Analytical wave models are inadequate to describe complex metallic microstructure interactions especially for near field anisotropic property effects and through geometric features smaller than the wavelength. In contrast, finite element ultrasound simulations inherently capture microstructure influences due to their reliance on material definitions rather than wave descriptions. To better understand and quantify heterogeneous crystal orientation effects to ultrasonic wave propagation, a finite element modeling case study has been performed with anisotropic titanium grain structures. A parameterized model has been developed utilizing anisotropic spheres within a bulk material. The resulting wave parameters are analyzed as functions of both wavelength and sphere to bulk crystal mismatch angle.
CITATION STYLE
Freed, S., Blackshire, J. L., & Na, J. K. (2016). Ultrasound finite element simulation sensitivity to anisotropic titanium microstructures. In AIP Conference Proceedings (Vol. 1706). American Institute of Physics Inc. https://doi.org/10.1063/1.4940532
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