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Durability of polymer matrix composites for infrastructure: The role of the interphase.

机译:基础设施用聚合物基复合材料的耐久性:相间的作用。

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摘要

As fiber reinforced polymer matrix composites find greater use in markets such as civil infrastructure and ground transportation, the expectations placed on these materials are ever increasing. The overall cost and reliability have become the drivers of these high performance materials and have led to the disappearance of resins such as bismaleimides (BMI). cyanate esters and other high performance polyimides and epoxys. In their place polymers, such polyester and vinylester have arisen. The reinforcing fiber scenario has also undergone changes from the high quality and performance assured IM7 and AS4 to cheaper and hybrid systems consisting of both glass and low cost carbon. Manufacturing processes have had their share of changes too with processes such as pultrusion and other mass production techniques replacing hand lay-up and resin transfer molding. All of this has however come with little or no concession on material performance.; The motivation of the present research has therefore been to try to improve the properties of these low cost composites by better understanding the constituent materials (fiber and matrix) and the region that lies in-between them namely the interphase.; In order to achieve this. working with controls is necessary and the present discourse therefore deals with the AS4 fiber system from Hexcel Corporation and the vinyl ester resin, Derakane 441-400 from The Dow Chemical Company. The following eight chapters sum up the work done thus far on composites made with sized fibers and the above mentioned resin and fiber systems. They are in the form of publications that have either been accepted. submitted or going to be submitted to various peer reviewed journals. The sizings used have been poly(vinylpyrrolidone) PVP and Polyhydroxyether (Phenoxy) thermoplastic polymers and G' an industrial sizing material supplied by Hexcel. A number of issues have been addressed ranging from viscoelastic relaxation to enviro-mechanical durability. Chapter 1 deals with the influence of the sizing material on the fatigue response of cross ply composites made with the help of resin infusion molding. Chapter 2 describes the effects of a controlled set of interphase polymers that have the saine chemical structure but differ from each other in polarity. The importance of the atomic force microscope (AFM) to view and perform nano-indentations on the interphase regions has been demonstrated. Finally, it attempts to tie everything together with the help of the fatigue response of the different composites. Chapter 3 deals only with the vinyl ester resin and examines the influence of network structure on the molecular relaxation behavior (cooperativity) of the glassy polymer. It also tries to make connections between structural features of the glass and fracture toughness as measured in it's glassy state. Chapter 4 extends the results obtained in chapter 3 to examine the cooperativity of pultruded composites made with the different sizings. A correlation between strength and cooperativity is found to exist, with systems having greater cooperativity being stronger. Chapter 5 moves into the area of hygrothermal aging of Derakane 441-400 resin. It looks specifically at identifying a mechanism for the unusual moisture uptake behavior of the polymer subjected to a thermal-spiking environment. This it does by identifying the presence of hydrogen bonding in the resin. Finally, chapters 6 to 8 present experimental and analytical results obtained on PVP K90, Phenoxy and G' sized, AS4/Derakane 411-350 LI vinyl ester composites that were pultruded at Strongwell Inc., on their lab-scale pultruder in Bristol, Virginia.
机译:随着纤维增强的聚合物基复合材料在民用基础设施和地面运输等市场中得到越来越多的使用,人们对这些材料的期望不断提高。总体成本和可靠性已成为这些高性能材料的驱动力,并导致诸如双马来酰亚胺(BMI)等树脂的消失。氰酸酯和其他高性能聚酰亚胺和环氧树脂。代替它们的是聚合物,例如聚酯和乙烯基酯。增强纤维方案也经历了从高质量和性能得到保证的IM7和AS4到由玻璃和低成本碳组成的更便宜的混合系统的变化。随着拉挤成型和其他批量生产技术取代手工成型和树脂传递模塑成型,制造工艺也发生了变化。然而,所有这些在材料性能上几乎没有或没有让步。因此,本研究的动机是试图通过更好地理解组成材料(纤维和基质)以及它们之间的区域(即中间相)来改善这些低成本复合材料的性能。为了做到这一点。与控件一起工作是必要的,因此,本文将讨论Hexcel Corporation的AS4纤维系统和The Dow Chemical Company的乙烯基酯树脂Derakane 441-400。接下来的八章总结了迄今为止在由上浆纤维以及上述树脂和纤维体系制成的复合材料方面所做的工作。它们采用已被接受的出版物形式。已提交或将要提交给各种同行评审期刊。所使用的施胶剂是聚(乙烯基吡咯烷酮)PVP和聚羟基醚(苯氧基)热塑性聚合物,G'是Hexcel提供的工业施胶剂。从粘弹性松弛到环境机械耐久性,已经解决了许多问题。第1章讨论了上浆材料对借助树脂注入成型法制成的交叉层复合材料疲劳响应的影响。第2章介绍了一组受控的相间聚合物的作用,这些相间聚合物具有赛因化学结构,但极性互不相同。已经证明了原子力显微镜(AFM)在相间区域上观察和执行纳米压痕的重要性。最后,它试图借助不同复合材料的疲劳响应将所有东西结合在一起。第三章仅涉及乙烯基酯树脂,并研究了网络结构对玻璃态聚合物分子弛豫行为(协同性)的影响。它还尝试在玻璃的玻璃态下测量玻璃的结构特征和断裂韧性之间建立联系。第4章扩展了第3章中获得的结果,以研究使用不同尺寸的拉挤复合材料的配合性。发现在强度和合作性之间存在相关性,具有更大合作性的系统更强。第5章介绍了Derakane 441-400树脂的湿热老化领域。它专门着眼于确定在热刺环境下聚合物异常吸湿行为的机理。这是通过确定树脂中是否存在氢键来实现的。最后,第6至第8章介绍了在弗吉尼亚州布里斯托尔的实验室规模拉挤机上拉拔的PVP K90,苯氧基和G'尺寸,AS4 / Derakane 411-350 LI乙烯基酯复合材料的实验和分析结果。 。

著录项

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 259 p.
  • 总页数 259
  • 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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