High-speed imaging on static tensile test for unidirectional CFRP

被引:0
作者
Kusano, Hideaki [1 ]
Aoki, Yuichiro [2 ]
Hirano, Yoshiyasu [2 ]
Kondo, Yasushi [3 ]
Nagao, Yosuke [2 ]
机构
[1] Shimadzu Co Ltd, Dept Mkt, Analyt & Measuring Instruments Div, Chiyoda Ku, 3 Kanda Nishikicho,1 Chome, Tokyo 1018448, Japan
[2] Japan Aerosp Explorat Agcy, Aerosp Res & Dev Directorate, Adv Mat Grp, Mitaka, Tokyo 1810015, Japan
[3] Shimadzu Co Ltd, Dept Dev, Analyt & Measuring Instruments Div, Nakagyo Ku, Kyoto 6048511, Japan
来源
28TH INTERNATIONAL CONGRESS ON HIGH-SPEED IMAGING AND PHOTONICS | 2009年 / 7126卷
关键词
High-speed imaging; Unidirectional CFRP; Static Tensile Test; COMPOSITES; STRENGTH;
D O I
10.1117/12.821752
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The objective of this study is to clarify the fracture mechanism of unidirectional CFRP (Carbon Fiber Reinforced Plastics) under static tensile loading. The advantages of CFRP are higher specific stiffness and strength than the metal material. The use of CFRP is increasing in not only the aerospace and rapid transit railway industries but also the sports, leisure and automotive industries. There are some proposed theories to find out the tensile fracture of CFRP by using numerical calculation [1], [2] and numerical simulation [3], [4]. But the tensile fracture mechanism of unidirectional CFRP has not been experimentally made clear because the fracture speed of unidirectional CFRP is quite high. We selected the intermediate modulus and high strength unidirectional CFRP laminate which is a typical material used in the aerospace field. The fracture process under static tensile loading was captured by a conventional high-speed camera and a new type High-speed Video Camera HPV-1 [5]. It was found that the duration of fracture is 200 microseconds or less, then images taken by a conventional camera doesn't have enough temporal-resolution. On the other hand, results obtained by HPV-1 have higher quality where the fracture process can be clearly observed.
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页数:9
相关论文
共 11 条
[1]  
ETOH TG, 2002, IEEE INT SOL STAT CI, P46
[2]  
ETOH TG, 2001, SPIE, V4183, P36
[3]  
JENKS MD, 2003, P 8 JAP INT SAMPE S
[4]  
Jones RM., 1998, Mechanics of composite materials, V2, P1
[5]  
KONDO Y, 2002, P 25 ICHSPP
[6]   Size effect on tensile strength of unidirectional CFRP composites - experiment and simulation [J].
Okabe, T ;
Takeda, N .
COMPOSITES SCIENCE AND TECHNOLOGY, 2002, 62 (15) :2053-2064
[7]  
Phoenix S.L., 2000, COMPREHENSIVE COMPOS, V1, P559, DOI DOI 10.1016/B0-08-042993-9/00056-5
[9]  
TANAKA M, 2007, P 16 INT C COMP MAT
[10]  
TANAKA M, 2003, ATEM 03 JSME MMD