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首页> 外文期刊>Biomaterials >Thermomechanical behavior of virgin and highly crosslinked ultra-high molecular weight polyethylene used in total joint replacements.
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Thermomechanical behavior of virgin and highly crosslinked ultra-high molecular weight polyethylene used in total joint replacements.

机译:用于全关节置换的原始和高度交联的超高分子量聚乙烯的热力学行为。

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Three series of uniaxial tension and compression tests were conducted on two conventional and two highly crosslinked ultra-high molecular weight polyethylenes (UHMWPEs) all prepared from the same lot of medical grade GUR 1050. The conventional materials were unirradiated (control) and gamma irradiated in nitrogen with a dose of 30 kGy. The highly crosslinked UHMWPEs were gamma irradiated at room temperature with 100 kGy and then thermally processed by either annealing below the melt transition at 100 degrees C or by remelting above the melt transition at 150 degrees C. The true stress-strain behavior of the four UHMWPE materials was characterized as a function of strain rate (between 0.02 and 0.10 s(-1)) and test temperature (20-60 degrees C). Although annealing and remelting of UHMWPE are primarily considered as methods of improving oxidation resistance, thermal processing was found to significantly impact the crystallinity, and hence the mechanical behavior, of the highly crosslinked UHMWPE. The crystallinity and radiation dose were key predictors of the uniaxial yielding, plastic flow, and failure properties of conventional and highly crosslinked UHMWPEs. The thermomechanical behavior of UHMWPE was accurately predicted using an Arrhenius model, and the associated activation energies for thermal softening were related to the crystallinity of the polymers. The conventional and highly crosslinked UHMWPEs exhibited low strain rate dependence in power law relationships, comparable to metals. In light of the unifying trends observed in the true stress-strain curves of the four materials investigated in this study, both crosslinking (governed by the gamma radiation dose) and crystallinity (governed by the thermal processing) were found to be useful predictors of the mechanical behavior of UHMWPE for a wide range of test temperatures and rates. The data collected in this study will be used to develop constitutive models based on the physics of polymer systems for predicting the thermomechanical behavior of conventional and crosslinked UHMWPE used in total joint replacements.
机译:对两种常规和两种高度交联的超高分子量聚乙烯(UHMWPE)进行了三个系列的单轴拉伸和压缩试验,这些聚乙烯均由同一批医用级GUR 1050制备。常规材料未经辐照(对照)和γ辐照。氮,剂量为30 kGy。高度交联的UHMWPE在室温下以100 kGy进行γ辐射,然后通过在低于100摄氏度的熔融转变温度以下退火或通过在高于150摄氏度的熔融转变温度以上重熔进行热处理。四种UHMWPE的真实应力-应变行为材料的特性是应变率(0.02和0.10 s(-1)之间)和测试温度(20-60摄氏度)的函数。尽管UHMWPE的退火和重熔主要被认为是提高抗氧化性的方法,但发现热处理会严重影响高度交联的UHMWPE的结晶度,进而影响其机械性能。结晶度和辐射剂量是常规和高度交联的超高分子量聚乙烯单轴屈服,塑性流动和破坏性能的关键预测指标。使用Arrhenius模型可以准确预测UHMWPE的热力学行为,并且相关的热软化活化能与聚合物的结晶度有关。与金属相比,常规的和高度交联的UHMWPE在幂律关系上显示出较低的应变速率依赖性。根据在本研究中研究的四种材料的真实应力-应变曲线中观察到的统一趋势,发现交联(由伽马辐射剂量控制)和结晶度(由热处理控制)都是预测碳纳米管有用的指标。 UHMWPE在各种测试温度和速率下的机械性能。这项研究中收集的数据将用于基于聚合物系统的物理性质开发本构模型,以预测用于全关节置换的常规和交联UHMWPE的热机械行为。

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