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Elastic anisotropy and off-axis ultrasonic velocity distribution in human cortical bone

机译:人体皮质骨的弹性各向异性和离轴超声速度分布

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摘要

Elastic structure in cortical bone is usually simplified as orthotropic or transversely isotropic, which allows estimates of three-dimensional technical constants from ultrasonic and density measurements. These elastic property estimates can then be used to study phenotypic changes in cortical bone structure and function, and to create finite element models of skeletal structures for studies of organismal variation and functional adaptation. This study examines assumptions of orthotropic or transversely isotropic material structure in cortical bone through the investigation of off-axis ultrasonic velocities in the cortical plane in 10 samples each from a human femur, mandible and cranium. Longitudinal ultrasonic velocities were measured twice through each bone sample by rotating the perimeter of each sample in 1 ° angular intervals between two ultrasonic transducers. The data were fit to sine curves f(x) = (A× sin(x+ B) + C) and the goodness of fit was examined. All the data from the femur fit closely with the ideal sine curve model, and all three coefficients were similar among specimens, indicating similar elastic properties, anisotropies and orientations of the axes of maximum stiffness. Off-axis ultrasonic velocities in the mandible largely fit the sine curve model, although there were regional variations in the coefficients. Off-axis ultrasonic velocities from the cranial vault conformed to the sine curve model in some regions but not in others, which shows an irregular and complex pattern. We hypothesize that these variations in ultrasonic velocities reflect variations in the underlying bulk microstructure of the cortical bone, especially in the three-dimensional patterns of osteonal orientation and structure. Elastic property estimates made with ultrasonic techniques are likely valid in the femur and mandible; errors in estimates from cranial bone need to be evaluated regionally. Approximate orthotropic structure in bulk cortical bone specimens should be assessed if ultrasound is used to estimate three-dimensional elastic properties.
机译:皮质骨中的弹性结构通常简化为正交各向异性或横向各向同性,从而可以通过超声和​​密度测量来估算三维技术常数。然后,这些弹性属性估计值可用于研究皮质骨结构和功能的表型变化,并创建骨骼结构的有限元模型,以研究生物变异和功能适应性。这项研究通过调查10个来自人类股骨,下颌骨和颅骨的样本在皮质平面中的离轴超声速度,检验了皮质骨中正交各向异性或横向各向同性的材料结构的假设。通过在两个超声换能器之间以1°角间隔旋转每个样品的周长,两次测量每个骨样品的纵向超声速度。将数据拟合为正弦曲线f(x)=(A×sin(x + B)+ C),并检验拟合优度。股骨的所有数据均与理想正弦曲线模型非常吻合,并且三个系数在标本之间相似,表明最大刚度轴的弹性,各向异性和方向相似。下颌骨的离轴超声速度在很大程度上适合正弦曲线模型,尽管系数存在区域差异。颅穹ault的离轴超声速度在某些区域符合正弦曲线模型,但在其他区域则不符合,这显示出不规则且复杂的模式。我们假设超声速度的这些变化反映了皮质骨的底层整体微观结构的变化,尤其是骨质神经元取向和结构的三维模式。用超声技术估计的弹性性能可能在股骨和下颌骨中有效;颅骨评估中的误差需要局部评估。如果使用超声估计三维弹性特性,则应评估大块皮质骨标本中的近似正交各向异性结构。

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