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首页> 外文期刊>Journal of biomaterials applications >Viscoelastic behaviors of ultrahigh molecular weight polyethylene under three-point bending and indentation loading.
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Viscoelastic behaviors of ultrahigh molecular weight polyethylene under three-point bending and indentation loading.

机译:超高分子量聚乙烯在三点弯曲和压痕载荷下的粘弹性行为。

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Dynamic mechanical properties under three-point bending and deformation behavior under indentation loading of an ultrahigh molecular weight polyethylene (UHMWPE) were investigated in this study. Dependence of its viscoelastic properties on temperature, frequency, load level, specimen geometry and heating rates were examined. The results showed that temperature and frequency had significant effects on the response of UHMWPE to the dynamic load. With the increase in temperature, the storage modulus (E') was decreased and the loss angle (tan delta) was increased, indicating an increase in the trend in viscoelastic response of the polymer at high temperature. On the other hand, when frequency was increased, higher E' and lower tan delta were observed, suggesting that the material behaved more elastically. While the two heating rates of 5 degrees C/min and 10 degrees C/min had little effect on E' and tan delta, the load level significantly influenced the dynamic mechanical properties of the polymer. UHMWPE showed quite different responses at 0.5 and 20 Hz than at 1-10 Hz, which is worth further investigation. The results from indentation experiment showed that temperature, specimen geometry and load level had significant effects on the response of UHMWPE to the indentation load. With the increase in temperature, the penetration depth was increased, indicating an increase in the deformation trend in the polymer at high temperature. High load led to high penetration. The time-temperature superposition (TTS) method could be used to predict the long-term penetration behaviors of the polymer. From TTS analysis, the activation energy associated with penetration deformation was obtained. Further analysis showed that it might be possible to increase the resistance of UHMEPE to indentation deformation by increasing the thickness and/or decreasing the diameter of the polymer samples.
机译:研究了超高分子量聚乙烯(UHMWPE)在压痕载荷下三点弯曲时的动态力学性能和变形行为。检查了其粘弹性质对温度,频率,载荷水平,试样几何形状和加热速率的依赖性。结果表明,温度和频率对超高分子量聚乙烯对动态载荷的响应有显着影响。随着温度的升高,储能模量(E')降低,损耗角(tanδ)增加,表明聚合物在高温下的粘弹性响应趋势增加。另一方面,当频率增加时,观察到较高的E'和较低的损耗角正切,表明该材料表现出更弹性。尽管5℃/ min和10℃/ min的两种加热速率对E'和tanδ几乎没有影响,但负载量显着影响了聚合物的动态力学性能。 UHMWPE在0.5和20 Hz时的响应与在1-10 Hz时的响应截然不同,值得进一步研究。压痕实验结果表明,温度,试样几何形状和载荷水平对UHMWPE对压痕载荷的响应有显着影响。随着温度的升高,渗透深度增加,表明在高温下聚合物的变形趋势增加。高负荷导致高渗透率。时间-温度叠加(TTS)方法可用于预测聚合物的长期渗透行为。通过TTS分析,获得了与穿透变形相关的活化能。进一步的分析表明,通过增加聚合物样品的厚度和/或减小直径,可以增加UHMEPE抵抗压痕变形的能力。

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