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Monitoring Pre-Stressed Composites Using Optical Fibre Sensors

机译:使用光纤传感器监控预应力复合材料

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摘要

Residual stresses in fibre reinforced composites can give rise to a number of undesired effects such as loss of dimensional stability and premature fracture. Hence, there is significant merit in developing processing techniques to mitigate the development of residual stresses. However, tracking and quantifying the development of these fabrication-induced stresses in real-time using conventional non-destructive techniques is not straightforward. This article reports on the design and evaluation of a technique for manufacturing pre-stressed composite panels from unidirectional E-glass/epoxy prepregs. Here, the magnitude of the applied pre-stress was monitored using an integrated load-cell. The pre-stressing rig was based on a flat-bed design which enabled autoclave-based processing. A method was developed to end-tab the laminated prepregs prior to pre-stressing. The development of process-induced residual strain was monitored in-situ using embedded optical fibre sensors. Surface-mounted electrical resistance strain gauges were used to measure the strain when the composite was unloaded from the pre-stressing rig at room temperature. Four pre-stress levels were applied prior to processing the laminated preforms in an autoclave. The results showed that the application of a pre-stress of 108 MPa to a unidirectional [0]16 E-glass/913 epoxy preform, reduced the residual strain in the composite from −600 µε (conventional processing without pre-stress) to approximately zero. A good correlation was observed between the data obtained from the surface-mounted electrical resistance strain gauge and the embedded optical fibre sensors. In addition to “neutralising” the residual stresses, superior axial orientation of the reinforcement can be obtained from pre-stressed composites. A subsequent publication will highlight the consequences of pres-stressing on fibre alignment, the tensile, flexural, compressive and fatigue performance of unidirectional E-glass composites.
机译:纤维增强复合材料中的残余应力会引起许多不良影响,例如尺寸稳定性损失和过早断裂。因此,开发减轻残余应力发展的加工技术具有重大优点。但是,使用传统的非破坏性技术实时跟踪和量化这些制造引起的应力的发展并非易事。本文报道了由单向电子玻璃/环氧树脂预浸料制造预应力复合板的技术的设计和评估。在此,使用集成式称重传感器监控施加的预应力大小。预应力钻机基于平板设计,可进行基于高压釜的处理。开发了一种在预应力之前对层压的预浸料进行端接的方法。使用嵌入式光纤传感器对过程引起的残余应变的发展进行了现场监测。当在室温下从预应力装置上卸下复合材料时,使用表面安装的电阻应变仪测量应变。在高压釜中处理层压的预成型件之前,施加四个预应力水平。结果表明,对单向[0] 16 E-glass / 913环氧预成型件施加108 MPa的预应力,可将复合材料中的残余应变从-600 µε(常规处理,无预应力)降低至大约零。从表面安装电阻应变仪和嵌入式光纤传感器获得的数据之间观察到良好的相关性。除了“消除”残余应力外,还可以从预应力复合材料中获得增强的卓越轴向取向。随后的出版物将重点介绍预应力对纤维定向,单向电子玻璃复合材料的拉伸,弯曲,压缩和疲劳性能的影响。

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