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  • 陈平 ( 教授 )

    的个人主页 http://faculty.dlut.edu.cn/pingchen/zh_CN/index.htm

  •   教授   博士生导师   硕士生导师
  • 任职 : 辽宁省先进聚合物基复合材料重点实验室主任。
论文成果 当前位置: 中文主页 >> 科学研究 >> 论文成果
Thermal, mechanical properties and shape memory performance of a novel phthalide-containing epoxy resins

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论文类型:期刊论文
发表时间:2018-03-28
发表刊物:POLYMER
收录刊物:SCIE、EI
卷号:140
页面范围:326-333
ISSN号:0032-3861
关键字:Epoxy resin; Bismaleimide; Michael addition; Shape memory performance
摘要:A novel phthalide-containing aromatic amine (PBMI-DDE) was synthesized by Michael addition of 3,3-bis[4-(4-maleimidophenoxy) phenyl] phthalide (PBMI) and 4,4'-diaminodiphenylether (DDE), its chemical structure was confirmed by nuclear magnetic resonance (NMR) spectrometer and Fourier transform infrared (FTIR) spectrometer. A serial of phthalide-containing epoxy resins were prepared with the PBMI-DDE/DDE blends in different molar ratios as curing agents. The cure behavior, thermal and mechanical properties, and shape memory performance of the cured resins were carefully characterized using differential scanning calorimetry (DSC), thermogravimetric analyses (TGA), dynamic mechanical analyses (DMA), universal material testing machine and notched Izod impact test, respectively. DMA and TGA thermograms show the glassy storage modulus and the initial decomposition temperature increase while the rubbery storage modulus and the glass transition temperature are reduced as PBMI-DDE content increases. The investigations of mechanical properties exhibit a complicated trend with increasing PBMI-DDE content, and the epoxy resin with an equal molar ratio of PBMI-DDE/DDE has a maximum mechanical strength. The fracture morphology investigated by scanning electron microscope (SEM) indicates the existence of hole defects in the cured products with higher PBMI-DDE content. The shape memory performance of these fully cured epoxy networks is improved with PBMI-DDE content, and the shape fixity ratio (R-f) and shape recovery ratio (R-r) of the pure PBMI-DDE cured epoxy resins are both lager than 95% with a deformation strain above 12%. (C) 2018 Elsevier Ltd. All rights reserved.

 

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