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Three-dimensional simulations of ultrasonic axial transmission velocity measurement on cortical bone models

机译:皮质骨模型超声轴向传输速度测量的三维模拟

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摘要

The ultrasonic axial transmission technique, used to assess cortical shells of long bones, is investigated using numerical simulations based on a three-dimensional (3D) finite difference code. We focus our interest on the effects of 3D cortical bone geometry (curvature, cortical thickness), anisotropy, and microporosity on speed of sound (SOS) measurements for different frequencies in the MHz range. We first show that SOS values measured on tubular cortical shells are identical to those measured on cortical plates of equal thickness. Anisotropy of cortical bone is then shown to have a major impact on SOS measurement as a function of cortical thickness. The range of SOS values measured on anisotropic bone is half the range found when bone is considered isotropic. Dependence of thickness occurs for cortical shell thinner than 0.5×λ_(bone) in anisotropic bone (λ_(bone): wavelength in bone), whereas it occurs for cortical shell thinner than λ_(bone) when anisotropy is neglected. Sensitivity of SOS along the bone axis to intracortical microporosity is shown to be approximately –20 m s~(-1) per percent of porosity. Using homogenized porous bone, we finally show that the cortical depth that contributes to lateral wave SOS measurement is approximately 1–1.5 mm for frequencies ranging from 500 kHz to 2 MHz under classical in vivo measurement conditions.
机译:使用基于三维(3D)有限差分代码的数值模拟研究了用于评估长骨皮质外壳的超声轴向传输技术。我们将注意力集中在3D皮质骨几何形状(曲率,皮质厚度),各向异性和微孔性对MHz范围内不同频率的声速(SOS)测量的影响上。我们首先显示,在管状皮质外壳上测得的SOS值与在相同厚度的皮质板上测得的SOS值相同。皮质骨的各向异性随皮质厚度的变化对SOS测量有重要影响。在各向异性的骨骼上测得的SOS值范围是当骨骼被视为各向同性时发现的范围的一半。在各向异性的骨头中,厚度薄于0.5×λ_(骨)的皮质壳(λ_(骨):骨中的波长)发生厚度依赖性,而在各向异性时,厚度薄于λ_(骨)的皮质壳发生厚度依赖性。 SOS沿骨轴对皮质内微孔的敏感性显示为每孔隙率的百分比约为–20 m s〜(-1)。使用均质的多孔骨,我们最终表明,在经典的体内测量条件下,对于500 kHz至2 MHz的频率,有助于侧波SOS测量的皮质深度约为1–1.5 mm。

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