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The importance of femur/acetabulum cartilage in the biomechanics of the intact hip: experimental and numerical assessment

机译:股骨/髋臼软骨在完整髋部生物力学中的重要性:实验和数值评估

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Experimental studies have been made to study and validate the biomechanics of the pair femur/acetabulum considering both structures without the presence of cartilage. The main goal of this study was to validate a numerical model of the intact hip. Numerical and experimental models of the hip joint were developed with respect to the anatomical restrictions. Both iliac and femur bones were replicated based on composite replicas. Additionally, a thin layer of silicon rubber was used for the cartilage. A three-dimensional finite element model was developed and the boundary conditions of the models were applied according to the natural physiological constrains of the joint. The loads used in both models were used just for comparison purposes. The biomechanical behaviour of the models was assessed considering the maximum and minimum principal bone strains and von Mises stress. We analysed specific biomechanical parameters in the interior of the acetabular cavity and on femur's surface head to determine the role of the cartilage of the hip joint within the load transfer mechanism. The results of the study show that the stress observed in acetabular cavity was 8.3 to 9.2 MPa. When the cartilage is considered in the joint model, the absolute values of the maximum and minimum peak strains on the femur's head surface decrease simultaneously, and the strains are more uniformly distributed on both femur and iliac surfaces. With cartilage, the cortex strains increase in the medial side of the femur. We prove that finite element models of the intact hip joint can faithfully reproduce experimental models with a small difference of 7%.
机译:考虑到两个结构都没有软骨,已经进行了实验研究来研究和验证股骨/髋臼对的生物力学。这项研究的主要目的是验证完整髋关节的数值模型。关于解剖学限制,开发了髋关节的数值和实验模型。 composite骨和股骨均根据复合材料复制品进行复制。另外,软骨使用了一层薄薄的硅橡胶。建立了三维有限元模型,并根据关节的自然生理约束条件应用了模型的边界条件。两种模型中使用的负载仅用于比较目的。考虑最大和最小主要骨骼应变以及冯·米塞斯应力,评估了模型的生物力学行为。我们分析了髋臼腔内部和股骨表面头部的特定生物力学参数,以确定髋关节软骨在负荷转移机制中的作用。研究结果表明,在髋臼腔中观察到的应力为8.3至9.2 MPa。当在关节模型中考虑软骨时,股骨头部表面上最大和最小峰值应变的绝对值同时降低,并且应变在股骨和表面均更均匀地分布。对于软骨,皮质应变在股骨内侧增加。我们证明了完整髋关节的有限元模型可以忠实地复制实验模型,相差只有7%。

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