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High performance hyperbranched polymers for improved processing and mechanical properties in thermoset composites.

机译:高性能超支化聚合物,可改善热固性复合材料的加工性能和机械性能。

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摘要

Hyperbranched polymers, specifically hyperbranched poly(arylene ether ketone imide)s (HBPAEKI), are here studied as blend additives in thermoset composites to improve processing and ultimate performance properties of the composite. Monomer synthesis for HBPAEKI was further advanced in this work leading to higher yields, fewer reactions, and shorter production times. A five step synthetic method with an overall yield of 12% was reduced to a three step process with an overall yield of 38%. Polymer was synthesized under varying conditions and end group chemistry for use in thermoset blends. NMR characterization allowed for the assignment of chemical shifts in monomer and cataloguing of shifts in polymer for use in future work to characterize degree of branching.;Cure kinetics of blends of HBPAEKI are explored through the use of differential scanning calorimetry (DSC) and chemorheology using small angle oscillatory shear. In a phenylethynyl terminated imide oligomer (PETI) thermoset resin, reactive phenylethynyl endcapped PAEKI (PEPAEKI) was found to retard cure while non reactive alkyl endcapped PAEKI was found to accelerate cure in DGEBA/DAH epoxy systems. Minimal effect was seen on early stage blend viscosity.;Composite properties tested focused on the effect on bulk fracture and interfacial shear strength. No significant effect was seen in fracture toughness by SENB. XPS was used to verify that PEPAEKI was surface active to DGEBA/DDS epoxy/air interfaces to the complete exclusion of the epoxy at the surface. Evidence was also seen consistent with surface activity in alkyl endcapped PAEKI in DGEBA/DAH systems, although the contrast is much lower. Effect of alkyl endcapped HBPAEKI on interfacial shear strength was examined through the use of t-peel and single fiber fracture (SFF) techniques. In some systems, t-peel indicates a clear improvement in peel force, proportional to the blend concentration. In SFF, interfacial shear strength was found to be equal or slightly reduced in the blends, although the difference was within experimental error.
机译:本文研究了超支化聚合物,特别是超支化聚(亚芳基醚酮酰亚胺)(HBPAEKI)作为热固性复合材料中的共混添加剂,以改善复合材料的加工性能和最终性能。 HBPAEKI的单体合成在这项工作中得到了进一步的发展,从而提高了产量,减少了反应并缩短了生产时间。将总产率为12%的五步合成方法简化为总产率为38%的三步法。在各种条件和端基化学条件下合成聚合物,以用于热固性共混物中。核磁共振(NMR)表征可用于分配单体中的化学位移以及对聚合物的位移进行分类,以供将来用于表征支化度。;通过使用差示扫描量热法(DSC)和化学流变学研究了HBPAEKI共混物的固化动力学小角度振荡剪切。在苯乙炔基封端的酰亚胺低聚物(PETI)热固性树脂中,发现反应性苯乙炔基封端的PAEKI(PEPAEKI)阻碍了固化,而发现非反应性烷基封端的PAEKI促进了DGEBA / DAH环氧体系的固化。对早期共混物粘度影响最小。;测试的综合性能集中在对整体断裂和界面剪切强度的影响上。 SENB对断裂韧性没有明显影响。 XPS用于验证PEPAEKI对DGEBA / DDS环氧树脂/空气界面具有表面活性,从而完全排除了表面的环氧树脂。在DGEBA / DAH系统中,也发现与烷基封端的PAEKI中的表面活性相符的证据,尽管对比度要低得多。通过使用t剥离和单纤维断裂(SFF)技术检查了烷基封端的HBPAKI对界面剪切强度的影响。在某些系统中,t剥离表示剥离力明显改善,与混合浓度成正比。在SFF中,发现混合物中的界面剪切强度相等或略有降低,尽管差异在实验误差范围内。

著录项

  • 作者

    Marsh, Timothy.;

  • 作者单位

    Case Western Reserve University.;

  • 授予单位 Case Western Reserve University.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 209 p.
  • 总页数 209
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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