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Multi-scale modeling of time-dependent response of smart sandwich constructions

机译:智能三明治结构的时变响应的多尺度建模

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摘要

Polymer and polymer based composite structures exhibit time-dependent response, leading to their being described as viscoelastic bodies. The rate of creep (or stress relaxation) in viscoelastic bodies increases with increasing the temperature of the bodies. In this study, we are interested in analyzing the time-dependent response of smart sandwich composites comprising of glass fiber reinforced polymer (GFRP) skins, polyurethane foam core, and lead zirconate titanate (PZT) wafers embedded in the GFRP skins. The PZT is used to monitor lifetime performance of sandwich composites. A multi-scale model is developed to integrate different constitutive models of the constituents in the sandwich structures. Quasi-static and creep tests are conducted for bulk epoxy, GFRP, polyurethane foam, and sandwich specimens under uniaxial tension and bending. The tests were done at room temperature and at 80 ℃. The experimental data are used for material characterization and model verification. The multi-scale model that is developed can be used to understand the effect of different responses of the constituents on the overall time-dependent behavior of sandwich structures and examine the feasibility of using PZT wafers for monitoring lifetime performance of sandwich structures.
机译:聚合物和基于聚合物的复合结构表现出随时间变化的响应,因此被称为粘弹性体。粘弹性物体中的蠕变(或应力松弛)速率随物体温度的升高而增加。在这项研究中,我们有兴趣分析包含玻璃纤维增​​强聚合物(GFRP)蒙皮,聚氨酯泡沫芯和嵌入在GFRP蒙皮中的锆钛酸铅(PZT)晶片的智能三明治复合材料的时间依赖性响应。 PZT用于监测夹芯复合材料的使用寿命。开发了一种多尺度模型,以整合夹心结构中成分的不同本构模型。对散装环氧树脂,玻璃纤维增​​强塑料,聚氨酯泡沫和夹心样品在单轴拉伸和弯曲下进行了准静态和蠕变测试。测试在室温和80℃下进行。实验数据用于材料表征和模型验证。所开发的多尺度模型可用于了解成分的不同响应对夹心结构的整体时间依赖性行为的影响,并检验使用PZT晶片监测夹心结构的寿命性能的可行性。

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