纺织学报 ›› 2019, Vol. 40 ›› Issue (8): 55-63.doi: 10.13475/j.fzxb.20180506809
ZHANG Yannan, ZHOU Wei(), SHANG Yajing, ZHAO Wenzheng
摘要:
为监测三维四向编织复合材料拉伸过程中的变形与损伤破坏行为,采用声发射(AE)与数字图像相关互补技术,有效获取复合材料表面局部微变形信息和内部损伤源动态演变特征。结果表明:当复合材料拉伸应变值增加到0.45%左右时,纱线交织区域开始出现明显应变集中;随应变水平进一步提高,应变集中分别向纱线横向、纵向扩展,伴随较多AE信号,出现刚度下降;在应变水平接近1.13%时,表面应变场形成以纱线为受载主体的锯齿形应变集中带;基于K-means聚类分析表明,复合材料基体开裂、纤维/基体脱黏和纤维断裂对应的AE幅度分别为40~60、55~100、40~90 dB;随编织厚度增加,复合材料皮芯结构外部区域占比降低,导致材料抗拉强度下降,但AE峰值幅度和频率无明显变化。
中图分类号:
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