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Self-healing composites using thermally remendable polymers and electrical resistive heating.

机译:使用可热修复聚合物和电阻加热的自修复复合材料。

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摘要

The concept of self-healing composite using thermally remendable polymers and electrical resistive heating was proposed. A series of single-component thermally remendable polymers, mendomers, was introduced. One of the polymers, mendomer 401, was characterized using thermogravimetric analysis (TGA) and dynamic differential scanning calorimetry (DSC). The cure kinetics was studied using the dynamic DSC results. Ageing effect of polymerized mendomer 401 was investigated using Fourier transform infrared (FT-IR) spectroscopy and micro-indentation test.;A thermally remendable composite using mendomer 401 and carbon fabrics was fabricated using compressive molding method. The thermo-mechanical behavior was studied using dynamic mechanical thermal analysis (DMTA). Surface microcracks were induced using three-point bending and they were healed multiple times using electrical resistive heating. The healing behavior was confirmed by disappearance of microcracks using an optical microscope and a scanning electron microscope (SEM). Also, shape memory behavior was observed near the glass transition temperature of the polymer.;A composite panel was fabricated using a two-component thermally remendable polymer, 2MEP4F, and carbon fibers with the lay-up of [0/90/0] by NanoComposix. Vacuum assisted injection molding was used for the fabrication process. The thermomechanical properties were characterized using DMTA. Delaminations were induced using short span three-point bending test and they were healed multiple times using electrical resistive heating. The delaminated area was observed using X-ray micro-tomography before and after healing Shape memory behavior of the composite allowed the delaminated surfaces to have a physical contact, which is essential for healing.;To realize an addressable conducting network (ACN) for thermally remendable composites, metal electrodes were fabricated on carbon fiber composite laminates using various methods. The contact resistances between metal electrodes and the laminate were measured and compared. The microscopic interfaces between carbon fibers and metal electrodes were observed using SEM. Finally, to evaluate structural integrity of the composite panel upon heating using ACN, compressive load was applied to induce buckling. The critical loads were measured w/ and w/o heating and compared with finite element simulations. It is confirmed that resistive heating using ACN does not have a significant detrimental effect on the structural integrity during the healing process of the self-healing composite.
机译:提出了使用可热固化聚合物和电阻加热的自修复复合材料的概念。引入了一系列的单组分可热改性聚合物mendomers。使用热重分析(TGA)和动态差示扫描量热法(DSC)对聚合物之一mendomer 401进行了表征。使用动态DSC结果研究了固化动力学。采用傅里叶变换红外光谱(FT-IR)和显微压痕试验研究了聚合的mendomer 401的老化效果。;采用mendomer 401和碳纤维织物通过压缩成型法制备了可热固化的复合材料。使用动态机械热分析(DMTA)研究了热机械行为。使用三点弯曲诱导表面微裂纹,并使用电阻加热将其修复多次。使用光学显微镜和扫描电子显微镜(SEM)通过微裂纹的消失来证实其愈合行为。同样,在聚合物的玻璃化转变温度附近观察到了形状记忆行为。;使用两组分可热改性聚合物,2MEP4F和碳纤维以[0/90/0]铺层的方式制造了复合面板NanoComposix。真空辅助注射成型用于制造过程。使用DMTA表征热机械性质。使用短跨度三点弯曲测试诱导分层,并使用电阻加热将其修复多次。修复前后,使用X射线显微断层扫描观察分层区域,复合材料的形状记忆行为使分层表面具有物理接触,这对于修复至关重要。;实现热可寻址的导电网络(ACN)对于可推荐的复合材料,使用各种方法在碳纤维复合材料层压板上制造金属电极。测量并比较金属电极和层压板之间的接触电阻。使用SEM观察碳纤维和金属电极之间的微观界面。最后,为了评估使用ACN加热时复合板的结构完整性,施加了压缩载荷以引起屈曲。在不使用加热和不使用加热的情况下测量了临界载荷,并与有限元模拟进行了比较。可以确认的是,在自愈复合材料的修复过程中,使用ACN进行电阻加热对结构完整性没有明显的不利影响。

著录项

  • 作者

    Park, Jong Se.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 116 p.
  • 总页数 116
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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