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Mixed-mode crack growth in bonded composite joints under standard and impact-fatigue loading

机译:标准载荷和冲击疲劳载荷下复合材料复合接头的混合模式裂纹扩展

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Carbon fibre reinforced polymers (CFRPs) are now well established in many high-performance applications and look set to see increased usage in the future, especially if lower cost manufacturing and solutions to certain technical issues, such as poor out-of-plane strength, can be achieved. A significant question when manufacturing with CFRP is the best joining technique to use, with adhesive bonding and mechanical fastening currently the two most popular methods. It is a common view that mechanical fastening is preferred for thicker sections and adhesive bonding for thinner ones; however, advances in the technology and better understanding of ways to design joints have lead to increasing consideration of adhesive bonding for traditionally mechanically fastened joints. In high-performance applications fatigue loading is likely and in some cases repetitive low-energy impacts, or impact fatigue, can appear in the load spectrum. This article looks at mixed-mode crack growth in epoxy bonded CFRP joints in standard and impact fatigue. It is shown that the back-face strain technique can be used to monitor cracking in lap-strap joints (LSJs) and piezo strain gauges can be used to measure the strain response of impacted samples. It is seen that there is significant variation in the failure modes seen in the samples and that the crack propagation rate is highly dependent on the fracture mode. Furthermore, it is found that the crack propagation rate is higher in impact fatigue than in standard fatigue even when the maximum load is significantly lower.
机译:碳纤维增强聚合物(CFRP)现在已经在许多高性能应用中建立了良好的地位,并且有望在未来得到越来越多的使用,特别是在制造成本较低且解决了某些技术问题(例如面外强度低,可以实现。使用CFRP进行制造时,一个重要的问题是要使用的最佳连接技术,目前,粘合剂粘结和机械紧固是两种最受欢迎​​的方法。普遍认为,较厚的部分最好采用机械紧固,较薄的部分最好采用粘接。但是,技术的进步和对接缝设计方法的更好理解导致人们越来越多地考虑对传统上机械固定的接缝进行粘接。在高性能应用中,可能会产生疲劳载荷,并且在某些情况下,载荷谱中可能会出现重复的低能耗冲击或冲击疲劳。本文着眼于标准疲劳强度和冲击疲劳强度的环氧CFRP接头的混合模式裂纹扩展。结果表明,背面应变技术可用于监测搭接接头(LSJ)的开裂,而压电应变仪可用于测量受冲击样品的应变响应。可以看出,在样品中看到的破坏模式有很大的变化,并且裂纹的扩展速率高度依赖于断裂模式。此外,发现即使最大负载显着降低,冲击疲劳的裂纹扩展率也比标准疲劳的裂纹扩展率高。

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