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Macroscopic characterization and phenomenologicai modeling of thermally-responsive shape memory polymers

机译:热响应形状记忆聚合物的宏观表征和现象学建模

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The rational design of shape memory polymer based adaptive structures requires a comprehensive examination of these materials under general multiaxial stress and strain states. This is also necessary for the identification of response functions and the evaluation of predictive capabilities of theoretical models proposed in the literature for this class of smart materials. In this paper we discuss different testing procedures and related methods of data analysis that furnish a firm experimental basis for the evaluation of functional properties of shape memory polymers (SMPs). Moreover, two broad classes of models are discussed, thermoelastic models used in the analysis of rate independent problems and thermo-viscoelastic models, which account for time effects typical for polymer materials. It is shown that the tensor-valued response functions of the general three-dimensional theory presented in this paper may be determined directly from strain/stress storage/recovery profiles measured in strain-controlled shape memory cycles performed in different deformation modes. Finally, the influence of thermo-temporal conditions on functional properties of SMPs is shortly discussed with the view of the evaluation of different classes of these materials and the corresponding theoretical models.
机译:基于形状记忆聚合物的自适应结构的合理设计要求在一般的多轴应力和应变状态下对这些材料进行全面检查。这对于识别响应函数和评估文献中针对此类智能材料提出的理论模型的预测能力也是必要的。在本文中,我们讨论了不同的测试程序和相关的数据分析方法,这些方法为评估形状记忆聚合物(SMP)的功能特性提供了坚实的实验基础。此外,讨论了两大类模型,用于分析速率无关问题的热弹性模型和考虑聚合物材料典型时间影响的热粘弹性模型。结果表明,本文提出的一般三维理论的张量值响应函数可以直接根据在不同变形模式下进行的应变控制形状记忆循环中测得的应变/应力存储/恢复曲线来确定。最后,从评估这些材料的不同类别和相应的理论模型的角度,简要讨论了热时条件对SMPs功能性能的影响。

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