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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Influence of geometry and materials on the axial and torsional strength of the head-neck taper junction in modular hip replacements: A finite element study
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Influence of geometry and materials on the axial and torsional strength of the head-neck taper junction in modular hip replacements: A finite element study

机译:几何形状和材料对模块化髋关节置换中头颈部锥度连接处的轴向和扭转强度的影响:有限元研究

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摘要

The assembly force is important in establishing the mechanical environment at the head neck taper junction of modular hip replacements. Previous experimental results of the assembled taper junctions with different material combinations (Co-28Cr-6Mo and Ti-6Al-4V) reported similar axial strengths (pull-off loads), but lower torsional strengths (twist-off moments) for the CoCr/CoCr junction. However, mechanics of the junction and the strength behaviour have not been understood yet. A three dimensional finite element model of an isolated femoral head-neck junction was developed to explore the assembly and disassembly procedures, particularly the axial and torsional strengths for different material combinations and geometries. Under the same assembly load, the contacting length between the CoCr head and titanium neck was greater than that of in CoCr/CoCr. The contact length in the titanium neck was more sensitive to the assembly force when compared to the CoCr neck. For instance, with increasing the assembly force from 1890 to 3700 N, the contact length increased by 88% for CoCr/Ti and 59% for CoCr/CoCr junctions. The torsional strength of the junction was related to the lateral deformation of the neck material due to the applied moment. The angular mismatch existing between the head and neck components was found to play the main role in the torsional strength of the junction. The smaller mismatch angle the higher torsional strength. It is suggested to consider reducing the mismatch angle, particularly in CoCr/CoCr junctions, and ensure a sufficiently high assembly force is applied by impaction for this combination. (C) 2016 Elsevier Ltd. All rights reserved.
机译:组装力对于在模块化髋关节置换术的头颈部锥度接合处建立机械环境非常重要。以前使用不同材料组合(Co-28Cr-6Mo和Ti-6Al-4V)组装的锥形结的实验结果报告了相似的轴向强度(拉力),但CoCr /的扭转强度较低(扭力)。 CoCr结。但是,尚未了解接合处的力学和强度行为。建立了孤立的股骨头-颈部交界处的三维有限元模型,以探索组装和拆卸程序,特别是针对不同材料组合和几何形状的轴向和扭转强度。在相同的装配载荷下,CoCr头部和钛颈之间的接触长度大于CoCr / CoCr中的接触长度。与CoCr颈相比,钛颈中的接触长度对装配力更为敏感。例如,随着组装力从1890 N增加到3700 N,CoCr / Ti的接触长度增加了88%,CoCr / CoCr连接的接触长度增加了59%。由于施加的力矩,连接处的扭转强度与颈部材料的横向变形有关。发现头部和颈部组件之间存在的角度不匹配在接合处的扭转强度中起主要作用。失配角越小,扭转强度越高。建议考虑减少失配角,特别是在CoCr / CoCr结中,并确保通过碰撞施加足够高的装配力以实现此组合。 (C)2016 Elsevier Ltd.保留所有权利。

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