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Crack initiation and viscoplasticity in polyethylene joint replacement components

机译:聚乙烯接头置换成分中的裂纹启动和粘胶塑性

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Ultrahigh molecular weight polyethylene (UHMWPE) is an abrasion resistant and bioinert polymer widely used as a bearing material in total joint replacements. Recent reports of fracture and crack initiation in these systems make the prediction of crack initiation a primary concern. Past work in assessing the resistance to crack propagation in UHMWPE has typically ignored the creeping (quasi-static) constitutive contribution to the process of failure. We conducted constant load experiments on pre-notched fracture specimens and observed the elapsed time to crack initiation and subsequent crack velocity as a function of the applied load. A hyperelastic-viscoplastic constitutive model was calibrated to three uniaxial tensile experiments; one at a constant crosshead velocity, and two delayed yield creep (viscoplastic) experiments at an engineering stress either slightly or moderately below the short-term yield strength, until the strain saturated or failure. The crack initiation phase of the fracture experiment was modeled in ABAQUS, predicting the time-dependent J-integral and average molecular chain stretch to be single-valued at the experimentally obtained crack initiation times for the three tested boundary conditions. The crack initiation time and propagation velocity were also found to scale with the applied load in agreement with an analytical power-law viscous fracture model.
机译:超高分子量聚乙烯(UHMWPE)是一种耐磨性,Bioinert聚合物广泛用作总接合置换中的轴承材料。最近关于这些系统的裂缝和裂纹启动的报告使得预测破裂启动是主要关注点。过去的工作在评估UHMWPE中抗裂纹传播的抵抗通常忽略了对失败过程的匍匐(准静态)本构贡献。我们对预缺口裂缝试样进行了恒定载荷实验,并观察到作为施加的载荷的函数裂开和随后的裂缝速度的经过时间。高级痉挛的粘液组成型模型校准三个单轴拉伸实验;在恒定的十字头速度下,两个延迟的屈服蠕变(粘塑料)实验在工程应力下略微或中度低于短期屈服强度,直至应变饱和或失效。断裂实验的裂纹启动阶段在ABAQUS中进行了建模,预测在实验获得的三个测试边界条件下在实验获得的裂纹引发时间上单值的时间依赖性J-积分和平均分子链延伸。还发现裂纹启动时间和传播速度与施加的负载与分析功率 - 法粘性裂缝模型相一致。

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