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Computed tomography porosity and spherical indentation for determining cortical bone millimetre-scale mechanical properties

机译:计算机断层扫描孔隙率和球形压痕确定皮层毫米级力学性能

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摘要

The cortex of the femoral neck is a key structural element of the human body, yet there is not a reliable metric for predicting the mechanical properties of the bone in this critical region. This study explored the use of a range of non-destructive metrics to measure femoral neck cortical bone stiffness at the millimetre length scale. A range of testing methods and imaging techniques were assessed for their ability to measure or predict the mechanical properties of cortical bone samples obtained from the femoral neck of hip replacement patients. Techniques that can potentially be applied in vivo to measure bone stiffness, including computed tomography (CT), bulk wave ultrasound (BWUS) and indentation, were compared against in vitro techniques, including compression testing, density measurements and resonant ultrasound spectroscopy. Porosity, as measured by micro-CT, correlated with femoral neck cortical bone’s elastic modulus and ultimate compressive strength at the millimetre length scale. Large-tip spherical indentation also correlated with bone mechanical properties at this length scale but to a lesser extent. As the elastic mechanical properties of cortical bone correlated with porosity, we would recommend further development of technologies that can safely measure cortical porosity in vivo.
机译:股骨颈皮质是人体的关键结构元素,但尚无可靠的指标可预测该关键区域的骨骼机械性能。这项研究探索了使用一系列非破坏性指标来测量毫米长度范围内的股骨颈皮质骨的僵硬性。评估了一系列测试方法和成像技术的测量或预测从髋关节置换患者股骨颈获得的皮质骨样品力学性能的能力。将可能在体内用于测量骨刚度的技术(包括计算机断层扫描(CT),体波超声(BWUS)和压痕)与体外技术(包括压缩测试,密度测量和共振超声光谱)进行了比较。通过微型CT测量的孔隙率与股骨颈皮质骨的弹性模量和毫米级的极限抗压强度相关。在此长度范围内,大尖端球形压痕也与骨骼力学性能相关,但程度较小。由于皮质骨的弹性力学性能与孔隙度相关,我们建议进一步开发可以安全地测量体内皮质孔隙度的技术。

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