Quasi-static and dynamic compression behavior of stacked pyramidal lattice structures with I-beam struts

被引:0
|
作者
Mohammed Ayaz Uddin [1 ]
J. Jefferson Andrew [2 ]
Imad Barsoum [1 ]
Shanmugam Kumar [3 ]
Andreas Schiffer [4 ]
机构
[1] Khalifa University of Science & Technology,Department of Mechanical and Nuclear Engineering
[2] Khalifa University of Science & Technology,Department of Aerospace Engineering
[3] Royal Institute of Technology (KTH),Department of Engineering Mechanics
[4] Khalifa University of Science & Technology,Advanced Digital & Additive Manufacturing Center
[5] University of Glasgow,James Watt School of Engineering
[6] Khalifa University of Science & Technology,Advanced Research and Innovation Center (ARIC)
关键词
Additive manufacturing; 3D printing; Low-velocity impact; Energy absorption; Architected materials;
D O I
10.1038/s41598-024-84507-9
中图分类号
学科分类号
摘要
This study investigates the quasi-static and dynamic compression performance of a newly designed stacked pyramidal lattice (SPL) structure composed of struts that resemble I-beams. These novel lattice structures are 3D-printed considering three different stacking sequences, and their stiffness, strength, and energy absorption properties are experimentally assessed through low-velocity impact (1.54 m/s) and quasi-static compression tests. Additionally, dynamic finite element (FE) simulations are carried out to delve deeper into the collapse mechanisms and failure processes. The findings indicate that the SPLs with I-beam struts outperform conventional SPLs with square struts of same mass showcasing superior rigidity, durability, and energy absorption. Specifically, we report enhancements in strength and energy absorption of 26% and 109% under quasi-static compression and 34% and 74% under low-velocity impact, respectively. The latter enhancements are attributed to the improved transverse bending stiffness of the I-shaped cross-section, resulting in lateral (sideward) buckling of the lattice struts. Both experimental and numerical findings demonstrate that altering the stacking sequence of the SPL can lead to significant improvements in the dynamic compression performance, with enhancements of up to 84% in collapse strength.
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