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  4. Mechanical behavior of multi-material single-lap joints under high rates of loading using a Split Hopkinson Tension Bar
 
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June 24, 2022
Journal Article
Title

Mechanical behavior of multi-material single-lap joints under high rates of loading using a Split Hopkinson Tension Bar

Abstract
In the presented research, a split Hopkinson tension bar (SHTB) was used to measure the mechanical response of multi-material single-lap joints in the high-rate loading regime. High-performance applications require high-quality measurements of the mechanical properties to define safe design rules. Servo-hydraulic machines are commonly used to investigate such small structures, but they are prone to produce oscillation-affected force measurements. To improve force–displacement measurements, an SHTB was chosen to investigate these joints. Three different kinds of joints were tested: multi-material bolted joints, multi-material bonded joints, and multi-material bonded/bolted joints. One substrate of the joints was made of aluminum (Al-2024-T3) and the other one was made of a laminated composite (TC250). A countersunk titanium bolt and a crash-optimized epoxy adhesive (Betamate 1496 V) were used to fasten the joints. A constant impedance mounting device was implemented to limit wave reflections and to improve the signal quality. Quasi-static experiments at a servo-hydraulic machine were performed to compare the data with the respective data from the high-rate loading conditions. The presented research shows that high-quality high-rate tests of multi-material single-lap joints can be achieved by employing an SHTB. With this high-quality measurement, a rate dependency of the mechanical behavior of these joints was identified. The dynamic increase (DI), which is the ratio of a high rate of loading over quasi-static loading, was measured for each of the joint types, where the dynamic increase in the max force was DI = 1.1 for the bolted, DI = 1.4 for the bonded, and DI = 1.6 for the bonded/bolted joints.
Author(s)
Rüthnick, Pascal  
Fraunhofer-Institut für Kurzzeitdynamik Ernst-Mach-Institut EMI  
Ledford, Noah  
Fraunhofer-Institut für Kurzzeitdynamik Ernst-Mach-Institut EMI  
Imbert, Mathieu  
Fraunhofer-Institut für Kurzzeitdynamik Ernst-Mach-Institut EMI  
May, Michael  
Fraunhofer-Institut für Kurzzeitdynamik Ernst-Mach-Institut EMI  
Journal
Materials  
Open Access
DOI
10.3390/met12071082
Additional link
Full text
Language
English
Fraunhofer-Institut für Kurzzeitdynamik Ernst-Mach-Institut EMI  
Keyword(s)
  • Split Hopkinson Tension Bar

  • multi-material

  • single-lap

  • high-rate

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