Department of Mechanical Engineering and Aeronautics, University of Patras, Patras, Greece.
J Acoust Soc Am. 2011 Aug;130(2):1060-70. doi: 10.1121/1.3605566.
Cortical bone is a multiscale heterogeneous natural material characterized by microstructural effects. Thus guided waves propagating in cortical bone undergo dispersion due to both material microstructure and bone geometry. However, above 0.8 MHz, ultrasound propagates rather as a dispersive surface Rayleigh wave than a dispersive guided wave because at those frequencies, the corresponding wavelengths are smaller than the thickness of cortical bone. Classical elasticity, although it has been largely used for wave propagation modeling in bones, is not able to support dispersion in bulk and Rayleigh waves. This is possible with the use of Mindlin's Form-II gradient elastic theory, which introduces in its equation of motion intrinsic parameters that correlate microstructure with the macrostructure. In this work, the boundary element method in conjunction with the reassigned smoothed pseudo Wigner-Ville transform are employed for the numerical determination of time-frequency diagrams corresponding to the dispersion curves of Rayleigh and guided waves propagating in a cortical bone. A composite material model for the determination of the internal length scale parameters imposed by Mindlin's elastic theory is exploited. The obtained results demonstrate the dispersive nature of Rayleigh wave propagating along the complex structure of bone as well as how microstructure affects guided waves.
皮质骨是一种多尺度的非均质天然材料,具有微观结构效应。因此,在皮质骨中传播的导波会由于材料微观结构和骨骼几何形状而发生色散。然而,在 0.8MHz 以上,超声波传播的更像是色散表面瑞利波而不是色散导波,因为在这些频率下,相应的波长小于皮质骨的厚度。经典弹性理论虽然在很大程度上被用于骨骼中的波传播建模,但它不能支持体波和瑞利波的色散。这可以使用 Mindlin 的二阶梯度弹性理论来实现,该理论在其运动方程中引入了与宏观结构相关的固有参数来描述微观结构。在这项工作中,边界元法与重新分配的平滑伪魏格纳-维尔分布相结合,用于数值确定在皮质骨中传播的瑞利波和导波的色散曲线对应的时频图。利用复合材料模型来确定 Mindlin 弹性理论所施加的内部长度尺度参数。所得结果表明了沿着骨骼复杂结构传播的瑞利波的色散性质,以及微观结构如何影响导波。