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Thermomechanical properties of polyurethane shape memory polymer-experiment and modelling

机译:聚氨酯形状记忆聚合物的热力学性能-实验与建模

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摘要

In this paper extensive research on the polyurethane shape memory polymer (PU-SMP) is reported, including its structure analysis, our experimental investigation of its thermomechanical properties and its modelling. The influence of the effects of thermomechanical couplings on the SMP behaviour during tension at room temperature is studied using a fast and sensitive infrared camera. It is shown that the thermomechanical behaviour of the SMP significantly depends on the strain rate: at a higher strain rate higher stress and temperature values are obtained. This indicates that an increase of the strain rate leads to activation of different deformation mechanisms at the micro-scale, along with reorientation and alignment of the molecular chains. Furthermore, influence of temperature on the SMP's mechanical behaviour is studied. It is observed during the loading in a thermal chamber that at the temperature 20 degrees C below the glass transition temperature (T-g) the PU-SMP strengthens about six times compared to the material above T-g but does not exhibit the shape recovery. A finite-strain constitutive model is formulated, where the SMP is described as a two-phase material composed of a hyperelastic rubbery phase and elastic-viscoplastic glassy phase. The volume content of phases is governed by the current temperature. Finally, model predictions are compared with the experimental results.
机译:在本文中,对聚氨酯形状记忆聚合物(PU-SMP)进行了广泛的研究,包括其结构分析,我们对其热机械性能的实验研究和建模。使用快速灵敏的红外热像仪研究了在室温下热机械耦合对SMP行为的影响。结果表明,SMP的热机械行为很大程度上取决于应变速率:在较高的应变速率下,可以获得较高的应力和温度值。这表明应变率的增加导致微观尺度上不同变形机制的激活,以及分子链的重新定向和排列。此外,研究了温度对SMP力学性能的影响。观察到在热室中装载期间,在低于玻璃化转变温度(T-g)20摄氏度的温度下,PU-SMP的强度是T-g之上的材料的六倍,但并未表现出形状恢复。建立了有限应变本构模型,其中SMP被描述为由超弹性橡胶相和弹性粘塑性玻璃相组成的两相材料。相的体积含量由当前温度控制。最后,将模型预测与实验结果进行比较。

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