单个高模量碳纤维复合材料压缩碎裂的拉曼光谱应力分布图

IF 8.3 1区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES
Cameron G. Woodgate , Richard S. Trask , Milo S.P. Shaffer , Stephen J. Eichhorn
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引用次数: 0

摘要

高模量碳纤维的碎裂与先进聚合物基复合材料在压缩过程中的失效机理有关。在模型单纤维复合材料碎裂过程中,利用原位空间分辨拉曼光谱绘制了失效过程中的局部应力分布图。位于 1580 cm-1 附近的特征石墨带(G 带)与面内碳-碳键有关;该带随纤维中的局部轴向应力而移动位置,并可进行校准。该分析绘制了局部应力随整体复合材料压缩应变增加而变化的图谱,确定了一系列关键事件,包括纤维断裂、界面脱粘以及纤维碎片间 "楔形 "的形成。拟合剪切滞后模型可提供界面剪切强度值。两例高模量 PAN 碳纤维(M46J 和 M55J)的多重失效图表明,由于碎片端部接触,可能会出现局部碎片弯曲。针对压缩过程中的碳纤维,提出了潜在碎裂事件的时间轴。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Raman spectroscopic stress mapping of single high modulus carbon fibre composite fragmentation in compression

Raman spectroscopic stress mapping of single high modulus carbon fibre composite fragmentation in compression

Fragmentation of high modulus carbon fibres is relevant to the failure mechanisms of advanced polymer matrix composites in compression. In situ spatially-resolved Raman spectroscopy during the fragmentation of model single fibre composites is used to map local stress distributions during failure events. The characteristic graphitic band (the G band) located around 1580 cm−1 is associated with the in-plane carbon-carbon bonds; this band shifts its position, and can be calibrated, with the local axial stress in the fibre. The analysis maps the evolution of local stresses with increasing overall composite compression strain, identifying a series of critical events, including fibre fracture, interfacial debonding, and the formation of inter-fragment ‘wedges’. Fitting shear lag models provides interfacial shear strength values. Multiple failure maps of two examples of high modulus PAN carbon fibres (M46J and M55J) demonstrate the possibility of local fragment bending due to fragment end contact. A timeline of potential fragmentation events is proposed for carbon fibres undergoing compression.

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来源期刊
Composites Science and Technology
Composites Science and Technology 工程技术-材料科学:复合
CiteScore
16.20
自引率
9.90%
发文量
611
审稿时长
33 days
期刊介绍: Composites Science and Technology publishes refereed original articles on the fundamental and applied science of engineering composites. The focus of this journal is on polymeric matrix composites with reinforcements/fillers ranging from nano- to macro-scale. CSTE encourages manuscripts reporting unique, innovative contributions to the physics, chemistry, materials science and applied mechanics aspects of advanced composites. Besides traditional fiber reinforced composites, novel composites with significant potential for engineering applications are encouraged.
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