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Studies of Mechanical Behavior of HFPE-II-52 Polyimide in Extreme Environments

机译:HFPE-II-52聚酰亚胺在极端环境下的力学行为研究

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摘要

Motivated by demanding applications of polyimides and polyimide matrix composites, this study aims to understand the mechanical behavior of HFPE-II-52 polyimide at high temperature. First, a temperature dependent constitutive model combining linear viscoelasticity with viscoplasticity was developed. The viscoplastic part of the model uses a power law flow potential with state variable evolution. The full model was fit to a set of tension tests including constant strain rate, multistep stress relaxation, and creep and recovery tests in a range of temperature 285-315C. Second, the effects of moisture on the mechanical properties of polyimide were investigated. Separate experiments were designed to study the effects of both hydrolytic degradation and plasticization. The experiments consist of exposing the material sample to high temperature, moisture saturated conditions over a range of times and temperatures. Following moisture exposure, compression tests were performed to measure the reductions of stiffness and yield stress. A temperature and moisture dependent kinetic model was then developed and was integrated with the previous viscoelastic and viscoplastic model. Third, under certain hygrothermal conditions such as rapid heating with moisture saturated polyimide, the material may fail by high pressure water vapor induced blistering. Built on prior modeling efforts, a finite element approach is used to simulate the material unstable void growth. The simulation approach provides a means for the prediction of the critical temperature of blistering under different heating rates and moisture levels and allows for an investigation of the importance of the effects of pressure, thermal softening, hydrolytic degradation and plasticization on the blistering failure of polyimide.
机译:出于对聚酰亚胺和聚酰亚胺基复合材料的苛刻应用的推动,本研究旨在了解HFPE-II-52聚酰亚胺在高温下的机械性能。首先,建立了线性粘弹性与粘塑性相结合的温度依赖性本构模型。模型的粘塑性部分使用具有状态变量演化的幂律流势。完整模型适合一组拉伸测试,包括恒定应变率,多步应力松弛以及在285-315C温度范围内的蠕变和恢复测试。其次,研究了水分对聚酰亚胺机械性能的影响。设计了单独的实验来研究水解降解和增塑的影响。实验包括将材料样品暴露在一定时间和温度范围内的高温,湿气饱和条件下。暴露于湿气之后,进行压缩测试以测量刚度和屈服应力的降低。然后开发了温度和湿度相关的动力学模型,并将其与以前的粘弹性和粘塑性模型集成在一起。第三,在某些湿热条件下,例如用饱和水分的聚酰亚胺快速加热,材料可能会因高压水蒸气引起的起泡而失效。在先前建模工作的基础上,使用有限元方法来模拟材料不稳定的空隙生长。模拟方法为预测在不同加热速率和湿度下的起泡的临界温度提供了一种方法,并允许研究压力,热软化,水解降解和塑化对聚酰亚胺起泡失效的影响的重要性。

著录项

  • 作者

    Xu, Yi.;

  • 作者单位

    Cornell University.;

  • 授予单位 Cornell University.;
  • 学科 Mechanical engineering.;Mechanics.;Computer engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 130 p.
  • 总页数 130
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:38:54

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