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  4. Ultrasonic joining of through-the-thickness reinforced TI-4AL-6V and polyetherimide hybrid joints
 
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Ultrasonic joining of through-the-thickness reinforced TI-4AL-6V and polyetherimide hybrid joints

Publikationstyp
Conference Paper
Date Issued
2017
Sprache
English
Author(s)
Etzberger Feistauer, Eduardo  
Ebel, Thomas  
dos Santos, Jorge F.  
Amancio, Sergio  
Institut
Kunststoffe und Verbundwerkstoffe M-11  
TORE-URI
http://hdl.handle.net/11420/4809
Volume
2017
Start Page
1718
End Page
1724
Citation
Annual Technical Conference - ANTEC, Conference Proceedings (2017-May): 1718-1724 (2017)
Contribution to Conference
75th Annual Technical Conference and Exhibition of the Society of Plastics Engineers, SPE ANTEC  
Publisher
Society of Plastics Engineers
Ultrasonic joining is an alternative direct-assembly joining technology to produce through-the-thickness reinforced hybrid joints between surface-structured metals and unreinforced or fiber-reinforced thermoplastics. As a result, joint damage tolerance can be improved. This paper presents a preliminary evaluation on the influence of joining energy on the joint formation, microstructure and mechanical performance of Ti-6Al-4V-Polyetherimide hybrid joints. Process-related microstructural changes and mechanical performance of optimized were assessed. The ultimate lap shear force of hybrid joints was six times higher (1860 ± 260 N) than the non-reinforced reference joints (292 ± 7 N). A considerable increase of ten times in displacement at break for ultrasonic joints was also achieved in comparison to reference joints. This is an indication that joint damage tolerance was increased due to an efficient load transfer by pin interlocking between the metal and polymer parts. Initial joint failure was by bearing - a non-catastrophic failure type - while shearing of the metallic pins was responsible for the final parts' separation during lap shear testing.
DDC Class
600: Technik
More Funding Information
Financial support provided to E. E. Feistauer by the Conselho Nacional de Desenvolvimento Científico e Tecnológico - CNPq (Brazil) and the financial support of the Helmholtz Association through the Young Investigator Group, “Advanced Polymer Metal Hybrid Structures” (Grant no. VH-NG-626).
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