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Fatigue crack propagation in microcapsule-toughened epoxy

机译:微胶囊增韧环氧树脂中的疲劳裂纹扩展

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摘要

The addition of liquid-filled urea-formaldehyde (UF) microcapsules to an epoxy matrix leads to significant reduction in fatigue crack growth rate and corresponding increase in fatigue life. Mode-I fatigue crack propagation is measured using a tapered double-cantilever beam (TDCB) specimen for a range of microcapsule concentrations and sizes: 0, 5, 10, and 20% by weight and 50, 180, and 460 mu m diameter. Cyclic crack growth in both the neat epoxy and epoxy filled with microcapsules obeys the Paris power law. Above a transition value of the applied stress intensity factor Delta K-T, which corresponds to loading conditions where the size of the plastic zone approaches the size of the embedded microcapsules, the Paris law exponent decreases with increasing content of microcapsules, ranging from 9.7 for neat epoxy to approximately 4.5 for concentrations above 10 wt% microcapsules. Improved resistance to fatigue crack propagation, indicated by both the decreased crack growth rates and increased cyclic stress intensity for the onset of unstable fatigue-crack growth, is attributed to toughening mechanisms induced by the embedded microcapsules as well as crack shielding due to the release of fluid as the capsules are ruptured. In addition to increasing the inherent fatigue life of epoxy, embedded microcapsules filled with an appropriate healing agent provide a potential mechanism for self-healing of fatigue damage.
机译:将液体填充的脲甲醛(UF)微胶囊添加到环氧基质中会导致疲劳裂纹扩展率显着降低,并相应地延长疲劳寿命。使用锥形双悬臂梁(TDCB)标本对一系列微胶囊浓度和尺寸(0、5、10和20%重量百分比以及50、180和460微米直径)测量I型疲劳裂纹扩展。纯环氧树脂和填充有微胶囊的环氧树脂的循环裂纹扩展均符合巴黎幂定律。高于施加的应力强度因子Delta KT的过渡值时,该过渡值对应于塑料区大小接近嵌入式微胶囊大小的加载条件,巴黎定律指数随微胶囊含量的增加而降低,对于纯净环氧树脂,其范围为9.7对于浓度高于10 wt%的微胶囊,应将其浓缩至约4.5。对疲劳裂纹扩展的抵抗力的提高,表现为裂纹增长速率的降低和周期性疲劳强度的增加(由于不稳定的疲劳裂纹增长的开始),这归因于嵌入的微囊体所引起的增韧机制,以及由于释放了微囊而引起的裂纹屏蔽。胶囊破裂时液体流失。除了增加环氧树脂固有的疲劳寿命外,填充有适当愈合剂的嵌入式微囊还为疲劳损伤的自我修复提供了潜在的机制。

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