Comparative study on J-integrals of SM45C, short fiber GFRP and woven type CFRP shown at crack through analytical method
- Authors
- Park, J.W.; Lyu, S.K.; Cho, J.U.
- Issue Date
- Jun-2019
- Publisher
- Korean Society for Precision Engineeing
- Keywords
- Carbon fiber reinforced plastic (CFRP); Crack; Glass fiber reinforced plastic (GFRP); J-Integral; SM45C
- Citation
- Journal of the Korean Society for Precision Engineering, v.36, no.6, pp 567 - 573
- Pages
- 7
- Indexed
- SCOPUS
KCI
- Journal Title
- Journal of the Korean Society for Precision Engineering
- Volume
- 36
- Number
- 6
- Start Page
- 567
- End Page
- 573
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/10749
- DOI
- 10.7736/KSPE.2019.36.6.567
- ISSN
- 1225-9071
2287-8769
- Abstract
- Transportation machine manufacturers are putting in efforts on research based on weight reduction. One of the representative materials for weight reduction is Fiber Reinforced Plastic (FRP). Increased used of FRP, glass fiber and carbon fiber could be a way of weight reduction. It is almost unavoidable to generate holes or notches during structural design. Little research have been carried out based on cracks with respect to materials used for design. The utilization of finite element analysis and the reliability of the analysis methods are increasing in order to promptly cope with the damages in materials. In this study, Compact Tension (CT) model based on ASTM E647 was designed using SM45C, steel for structural use, short fiber Glass Fiber Reinforced Plastic (GFRP), and woven type Carbon Fiber Reinforced Plastic (CFRP). In addition, J-Integral, which is a factor for determination of growth of crack that appears in cracks, was applied to general structure analysis. J-Integral is an equation of the body force of the material and strain energy in accordance with the loading force, and illustrates the crack growth using energy release rate. J-Integral values of SM45C, short fiber GFRP and woven type CFRP were found to be approximately 74,978 mJ/mm2, 7492.3 mJ/mm2 and 6222.4 mJ/mm2, respectively. Copyright ? The Korean Society for Precision Engineering
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