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首页> 外文期刊>Journal of Applied Mechanics >Thermoviscoplastic Modeling and Testing of Shape Memory Polymer Based Self-Healing Syntactic Foam Programmed at Glassy Temperature
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Thermoviscoplastic Modeling and Testing of Shape Memory Polymer Based Self-Healing Syntactic Foam Programmed at Glassy Temperature

机译:玻化温度下基于形状记忆聚合物的自愈句法泡沫的热粘塑性建模和测试

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Traditionally, programming of shape memory polymer (SMP) material requires initial heating above the glass transition temperature (Tg), subsequent cooling below Tg and removal of the applied load. Therefore, the shape fixity process is inconvenient for some applications. Most recently, a new and effective approach, which programs glass transition activated SMPs directly at temperatures well below Tg,was introduced by Li and Xu [2011, “Thermomechanical Behavior of Shape Memory Polymer Programmed at Glassy Temperature: Testing and Constitutive Modeling,” J. Mech. Phys. Solids, 59(6), pp. 1231–1250. The 1D compression programming below Tg and free shape recovery were extensively investigated both experimentally and analytically. The current work extends this study into a shape memory polymer based self-healing syntactic foam, which was found to be capable of self-sealing structural scale damage repeatedly, efficiently, and almost autonomously [Li and John, 2008, “A Self-Healing Smart Syntactic Foam Under Multiple Impacts,” Compos. Sci. Technol., 68(15–16), pp. 3337–3343.]. A structural-relaxation constitutive model featuring damage-allowable thermoviscoplasticity was then developed to predict the nonlinear shape memory behavior of the SMP based syntactic foam programmed at glassy temperatures. After validated by both 1D (compression) and 2D (compression in longitudinal direction and tension in transverse direction) tests, the constitutive model was used to evaluate the effects of several design parameters on the thermomechanical behavior of the SMP based syntactic foam. It is concluded that the model is a useful tool for designing and training this novel self-healing composite.
机译:传统上,对形状记忆聚合物(SMP)材料进行编程需要先将其加热到玻璃化转变温度(Tg)以上,然后将其冷却到Tg以下并除去施加的载荷。因此,形状固定过程对于某些应用是不方便的。最近,Li和Xu提出了一种新的有效方法,该方法可在远低于Tg的温度下直接编程玻璃化转变活化的SMP [2011,“在玻璃温度下编程的形状记忆聚合物的热力学行为:测试和本构模型”,J机甲物理固体,59(6),第1231至1250页。低于Tg的一维压缩程序和自由形状恢复已在实验和分析上进行了广泛研究。当前的工作将这项研究扩展到基于形状记忆聚合物的自修复句法泡沫塑料,发现该泡沫材料能够反复,有效和几乎自主地自我密封结构规模损伤[Li and John,2008,“ A Self-Healing”多重影响下的智能句法泡沫”,Compos。科学技术,68(15–16),第3337–3343页。]。然后,开发了一种具有结构特征的本构模型,其特征在于允许破坏的热粘塑性,以预测玻璃化温度下编程的基于SMP的复合泡沫的非线性形状记忆行为。经过一维(压缩)和二维(纵向压缩和横向拉伸)测试的验证后,本构模型用于评估几个设计参数对基于SMP的复合泡沫的热机械性能的影响。结论是该模型是设计和训练这种新颖的自愈复合材料的有用工具。

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