加载速度对金属-超高分子量聚乙烯接触力学的生物力学影响。

Q3 Medicine Open Biomedical Engineering Journal Pub Date : 2014-05-16 eCollection Date: 2014-01-01 DOI:10.2174/1874120701408010028
Radovan Zdero, Zahra S Bagheri, Mojtaba Rezaey, Emil H Schemitsch, Habiba Bougherara
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引用次数: 7

摘要

超高分子量聚乙烯(UHMWPE)是一种通常用于全髋关节和膝关节置换术的材料。许多研究已经评估了其粘弹性特性对蠕变、应力松弛和拉应力等现象的影响。然而,这些研究要么使用复杂的三维几何形状的全髋关节和膝关节置换术,要么单独使用超高分子量聚乙烯测试对象。目前还没有研究直接测量垂直载荷施加速度对金属球压痕超高分子量聚乙烯接触力学的影响。为此,使用金属球在1、20、40、60、80、100和120 mm/min的加载速度范围内,对一系列超高分子量聚乙烯平板试样施加垂直力。在界面处放置富士压敏胶片以测量接触面积。实验结果表明,最大接触力范围为3596 ~ 4520 N,与加载速度呈对数相关(R(2)=0.96)。平均接触面积为76.5 ~ 79.9 mm(2),与加载速度呈线性相关(R(2)=0.56)。平均接触应力范围为45.1 ~ 58.2 MPa,与加载速度呈对数相关(R(2)=0.95)。所有超高分子量聚乙烯试样均呈现出圆形的永久性表面损伤区域,且不随时间消失。本研究对了解髋关节和膝关节置换术在各种日常生活活动中的接触力学具有实际意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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The Biomechanical Effect of Loading Speed on Metal-on-UHMWPE Contact Mechanics.

Ultra high molecular weight polyethylene (UHMWPE) is a material commonly used in total hip and knee joint replacements. Numerous studies have assessed the effect of its viscoelastic properties on phenomena such as creep, stress relaxation, and tensile stress. However, these investigations either use the complex 3D geometries of total hip and knee replacements or UHMWPE test objects on their own. No studies have directly measured the effect of vertical load application speed on the contact mechanics of a metal sphere indenting UHMWPE. To this end, a metal ball was used to apply vertical force to a series of UHMWPE flat plate specimens over a wide range of loading speeds, namely, 1, 20, 40, 60, 80, 100, and 120 mm/min. Pressure sensitive Fujifilm was placed at the interface to measure contact area. Experimental results showed that maximum contact force ranged from 3596 to 4520 N and was logarithmically related (R(2)=0.96) to loading speed. Average contact area ranged from 76.5 to 79.9 mm(2) and was linearly related (R(2)=0.56) to loading speed. Average contact stress ranged from 45.1 to 58.2 MPa and was logarithmically related (R(2)=0.95) to loading speed. All UHMWPE specimens displayed a circular area of permanent surface damage, which did not disappear with time. This study has practical implications for understanding the contact mechanics of hip and knee replacements for a variety of activities of daily living.

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来源期刊
Open Biomedical Engineering Journal
Open Biomedical Engineering Journal Medicine-Medicine (miscellaneous)
CiteScore
1.60
自引率
0.00%
发文量
4
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