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冲击组件对模块化髋关节柄部微动腐蚀的影响。

Effect of impact assembly on the fretting corrosion of modular hip tapers.

作者信息

Mroczkowski Matthew L, Hertzler Justin S, Humphrey Steven M, Johnson Todd, Blanchard Cheryl R

机构信息

Zimmer Corporate Research, 1800 W. Center Street, Warsaw, Indiana 46580, USA.

出版信息

J Orthop Res. 2006 Feb;24(2):271-9. doi: 10.1002/jor.20048.

Abstract

The goal of this study was to determine the effect of assembly load and local assembly environmental conditions on the fretting corrosion of modular femoral stem tapers. Femoral head/taper assemblies in both similar (CoCrMo/CoCrMo) and mixed (CoCrMo/Ti-6Al-4V) alloy combinations were evaluated using an electrochemical test method. Specimens were assembled under impact loading and by hand, in both wet and dry conditions. Incremental cyclic loads ranging from 89 to 5,340 N were applied at a frequency of 3 Hz in Ringer's solution at ambient temperature. During the test, both the open circuit potential (OCP) and fretting current (i(fret)) were measured using a saturated calomel electrode (SCE) and counter electrode, respectively. The results were comparable for both mixed and similar alloy couples. Decreases in OCP and increases in i(fret) (indicators of oxide film fracture and repassivation) were seen with increasing load magnitude, often occurring at loads well below those expected clinically. OCP at the 5,340 N cyclic load ranged from -30.4 to -103.7 mV versus SCE for similar alloy couples, and -19.1 to -181.4 mV versus SCE for mixed alloy couples. Mean peak fretting currents ranged from 0.84 to 1.42 microA and 1.06 to 3.12 microA for similar and mixed alloy couples, respectively. The larger current magnitudes and more negative shifts in OCP for mixed alloy couples indicate the difference in oxide film fracture behavior between titanium and cobalt alloys. The load at which OCP began to drop (onset of fretting) was dependent upon the assembly conditions for both material couples. Specimens assembled with impact loads in air showed the highest resistance to fretting. The results of this study indicate that the assembly load and the environment both play a role in the initial stability of modular hip taper connections.

摘要

本研究的目的是确定装配载荷和局部装配环境条件对模块化股骨干柄部微动腐蚀的影响。采用电化学测试方法对相似(钴铬钼/钴铬钼)和混合(钴铬钼/钛-6Al-4V)合金组合的股骨头/柄部组件进行了评估。在冲击载荷和手动条件下,于潮湿和干燥环境中对试样进行组装。在室温下的林格氏溶液中,以3 Hz的频率施加89至5340 N的增量循环载荷。在测试过程中,分别使用饱和甘汞电极(SCE)和对电极测量开路电位(OCP)和微动电流(i(fret))。混合合金对和相似合金对的结果具有可比性。随着载荷大小的增加,观察到OCP降低和i(fret)增加(氧化膜破裂和再钝化的指标),这通常发生在远低于临床预期的载荷下。对于相似合金对,在5340 N循环载荷下的OCP相对于SCE范围为-30.4至-103.7 mV,对于混合合金对,相对于SCE范围为-19.1至-181.4 mV。相似合金对和混合合金对的平均峰值微动电流分别为0.84至1.42 μA和1.06至3.12 μA。混合合金对较大的电流幅度和OCP更负的偏移表明钛合金和钴合金之间氧化膜破裂行为的差异。OCP开始下降(微动开始)时的载荷取决于两种材料对的装配条件。在空气中以冲击载荷组装的试样表现出最高的抗微动性。本研究结果表明,装配载荷和环境在模块化髋关节柄部连接的初始稳定性中均起作用。

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