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Growing Science » Engineering Solid Mechanics » Investigation of fracture characteristics of titanium/CFRP hybrid composites through experimental and numerical methods

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Engineering Solid Mechanics

ISSN 2291-8752 (Online) - ISSN 2291-8744 (Print)
Quarterly Publication
Volume 12 Issue 4 pp. 447-458 , 2024

Investigation of fracture characteristics of titanium/CFRP hybrid composites through experimental and numerical methods Pages 447-458 Right click to download the paper Download PDF

Authors: Aysun Guven Citir, Serkan Toros, Fahrettin Ozturk

📋 Author Affiliations:
A.G. Citir¹, S. Toros², F. Ozturk³
¹ Department of Mechanical Engineering, Ankara Yildirim Beyazit University, Turkey
² Department of Mechanical Engineering, Nigde Omer Halisdemir University, Turkey, Turkish Aerospace Industries Inc, Ankara, Turkey
³ Department of Mechanical Engineering, Ankara Yildirim Beyazit University, Turkey, Turkish Aerospace Industries Inc, Ankara, Turkey
doi 10.5267/j.esm.2024.3.004
Crossmark
1 Source: Scopus

🔑 Keywords:

Abstract: In this study, the delamination resistance of carbon fiber reinforced polymers (CFRP) consolidated with titanium alloy at the interface between the metal and composite was investigated experimentally and numerically. End-notched flexure (ENF) tests were performed to assess the fracture toughness (GIIC) for Mode II crack expansion of Ti6Al4V titanium alloy/CFRP composite parts. The EFN test is applied to Ti6Al4V-carbon fiber/low melt poly (aryl ether ketone) (CF/LM-PAEK) and Ti6Al4V-carbon fiber/poly (ether ketone ketone) (CF/PEKK) composites with the [0°]24 stacking sequence of unidirectional (UD) fibers. Experimental results indicate that the LM-PAEK composites exhibited Mode II strain energy release rate values 27.64 % higher than those of the PEKK composites. The finite element simulation by LS‐DYNA shows good correlations with the experimental results, with an average error of 5.44 % for the PEKK and 10.58 % for the LM-PAEK, respectively.


How to cite this paper
APA: Citir, A., Toros, S & Ozturk, F. (2024). Investigation of fracture characteristics of titanium/CFRP hybrid composites through experimental and numerical methods. Engineering Solid Mechanics, 12(4), 447-458.
Chicago/Turabian: Citir, A., Toros, S & Ozturk, F. 2024. "Investigation of fracture characteristics of titanium/CFRP hybrid composites through experimental and numerical methods." Engineering Solid Mechanics 12, no. 4 (2024): 447-458.
AMA: Citir, A., Toros, S & Ozturk, F. Investigation of fracture characteristics of titanium/CFRP hybrid composites through experimental and numerical methods. Engineering Solid Mechanics. 2024;12(4):447-458.

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Journal: Engineering Solid Mechanics | Year: 2024 | Volume: 12 | Issue: 4 | Views: 1326 | Reviews: 0

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