Nonlinear behavior mechanism of change in electrical resistance on 3D printed carbon fiber/PA6 composites during cyclic tests

被引:6
作者
Iizuka, Keisuke [1 ]
Todoroki, Akira [1 ]
机构
[1] Tokyo Inst Technol, Sch Engn, Dept Mech Engn, Tokyo, Japan
关键词
additive manufacturing; carbon fiber-reinforced plastic; structural health monitoring; electrical resistance change method; self-sensing; POLYMER-MATRIX COMPOSITE; FATIGUE DAMAGE; CFRP; STRAIN; PLA;
D O I
10.1080/09243046.2022.2055514
中图分类号
TB33 [复合材料];
学科分类号
摘要
The aim of this paper is to investigate the cause of nonlinear behavior mechanism of change in electrical resistance of 3D printed carbon fiber reinforced plastics (CFRP) due to tensile loading. The electrical resistance change method is a nondestructive testing method that helps detect strain and damage. In previous research for electrical resistance change method applied to 3D printed CFRP, the change in electrical resistance is different compared with the one of conventional CFRP. The behavior makes health monitoring difficult, and the phenomenon needs to be clarified. In this research, we focused on the electrode fabrication method and viscoelasticity effect during cyclic tests. Polishing and laser processing are used as surface treatments for electrode fabrication. Consequently, the treatments are found to affect the reverse piezo-resistivity. In addition, the decrease in electrical resistance depends on the test speeds of cyclic test. The viscoelasticity is found to affect the nonlinear behavior.
引用
收藏
页码:1 / 20
页数:20
相关论文
共 40 条
[1]   Elastic properties of 3D printed fibre-reinforced structures [J].
Al Abadi, Haider ;
Huu-Tai Thai ;
Paton-Cole, Vidal ;
Patel, V. I. .
COMPOSITE STRUCTURES, 2018, 193 :8-18
[2]   The electrical resistance response of continuous carbon fibre composite laminates to mechanical strain [J].
Angelidis, N ;
Wei, CY ;
Irving, PE .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2004, 35 (10) :1135-1147
[3]   An investigation into 3D printing of fibre reinforced thermoplastic composites [J].
Blok, L. G. ;
Longana, M. L. ;
Yu, H. ;
Woods, B. K. S. .
ADDITIVE MANUFACTURING, 2018, 22 :176-186
[4]  
Der Klift Van., 2016, OPEN J COMPOSITE MAT, V6, P18, DOI DOI 10.4236/OJCM.2016.61003
[5]   Additive manufacturing of woven carbon fibre polymer composites [J].
Dickson, Andrew N. ;
Ross, Keri-Ann ;
Dowling, Denis P. .
COMPOSITE STRUCTURES, 2018, 206 :637-643
[6]   Self-monitoring of fatigue damage in carbon fiber reinforced cement [J].
Fu, XL ;
Chung, DDL .
CEMENT AND CONCRETE RESEARCH, 1996, 26 (01) :15-20
[7]   Characterization of mechanical properties and fracture mode of additively manufactured carbon fiber and glass fiber reinforced thermoplastics [J].
Goh, G. D. ;
Dikshit, V. ;
Nagalingam, A. P. ;
Goh, G. L. ;
Agarwala, S. ;
Sing, S. L. ;
Wei, J. ;
Yeong, W. Y. .
MATERIALS & DESIGN, 2018, 137 :79-89
[8]   3D printed continuous CF/PA6 composites: Effect of microscopic voids on mechanical performance [J].
He, Qinghao ;
Wang, Hongjian ;
Fu, Kunkun ;
Ye, Lin .
COMPOSITES SCIENCE AND TECHNOLOGY, 2020, 191
[9]   Progressive damage simulation for a 3D-printed curvilinear continuous carbon fiber-reinforced thermoplastic based on continuum damage mechanics [J].
Ichihara, Naruki ;
Ueda, Masahito ;
Urushiyama, Yuta ;
Todoroki, Akira ;
Matsuzaki, Ryosuke ;
Hirano, Hoshiyasu .
ADVANCED COMPOSITE MATERIALS, 2020, 29 (05) :459-474
[10]   Reverse piezo-resistivity of 3D printed continuous carbon fiber/PA6 composites in a low stress range [J].
Iizuka, Keisuke ;
Todoroki, Akira ;
Takahashi, Takuya ;
Ueda, Masahito .
ADVANCED COMPOSITE MATERIALS, 2021, 30 (04) :380-395