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Fatigue damage tracking and life prediction of fiberglass composites using a laser induced graphene interlayer

机译:利用激光诱导石墨烯层间疲劳损伤玻璃纤维复合材料的疲劳损伤跟踪和寿命预测

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摘要

Fiberglass-reinforced composite materials are commonly used in engineering structures subjected to dynamic loading, such as wind turbine blades, automobiles, and aircraft, where they experience a wide range of unpredictable operating conditions. The ability to monitor these structures while in operation and predict their remaining structural life without requiring their removal from service has the potential to drastically reduce maintenance costs and improve reliability. This work exploits piezoresistive laser induced graphene (LIG) integrated into fiberglass-reinforced composites for in-situ fatigue damage monitoring and lifespan prediction. The LIG is integrated within fiberglass composites using a transfer-printing process that is scalable with the potential for automation, thus reducing barriers for widespread application. The addition of the conductive LIG within the traditionally insulating fiberglass composites enables direct in-situ damage monitoring through simple passive resistance measurements during tension-tension fatigue loading. The accumulation and propagation of structural damage are detected throughout the fatigue life of the composite through changes to the electrical resistance measurements, and the measurement trends are further used to predict the onset of catastrophic composite failure. Thus, this work results in a scalable and multifunctional composite material with self-sensing capabilities for potential use in high-performing, dynamic, and flexible composite structures.
机译:玻璃纤维增​​强的复合材料通常用于经过动态负载的工程结构,如风涡轮机叶片,汽车和飞机,在那里经历广泛的不可预测的操作条件。在操作中监控这些结构并预测其剩余的结构寿命,而不需要从服务的删除的情况下,有可能大大降低维护成本并提高可靠性。这项工作利用压阻式激光诱导的石墨烯(LIG)集成到玻璃纤维增​​强复合材料中,用于原位疲劳损伤监测和寿命预测。使用具有自动化潜力的转印印刷工艺将LIG集成在玻璃纤维复合材料中,从而降低了广泛应用的障碍。在传统上绝缘玻璃纤维复合材料中添加导电Lig通过在张紧疲劳负载期间通过简单的无源电阻测量来直接原位损坏监测。通过对电阻测量的变化,在复合材料的疲劳寿命中检测到结构损伤的积累和传播,并且进一步使用测量趋势来预测灾难性复合失败的开始。因此,该工作导致可伸缩和多功能的复合材料,具有自感应能力,用于高性能,动态和柔性的复合结构。

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