TY - JOUR
T1 - Ultrasonic backscattering method for characterizing the non-uniform microstructure of polycrystals
AU - Liu, Bohan
AU - Huang, Ming
AU - Zhang, Dehan
AU - Yu, Xudong
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/11/15
Y1 - 2025/11/15
N2 - The characterization of polycrystalline microstructure is crucial for understanding and optimizing mechanical properties. Although ultrasonic backscattering has proven effective for uniform grain structures, it remains challenging to apply to non-uniform, multilayered grain distributions. In this paper, we present a novel ultrasonic backscattering method tailored to such heterogeneous microstructures. We develop a theoretical model to describe backscattering in such materials and propose a feature quantity, NRMS, to capture time-domain amplitude changes caused by microstructure transitions. The approach is first validated on synthetic layered polycrystals, where 3D grain-scale finite element (FE) simulations confirm excellent agreement with theoretical predictions. A subsequent 2D FE parametric study demonstrates robust detection of interfaces between regions of differing grain sizes for various interface depths and grain-size ratios. We further corroborate the method's effectiveness through experiments on a welded sample and detailed FE simulations based on the electron backscatter diffraction data. Collectively, these results highlight the capability of ultrasonic backscattering for non-destructive evaluation of complex polycrystalline structures, especially in industrial applications that require rapid assessment of grain size variations (e.g. welded joints or additively manufactured metal parts).
AB - The characterization of polycrystalline microstructure is crucial for understanding and optimizing mechanical properties. Although ultrasonic backscattering has proven effective for uniform grain structures, it remains challenging to apply to non-uniform, multilayered grain distributions. In this paper, we present a novel ultrasonic backscattering method tailored to such heterogeneous microstructures. We develop a theoretical model to describe backscattering in such materials and propose a feature quantity, NRMS, to capture time-domain amplitude changes caused by microstructure transitions. The approach is first validated on synthetic layered polycrystals, where 3D grain-scale finite element (FE) simulations confirm excellent agreement with theoretical predictions. A subsequent 2D FE parametric study demonstrates robust detection of interfaces between regions of differing grain sizes for various interface depths and grain-size ratios. We further corroborate the method's effectiveness through experiments on a welded sample and detailed FE simulations based on the electron backscatter diffraction data. Collectively, these results highlight the capability of ultrasonic backscattering for non-destructive evaluation of complex polycrystalline structures, especially in industrial applications that require rapid assessment of grain size variations (e.g. welded joints or additively manufactured metal parts).
KW - Finite element method
KW - Grain size heterogeneity
KW - Materials characterization
KW - Non-uniform microstructure
KW - Polycrystalline medium
KW - Ultrasonic backscattering
UR - https://www.scopus.com/pages/publications/105016458440
U2 - 10.1016/j.ijmecsci.2025.110831
DO - 10.1016/j.ijmecsci.2025.110831
M3 - 文章
AN - SCOPUS:105016458440
SN - 0020-7403
VL - 306
JO - International Journal of Mechanical Sciences
JF - International Journal of Mechanical Sciences
M1 - 110831
ER -