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The Use of a Vibro-Acoustic Based Method to Determine the Composite Material Properties of a Replicate Clavicle Bone Model

机译:基于振动声学的方法测定复制锁骨骨模型的复合材料特性

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摘要

Replicate bones are widely used as an alternative for cadaveric bones for in vitro testing. These composite bone models are more easily available and show low inter-specimen variability compared to cadaveric bone models. The combination of in vitro testing with in silico models can provide further insights in the evaluation of the mechanical behavior of orthopedic implants. An accurate numerical representation of the experimental model is important to draw meaningful conclusions from the numerical predictions. This study aims to determine the elastic material constants of a commonly used composite clavicle model by combining acoustic experimental and numerical modal analysis. The difference between the experimental and finite element (FE) predicted natural frequencies was minimized by updating the elastic material constants of the transversely isotropic cortical bone analogue that are provided by the manufacturer. The longitudinal Young’s modulus was reduced from 16.00 GPa to 12.88 GPa and the shear modulus was increased from 3.30 GPa to 4.53 GPa. These updated material properties resulted in an average natural frequency difference of 0.49% and a maximum difference of 1.73% between the FE predictions and the experimental results. The presented updated model aims to improve future research that focuses on mechanical simulations with clavicle composite bone models.
机译:复制骨骼被广泛用作用于体外测试的尸体骨骼的替代品。与尸体骨模型相比,这些复合骨模型更容易可用,并显示出低的标本型变异性。在硅模型中的体外测试的组合可以进一步了解骨科植入物的机械行为的评估。实验模型的准确数字表示对于从数值预测中得出有意义的结论是重要的。本研究旨在通过组合声学实验和数值模态分析来确定常用的复合锁骨模型的弹性材料常数。通过更新由制造商提供的横向各向同性皮质骨类似物的弹性材料常数,最小化实验和有限元(Fe)预测的自然频率之间的差异。纵向杨氏模量从16.00GPA降至12.88GPa,剪切模量从3.30GPa增加到4.53GPa。这些更新的材料属性导致平均自然频率差为0.49%,在FE预测和实验结果之间的最大差异为1.73%。所呈现的更新模式旨在改善未来的研究,专注于用锁骨复合骨模型的机械模拟。

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