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Creep-recovery behaviour of cork

机译:软木的蠕变恢复行为

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Creep tests were performed in cork samples under compression, at different temperatures between 0 and 50℃. Master curves for the creep behaviour along the radial and axial directions could be constructed from short-time creep experiments, that could be described by a simple empirical model. The temperature shift factors were used to build a relaxation plot, where, assuming an Arrhenius model, an activation energy of 172 kJ mol~(-1) was obtained from the data in the two principal directions. Comparison with previous dynamic mechanical analysis (DMA) and dielectric results suggests that the relaxation behaviour observed around room temperature could play an active role in the molecular mechanisms underlying the creep process in cork. From preliminary recovery studies it was seen that a fraction of the strain resulting from creep is preserved permanently, especially if the load is applied along the axial direction. This irreversible strain exhibited a linear relationship with the logarithm of the creep time, thus not being related to the irreversible viscous flow intrinsic to the material. Scanning electronic microscopy observations showed that creep could, in fact, lead to the bucking of the cellular structure of cork, this process being an active and time-dependent contributor for the permanent deformation of cork upon creep.
机译:在压缩条件下,在0至50℃之间的不同温度下对软木样品进行蠕变测试。沿径向和轴向方向的蠕变行为的主曲线可以通过短时蠕变实验构建,可以通过简单的经验模型进行描述。利用温度变化因子建立弛豫图,在假设Arrhenius模型的情况下,从两个主要方向的数据获得的活化能为172 kJ mol〜(-1)。与以前的动态力学分析(DMA)和介电结果比较表明,室温下观察到的弛豫行为可能在软木塞蠕变过程的分子机制中起积极作用。从初步的恢复研究中可以看出,蠕变引起的一部分应变被永久保留,尤其是在沿轴向施加载荷的情况下。该不可逆应变与蠕变时间的对数呈线性关系,因此与材料固有的不可逆粘性流无关。扫描电子显微镜观察表明,蠕变实际上可能导致软木塞的细胞结构变形,该过程是软木在蠕变时永久变形的活跃且与时间有关的因素。

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