Estimation of the effects of inset heights and slit configurations in an acetabular cup on the pull-out behavior of an artificial hip joint with a structure for preventing dislocation using finite element analysis

被引:0
作者
Yuki Kawamura
Mitsushi Ohmasa
Takayuki Kobayashi
Yoshihito Matsufuji
Makoto Saito
Yoshinori Uwa
Saiji Washio
Ei Yamamoto
机构
[1] Kindai University,Major of Biological System Engineering, Graduate School of Biology
[2] Kindai University,Oriented Science and Technology
[3] Animal Clinic Kobayashi,Department of Human Factors Engineering and Environmental Design, Faculty of Biology
[4] Kanazawa University,Oriented Science and Technology
[5] Shimizutech CO.,Department of Environmental and Preventive Medicine
[6] LTD.,Mechanical Engineering Dept. I, CAE Div. I, CAE BU.
[7] Uwa Technical Computing INC.,Department of Biomedical Engineering, Faculty of Biology
[8] Cybernet Systems CO.,Oriented Science and Technology
[9] LTD.,undefined
[10] Kindai University,undefined
来源
Medical & Biological Engineering & Computing | 2020年 / 58卷
关键词
Artificial hip joint; Prevention of joint dislocation; Pull-out force; Finite element method; Prosthetic design;
D O I
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中图分类号
学科分类号
摘要
Joint dislocation is a critical problem of total hip replacement. We have newly proposed an artificial hip joint with a structure that prevents dislocation. The proposed joint has a simple form with a femoral head partially covered with an acetabular cup. In the present study, the effects of inset heights and slit configurations of the cup on the pull-out forces of the joint were evaluated using finite element analysis. Joint models with different inset heights and those with or without a slit in the cup were used for the analyses to estimate the pull-out forces of the joint. In the case without the slit, the maximum pull-out force of the joint with 1.0 and 1.5 mm of the inset height was approximately 12 and 40 N, respectively. In the case of 1.0-mm inset height, the maximum force of the joint with and without the slit was approximately 9 and 12 N, respectively. These results reveal that the maximum force is markedly changed by the inset height and is moderately affected by the slit. Thus, we can gain insights into a strategy to optimally design an artificial joint in which dislocation does not occur easily.
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页码:2587 / 2601
页数:14
相关论文
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