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Clustering effect on mechanical properties and failure mechanism of open hole high modulus carbon fiber reinforced composite laminates under compression

机译:压缩对开孔高模量碳纤维增强复合材料层合板力学性能和破坏机理的聚集效应

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摘要

The clustering effect of open hole high modulus carbon fiber (M40J) reinforced composite laminates under compressive load is studied with digital image correction (DIC), acoustic emission (AE) and high-resolution digital camera. Three types of quasi-isotropic laminates [45(m)/0(m)/-45(m)/90(m)](ns) (mxn=4) with different clustering levels (m=1, 2 and 4) are manufactured and tested to investigate their mechanical properties and failure mechanism. The experimental results indicate that as clustering levels increases, the open hole compressive strength gradually decreases accompanied by failure mode transferring from brittle fracture to delamination. Four types of sub-critical damages are found in the progressive failure process: splitting, delamination, layers buckling and layers compressive damage. The layers buckling and layers compressive damage can result in final failure of laminates yielding failure mode of delamination and brittle fracture, respectively. Besides, the effect of sub-critical damages and layer thickness on both mechanical properties and failure mode are discussed consequently obtaining the qualitative relationships between open hole compressive strength and material mechanical properties. The ratio of inter-fiber strength to layer longitudinal compressive strength is the crucial factor affecting the mechanical properties, and it should be controlled within the range where the push-in failure mode occurs for better properties.
机译:利用数字图像校正(DIC),声发射(AE)和高分辨率数码相机研究了开孔高模量碳纤维(M40J)增强复合材料层压板在压缩载荷下的聚集效应。三种类型的准各向同性层压板[45(m)/ 0(m)/-45(m)/ 90(m)](ns)(mxn = 4),具有不同的聚类级别(m = 1、2和4)制造和测试以研究其机械性能和失效机理。实验结果表明,随着团簇水平的增加,裸眼抗压强度逐渐降低,伴随破坏模式从脆性断裂转变为分层。在渐进式破坏过程中发现了四种类型的亚临界破坏:分裂,分层,层屈曲和层压缩破坏。层屈曲和层压缩损坏可导致层压板的最终破坏,分别产生分层和脆性断裂的破坏模式。此外,讨论了亚临界损伤和层厚对机械性能和破坏模式的影响,从而获得了裸眼抗压强度与材料力学性能之间的定性关系。纤维间强度与层的纵向抗压强度之比是影响机械性能的关键因素,为了获得更好的性能,应将其控制在发生压入破坏模式的范围内。

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