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蹲踞相关的胫股剪切反作用力及股骨部件松动的生物力学原理。

Squatting-related tibiofemoral shear reaction forces and a biomechanical rationale for femoral component loosening.

作者信息

Thambyah Ashvin, Fernandez Justin

机构信息

Department of Chemical and Materials Engineering, University of Auckland, 20 Symonds Street, Auckland 1142, New Zealand.

Auckland Bioengineering Institute, University of Auckland, 70 Symonds Street, Auckland 1010, New Zealand ; Department of Engineering Science, University of Auckland, 70 Symonds Street, Auckland 1010, New Zealand.

出版信息

ScientificWorldJournal. 2014;2014:785175. doi: 10.1155/2014/785175. Epub 2014 May 20.

Abstract

Previous gait studies on squatting have described a rapid reversal in the direction of the tibiofemoral joint shear reaction force when going into a full weight-bearing deep knee flexion squat. The effects of such a shear reversal have not been considered with regard to the loading demand on knee implants in patients whose activities of daily living require frequent squatting. In this paper, the shear reversal effect is discussed and simulated in a finite element knee implant-bone model, to evaluate the possible biomechanical significance of this effect on femoral component loosening of high flexion implants as reported in the literature. The analysis shows that one of the effects of the shear reversal was a switch between large compressive and large tensile principal strains, from knee extension to flexion, respectively, in the region of the anterior flange of the femoral component. Together with the known material limits of cement and bone, this large mismatch in strains as a function of knee position provides new insight into how and why knee implants may fail in patients who perform frequent squatting.

摘要

以往关于蹲姿的步态研究表明,在进行全负重深度屈膝蹲时,胫股关节剪切反作用力的方向会迅速反转。对于日常生活活动需要频繁蹲姿的患者,这种剪切力反转对膝关节植入物负荷需求的影响尚未得到考虑。在本文中,我们在有限元膝关节植入物-骨骼模型中对剪切力反转效应进行了讨论和模拟,以评估该效应如文献报道的那样对高屈曲植入物股骨部件松动可能具有的生物力学意义。分析表明,剪切力反转的效应之一是,在股骨部件前凸缘区域,分别从膝关节伸展到屈曲时,主应变在大压缩应变和大拉伸应变之间切换。结合已知的骨水泥和骨骼材料极限,这种随膝关节位置变化的应变大幅不匹配,为频繁蹲姿患者的膝关节植入物如何以及为何会失效提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbb8/4054786/0e672e60f0a7/TSWJ2014-785175.001.jpg

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