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Influence of particle size and particle size distribution on toughening mechanisms in rubber-modified epoxies

机译:粒度和粒度分布对橡胶改性环氧树脂增韧机制的影响

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摘要

The principal toughening mechanism of a substantially toughened, rubber-modified epoxy has again been shown to involve internal cavitation of the rubber particles and the subsequent formation of shear bands. Additional evidence supporting this sequence of events which provides a significant amount of toughness enhancement, is presented. However, in addition to this well-known mechanism, more subtle toughening mechanisms have been found in this work. Evidence for such mechanisms as crack deflection and particle bridging is shown under certain circumstances in rubber-modified epoxies. The occurrence of these toughening mechanisms appears to have a particle size dependence. Relatively large particles provide only a modest increase in fracture toughness by a particle bridging/crack deflection mechanism. In contrast, smaller particles provide a significant increase in toughness by cavitation-induced shear banding. A critical, minimum diameter for particles which act as bridging particles exists and this critical diameter appears to scale with the properties of the neat epoxy. Bimodal mixtures of epoxies containing small and large particles are also examined and no synergistic effects are observed.
机译:再次示出了基本上增韧的橡胶改性环氧树脂的主要增韧机理,涉及橡胶颗粒的内部空化和随后形成剪切带。提出了支持这一事件序列提供了大量韧性增强的额外证据。然而,除了这种众所周知的机理之外,在这项工作中已经发现了更微妙的增韧机制。在橡胶改性环氧树脂中的某些情况下显示了作为裂缝偏转和粒子桥接的这种机制的证据。这些增韧机构的发生似乎具有粒度依赖性。相对大的颗粒仅通过颗粒桥接/裂缝挠曲机制提供了裂缝韧性的适度增加。相反,较小的颗粒通过空化诱导的剪切绑带提供了韧性的显着增加。作为桥接颗粒的颗粒的临界最小直径存在,并且这种临界直径似乎与整个环氧树脂的性质相比。还检查了含有小和大颗粒的环氧树脂的双峰混合物,并且没有观察到协同效应。

著录项

  • 作者

    R. A. Pearson; A. F. Yee;

  • 作者单位
  • 年度 1991
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_us
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