首页> 外文期刊>Journal of orthopaedic research >Mixed-mode fracture toughness of the cobalt-chromium alloy/polymethylmethacrylate cement interface.
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Mixed-mode fracture toughness of the cobalt-chromium alloy/polymethylmethacrylate cement interface.

机译:钴铬合金/聚甲基丙烯酸甲酯水泥界面的混合模式断裂韧性。

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Mechanical debonding of the stem/cement interface has been implicated in the failure process of cemented femoral hip components. The nature of this failure process remains poorly understood due, in part, to limited understanding of how interfacial debonding occurs in response to a wide range of loading conditions. The purpose of this investigation was to determine the fracture toughness of the cobalt-chromium alloy/polymethylmethacrylate interface under mixed-mode loading conditions. The hypothesis was that the critical energy release rate was dependent on the phase angle of the crack tip and that the fracture response would be significantly different for a smooth compared with rough interface surface. A novel in-plane shear test fixture was developed with use of a combination of finite element and experimental fracture-mechanics tests. A wide range (-65-60 degrees) of phase angles was determined with the in-plane shear test and a clamped cantilever-beam test. Sixty experimental tests were performed for cobalt-chromium alloy bars with a plasma-sprayed coating or a precoat of polymethylmethacrylate over a satin-finished surface. For the specimens with the plasma-sprayed coating, critical energy release rates (500-700 J/m2) were not a function of the phase angle of the crack tip. In contrast, critical energy release rates (15-80 J/m2) were found to be strongly affected by the phase angle for the specimens precoated with polymethylmethacrylate. The critical energy release rate for specimens with the plasma-sprayed surface was significantly (p < 0.01) greater than for those precoated with polymethylmethacrylate. The critical energy release rate increased markedly with the phase angle of the crack tip for the specimens precoated with polymethylmethacrylate. The results suggest that the failure response of a stem with a plasma-sprayed surface may be insensitive to the loading angle of the crack tip, whereas a stem precoated with polymethylmethacrylate may be more likely to debond under tensile opening loading.
机译:股骨/水泥界面的机械剥离已经牵涉到骨水泥髋部件的破坏过程中。部分由于对有限的载荷条件下界面脱胶如何发生的了解有限,因此对这种失效过程的性质仍然知之甚少。这项研究的目的是确定在混合模式载荷条件下钴铬合金/聚甲基丙烯酸甲酯界面的断裂韧性。假设是,临界能量释放速率取决于裂纹尖端的相角,并且与粗糙界面相比,光滑时的断裂响应会明显不同。通过结合有限元和实验性断裂力学测试,开发了一种新型的面内剪切测试夹具。通过面内剪切试验和夹紧的悬臂梁试验确定了宽范围的(-65-60度)相角。对钴-铬合金棒进行了六十次实验测试,这些棒-铬表面经过等离子喷涂或聚甲基丙烯酸甲酯预涂。对于具有等离子喷涂涂层的样品,临界能量释放速率(500-700 J / m2)与裂纹尖端的相角无关。相反,发现预涂有聚甲基丙烯酸甲酯的样品的相角严重影响了临界能量释放速率(15-80 J / m2)。具有等离子喷涂表面的样品的临界能量释放速率显着(p <0.01)大于那些预涂有聚甲基丙烯酸甲酯的样品。对于预涂有聚甲基丙烯酸甲酯的样品,临界能量释放速率随着裂纹尖端的相角而显着增加。结果表明,具有等离子喷涂表面的杆的失效响应可能对裂纹尖端的加载角不敏感,而预涂有聚甲基丙烯酸甲酯的杆在拉伸张开载荷下更可能脱粘。

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