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首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >Gamma Irradiation Alters Fatigue-Crack Behavior and Fracture Toughness in 1900H and GUR 1050 UHMWPE
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Gamma Irradiation Alters Fatigue-Crack Behavior and Fracture Toughness in 1900H and GUR 1050 UHMWPE

机译:伽马辐照改变1900H和GUR 1050 UHMWPE的疲劳裂纹行为和断裂韧性

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摘要

Pitting and delamination remain causative factors of polyethylene failure in total knee replacement. Gamma irradiation induces cross linking in ultra-high-molecular-weight polyethylene, which has been shown to improve wear resistance. Irradiation may reduce fracture toughness and fatigue strength, however, and the effects of irradiation are dependent upon the resin, processing technique, and radiation dose. The effects of varying levels of gamma irradiation (0, 33, 66, and 100 kGy) on the fracture toughness and fatigue-crack resistance of UHMWPE, isostatically molded from 1900H and GUR 1050 resins, were examined. Paris law regressions were performed to quantify fatigue-crack propagation rates as functions of change in stress intensity, and J-integral methods were used to quantify the elastic-plastic fracture toughness. The results indicated that gamma irradiation reduced the resistance of both materials to fatigue-crack growth, and that the reductions were radiation dosage and resin dependent. Irradiation at any level was detrimental to the fracture toughness of the 1900H specimens. Irradiation at 33 kGy increased fracture toughness for the GUR 1050 specimens, and substantial reductions were observed only at the highest irradiation level. Scanning electron microscopy of the fracture surface revealed diamond-like fracture patterns of the nonirradiated specimens indicative of ductile, multilevel fracture. Pronounced striations were apparent on these fracture surfaces, oriented perpendicular to the direction of crack growth. The striations appeared as folds in surface layers of the GUR 1050 specimens. At the highest irradiation levels, the striations were nearly eliminated on the fracture surfaces of the 1900H specimens, and were markedly less severe for the GUR 1050. These results demonstrated that at higher irradiation levels the materials became more brittle in fatigue, with less ductile folding and tearing of the fracture surfaces.
机译:点蚀和分层仍然是全膝关节置换术中聚乙烯衰竭的原因。伽马射线辐照会在超高分子量聚乙烯中引起交联,这已被证明可以改善耐磨性。辐照可能会降低断裂韧性和疲劳强度,但是辐照的效果取决于树脂,加工技术和辐照剂量。考察了不同水平的γ辐射(0、33、66和100 kGy)对用1900H和GUR 1050树脂等压成型的UHMWPE的断裂韧性和耐疲劳龟裂性的影响。进行了巴黎定律回归以量化疲劳裂纹扩展率,作为应力强度变化的函数,并使用J积分方法量化弹塑性断裂韧性。结果表明,γ辐照降低了两种材料对疲劳裂纹生长的抵抗力,并且降低的程度取决于辐射剂量和树脂依赖性。任何水平的辐射都不利于1900H试样的断裂韧性。 33 kGy的辐照量会提高GUR 1050试样的断裂韧性,只有在最高辐照水平下才能观察到明显的降低。断裂表面的扫描电子显微镜显示未辐照样品的类钻石状断裂图样,表明了韧性多级断裂。在垂直于裂纹扩展方向的这些断裂表面上明显可见条纹。在GUR 1050标本的表层中,条纹显示为褶皱。在最高辐照水平下,1900H试样的断裂表面上的条纹几乎被消除,而对于GUR 1050则明显不那么严重。这些结果表明,在更高辐照水平下,材料在疲劳中变得更脆,延展性折叠更少。和断裂表面的撕裂。

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