4.6 Article

Determining elastic anisotropy of textured polycrystals using resonant ultrasound spectroscopy

Journal

JOURNAL OF MATERIALS SCIENCE
Volume 56, Issue 16, Pages 10053-10073

Publisher

SPRINGER
DOI: 10.1007/s10853-021-05827-z

Keywords

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Funding

  1. Laboratory Directed Research and Development program of Los Alamos National Laboratory [20180250ER]
  2. National Science Foundation [NSF/DMR-1644779]
  3. state of Florida
  4. LANL Office of Experimental Science Dynamic Materials Properties program (Campaign 2)
  5. U.S. Department of Energy [89233218NCA000001]

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In this study, resonant ultrasound spectroscopy was used to analyze the elastic anisotropy in extruded aluminum alloy 1100-O, revealing a transversely isotropic texture. The results confirmed by direct sound velocity measurements and neutron diffraction data showed that the texture-induced anisotropy in the material is consistent with extrusion-induced effects, demonstrating the potential of RUS as a general diagnostic and characterization tool for materials with similar levels of texture.
Polycrystalline materials can have complex anisotropic properties depending on their crystallographic texture and crystal structure. In this study, we use resonant ultrasound spectroscopy (RUS) to nondestructively quantify the elastic anisotropy in extruded aluminum alloy 1100-O, an inherently low-anisotropy material. Further, we show that RUS can be used to indirectly provide a description of the material's texture, which in the present case is found to be transversely isotropic. By determining the entire elastic tensor, we can identify the level and orientation of the anisotropy originated during extrusion. The relative anisotropy of the compressive (c(11)/c(33)) and shear (c(44)/c(66)) elastic constants is 1.5% +/- 0.5% and 5.7% +/- 0.5%, respectively, where the elastic constants (five independent elastic constants for transversely isotropic) are those associated with the extrusion axis that defines the symmetry of the texture. These results indicate that the texture is expected to have transversely isotropic symmetry. This finding is confirmed by two additional approaches. First, we confirm elastic constants and the degree of elastic anisotropy by direct sound velocity measurements using ultrasonic pulse echo. Second, neutron diffraction (ND) data confirm the symmetry of the bulk texture consistent with extrusion-induced anisotropy, and polycrystal elasticity simulations using the elastic self-consistent model with input from ND textures and aluminum single-crystal elastic constants render similar levels of polycrystal elastic anisotropy to those measured by RUS. We demonstrate the ability of RUS to detect texture-induced anisotropy in inherently low-anisotropy materials. Therefore, as many other common materials have intrinsically higher elastic anisotropy, this technique should be applicable for similar levels of texture, providing an efficient general diagnostic and characterization tool.

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