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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >Experimental and theoretical study of the contact mechanics of five total knee joint replacements
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Experimental and theoretical study of the contact mechanics of five total knee joint replacements

机译:五种全膝关节置换术接触力学的实验和理论研究

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摘要

The tibio-femoral contact area in five current popular total knee joint replacements has been measured using pressure-sensitive film under a normal load of 2.5 kN and at several angles of flexion. The corresponding maximum contact pressure hasbeen estimated from the measured contact areas and found to exceed the point at which plastic deformation is expected in the ultra-high molecular weight polyethylene (UHMWPE) component, particularly at flexion angles near 90°. The measured contact areaand the estimated maximum contact stress have been found to be similar in magnitude for all of the five knee joint replacements tested.A significant difference, however, has been found in maximum contact pressure predicted from linear elasticity analysis for the different knee joints. This indicates that varying amounts of plastic deformation occurred in the polyethylene component in the different knee designs. It is important to know the extent of damage as knees with large amounts of plastic deformation are more likely to suffer low cycle fatigue failure. It is therefore concluded that the measurement of contact areas alone can bemisleading in the design of and deformation in total knee joint replacements. It is important to modify geometries to reduce the maximum contact stress as predicted from the linear elasticity analysis, to below the linear elastic limit of the plasticcomponent.
机译:使用压敏膜在2.5 kN的法向载荷和几个屈曲角度下测量了五个当前流行的全膝关节置换术中的胫股接触面积。从测得的接触面积可以估算出相应的最大接触压力,并且发现该压力超过了超高分子量聚乙烯(UHMWPE)部件预期发生塑性变形的点,尤其是在接近90°的弯曲角度处。在所有五个膝关节置换中,测得的接触面积和估计的最大接触应力在大小上都相似,但是通过线性弹性分析预测的不同膝关节的最大接触压力存在显着差异。这表明在不同的膝盖设计中,聚乙烯组件中发生了不同程度的塑性变形。重要的是要知道损伤的程度,因为具有大量塑性变形的膝盖更容易遭受低周疲劳破坏。因此得出的结论是,仅接触面积的测量可能会在整个膝关节置换的设计和变形方面产生误导。重要的是修改几何形状,以将线性弹性分析中预测的最大接触应力减小到塑料部件的线性弹性极限以下。

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