and tomographic imaging (0.25 s 3D frame rate) using synchrotron CT can capture full 3D images of hyper-elastic materials at a 10-2 strain rate; dynamic true in situ uniaxial loading can be accurately captured; the three stages of compression can be imaged: bending, buckling, and breaking; implementation of linear modeling is completed; meshes have been imported into LANL modeling codes--testing and validation is underway and direct comparison and validation between in situ data and modeled mechanical response is possible." @default.
- W2478082014 created "2016-08-23" @default.
- W2478082014 creator A5010616561 @default.
- W2478082014 date "2016-03-01" @default.
- W2478082014 modified "2023-09-25" @default.
- W2478082014 title "Uniaxial Compression of Cellular Materials at a 10<sup>-1</sup> s<sup>-1</sup> Strain Rate Simultaneously with Synchrotron X-ray Computed Tomographic Imaging" @default.
- W2478082014 doi "https://doi.org/10.2172/1240801" @default.
- W2478082014 hasPublicationYear "2016" @default.
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