Hua Xijin, Li Junyan, Wang Ling, Jin Zhongmin, Wilcox Ruth, Fisher John
Institute of Medical and Biological Engineering, School of Mechanical Engineering, University of Leeds, Leeds, UK.
Institute of Medical and Biological Engineering, School of Mechanical Engineering, University of Leeds, Leeds, UK.
J Biomech. 2014 Oct 17;47(13):3303-9. doi: 10.1016/j.jbiomech.2014.08.015. Epub 2014 Sep 1.
Edge loading can negatively impact the biomechanics and long-term performance of hip replacements. Although edge loading has been widely investigated for hard-on-hard articulations, limited work has been conducted for hard-on-soft combinations. The aim of the present study was to investigate edge loading and its effect on the contact mechanics of a modular metal-on-polyethylene (MoP) total hip replacement (THR). A three-dimensional finite element model was developed based on a modular MoP bearing. Different cup inclination angles and head lateral microseparation were modelled and their effect on the contact mechanics of the modular MoP hip replacement were examined. The results showed that lateral microseparation caused loading of the head on the rim of the cup, which produced substantial increases in the maximum von Mises stress in the polyethylene liner and the maximum contact pressure on both the articulating surface and backside surface of the liner. Plastic deformation of the liner was observed under both standard conditions and microseparation conditions, however, the maximum equivalent plastic strain in the liner under microseparation conditions of 2000 µm was predicted to be approximately six times that under standard conditions. The study has indicated that correct positioning the components to avoid edge loading is likely to be important clinically even for hard-on-soft bearings for THR.
边缘负荷会对髋关节置换术的生物力学和长期性能产生负面影响。尽管对于硬对硬关节的边缘负荷已经进行了广泛研究,但对于硬对软组合的研究工作却很有限。本研究的目的是研究边缘负荷及其对模块化金属对聚乙烯(MoP)全髋关节置换术(THR)接触力学的影响。基于模块化MoP轴承建立了三维有限元模型。对不同的髋臼杯倾斜角度和股骨头侧向微分离进行了建模,并研究了它们对模块化MoP髋关节置换术接触力学的影响。结果表明,侧向微分离导致股骨头在髋臼杯边缘加载,这使得聚乙烯内衬中的最大von Mises应力以及内衬关节表面和背面的最大接触压力大幅增加。在标准条件和微分离条件下均观察到内衬的塑性变形,然而,在2000 µm微分离条件下内衬中的最大等效塑性应变预计约为标准条件下的六倍。该研究表明,即使对于THR的硬对软轴承,临床上正确定位组件以避免边缘负荷可能也很重要。