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15.05.2024 | ORIGINAL ARTICLE

High-speed drilling mechanism study of unidirectional CoCrFeNiAl fiber-reinforced aluminum matrix composites

verfasst von: Ping Zhang, Shunxiang Wang, Jinlong Zhang, Yajie Sun, Hanping Zhou, Xiujie Yue

Erschienen in: The International Journal of Advanced Manufacturing Technology

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Abstract

Fiber-reinforced aluminum matrix composites have a wide range of application prospects in aerospace, automotive, and other fields. In order to further optimize the processing technology and improve the processing efficiency, the high-speed drilling mechanism of FeCoNiCrAl high-entropy alloy fiber-reinforced 7050 aluminum matrix composites was investigated in this study. A composite plate composed of three-layer unidirectional fiber-reinforced composite was constructed by using ABAQUS finite element software. The effects of different bit geometry parameters and drilling parameters on drilling force, stress–strain, and subsurface damage were studied during high-speed drilling. The results show that the drilling force is positively correlated with the feed speed and decreases with the increase of the spindle speed. The drilling force is positively correlated with spiral angle and negatively correlated with top angle. With the increase of feed speed, the area of the height stress area of the inlet and outlet increases first and then decreases, and the maximum point is 450 mm/s and 400 mm/s, respectively. With the increase of spindle speed, the area of the entrance layer increased first and then decreased. The area of the entrance layer was the largest when the spindle speed was 600 r/s, and the area of the outlet layer increased with the spindle speed. When the screw angle is 40° and the top angle is 90°, the main cutting edge of the bit drills out the whole plate, the processing quality of the drilling is relatively best. With the increase of spiral angle, the subsurface damage range of fiber at the inlet and outlet layer decreases. As the top angle increases, the damage range increases first and then decreases, showing a peak trend. With the increase of feed speed, the damage range decreases first and then increases. The damage range increases significantly with the increase of spindle speed.

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Metadaten
Titel
High-speed drilling mechanism study of unidirectional CoCrFeNiAl fiber-reinforced aluminum matrix composites
verfasst von
Ping Zhang
Shunxiang Wang
Jinlong Zhang
Yajie Sun
Hanping Zhou
Xiujie Yue
Publikationsdatum
15.05.2024
Verlag
Springer London
Erschienen in
The International Journal of Advanced Manufacturing Technology
Print ISSN: 0268-3768
Elektronische ISSN: 1433-3015
DOI
https://doi.org/10.1007/s00170-024-13749-8

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