Large Deformation and Energy Absorption Behaviour of Perforated Hollow Sphere Structures under Quasi-Static Compression
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Mechanical Behaviour of the PHSS
3.2. Effect of Geometric Parameters
3.2.1. Wall Thickness
3.2.2. Hole Diameter
3.3. Comparison with the Traditional MHSS
4. Conclusions
- (1)
- With different geometric parameters, the SC and BCC PHSSs underwent a preliminary compaction sub-stage after layer-by-layer buckling in the stage of large deformation; the FCC PHSS did not exhibit a similar deformation behaviour unless the t or dm value was extremely small; and the layer-by-layer collapse-compaction behaviour was dominant for the large deformation of the FCC PHSS.
- (2)
- Among the PHSSs with the same relative density, the FCC PHSS exhibited the best compressive mechanical properties and energy absorption capacity; the SC PHSS exhibited the lowest; and the BCC PHSS was in between.
- (3)
- The first peak stress, plateau stress and SEA of the PHSSs increased as the wall thickness t increased, and the hole diameter dm had a significant effect on the first peak stress of different PHSSs but a relatively small effect on the plateau stress and SEA.
- (4)
- When the wall thickness was very thin or the hole diameter was very small, the local depression of hollow spheres caused the BCC and FCC PHSSs to exhibit obvious transverse contraction under axial compression, and this behaviour weakened as the wall thickness or hole diameter increased.
- (5)
- The presented 3D-printed PHSS was much lighter than the traditional MHSS made of mild steel and had higher specific strength and SEA than the traditional MHSS.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Geometrical Parameter | Relative Density ρrl | |||
---|---|---|---|---|
t/mm | dm/mm | SC | BCC | FCC |
0.195 | 5.5 | 0.02553 | 0.03253 | 0.0344 |
0.39 | 0.05105 | 0.06504 | 0.06875 | |
0.585 | 0.07654 | 0.0975 | 0.10303 | |
0.78 | 0.10207 | 0.13 | 0.13731 | |
0.975 | 0.12746 | 0.16229 | 0.17129 | |
0.5 | 3.5 | 0.06756 | 0.08706 | 0.09434 |
5.5 | 0.0654 | 0.08332 | 0.08822 | |
7.5 | 0.06274 | 0.07874 | 0.0807 |
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Dai, M.; Liang, J.; Cheng, C.; Wu, Z.; Lu, J.; Deng, J. Large Deformation and Energy Absorption Behaviour of Perforated Hollow Sphere Structures under Quasi-Static Compression. Materials 2021, 14, 3716. https://doi.org/10.3390/ma14133716
Dai M, Liang J, Cheng C, Wu Z, Lu J, Deng J. Large Deformation and Energy Absorption Behaviour of Perforated Hollow Sphere Structures under Quasi-Static Compression. Materials. 2021; 14(13):3716. https://doi.org/10.3390/ma14133716
Chicago/Turabian StyleDai, Meiling, Junping Liang, Cheng Cheng, Zhiwen Wu, Jiexun Lu, and Jiyu Deng. 2021. "Large Deformation and Energy Absorption Behaviour of Perforated Hollow Sphere Structures under Quasi-Static Compression" Materials 14, no. 13: 3716. https://doi.org/10.3390/ma14133716
APA StyleDai, M., Liang, J., Cheng, C., Wu, Z., Lu, J., & Deng, J. (2021). Large Deformation and Energy Absorption Behaviour of Perforated Hollow Sphere Structures under Quasi-Static Compression. Materials, 14(13), 3716. https://doi.org/10.3390/ma14133716