Study on the Energy Absorption Performance of Triply Periodic Minimal Surface (TPMS) Structures at Different Load-Bearing Angles
Abstract
:1. Introduction
2. Materials and Methods
2.1. Selection of Materials
2.2. Design of TPMS Structures
2.3. Fabrication of TPMS Samples
2.4. Quasi-Static Compression Test
3. Results and Discussion
3.1. Analysis of Experimental Results
3.2. Analysis of Deformation Behavior
4. Conclusions
- Adjusting the load-bearing angles of the Gyroid, Diamond, and IWP structures resulted in distinct responses of energy absorption under quasi-static compressive loads. The performance of energy absorption of the Gyroid structure remained the most stable when changing the load-bearing angle, maintaining nearly consistent capability for energy absorption at all angles. For the Diamond structure, similar performances of energy absorption were observed at 0°, 15°, 75°, and 90°. However, there was a significant enhancement in SEA at 30° and 60°, while a notable reduction occurred at 45°. In contrast, the performance in energy absorption of the IWP structure was most sensitive to changes in the load-bearing angle. It maintained good performance in energy absorption only at 0° and 90°, with a substantial decrease in the capabilities for energy absorption at other angles. Additionally, the SEA of all three structures exhibited a symmetrical pattern centered at 45°.
- Under compressive loading, the deformations of the Gyroid structure were primarily characterized by bending. Similarly, the behaviors of bending-dominated deformation were predominantly shown by the Diamond structure at 0°, 15°, 75°, and 90°. However, at 30° and 60°, a mixed mode of bending and tensile deformations was displayed within the Diamond structure, thereby introducing a secondary plateau of energy absorption that effectively increased the plateau stress of the structure. At 45°, significant strain hardening was demonstrated. As for the IWP structure, its deformation exhibited typical characteristics of tensile deformation under compressive loads. Apart from maintaining good capabilities for load-bearing at 0° and 90° through its structural struts, evident failures of local buckling were shown at other loading angles, which weakened the capacity of overall load-bearing, thereby reducing its plateau stress and capabilities of energy absorption.
- When the deformation mode of the TPMS structures was primarily tensile, a stronger load-bearing capacity was exhibited. Consequently, a higher capacity of specific energy absorption was exhibited. In contrast, compared to structures primarily deforming through tensile, higher stability under multidirectional loads can be shown in those primarily deforming through bending. In summary, although structures that rely on bending deformation may not perform as well as those that rely on tensile deformation on energy absorption, they can provide better stability. Additionally, structures primarily deforming through tensile deformations may have poorer stability, but their potential for energy absorption was higher.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Element | Fe | Cr | Ni | Mo | C | Other |
---|---|---|---|---|---|---|
Weight percent (%) | Balance | 18 | 12 | 2 | <0.03 | <1.0 |
Young’s Modulus | Density | Poisson Ratio | Yielding Stress |
---|---|---|---|
176 GPa | 7980 kg/m3 | 0.3 | 480 MPa |
Laser Power | Layer Thickness | Scan Speed | Printing Environment |
---|---|---|---|
140 W | 30 μm | 650 mm/s | Argon |
Load-Bearing Angle | SEA (kJ/kg) | Densification Strain | Plateau Stress (MPa) |
---|---|---|---|
0° | 4.75 ± 0.38 | 0.504 ± 0.036 | 80.34 ± 4.13 |
15° | 4.95 ± 0.39 | 0.524 ± 0.033 | 80.21 ± 3.89 |
30° | 5.66 ± 0.41 | 0.525 ± 0.035 | 93.75 ± 3.56 |
45° | 5.17 ± 0.40 | 0.461 ± 0.040 | 95.01 ± 4.07 |
60° | 5.36 ± 0.42 | 0.507 ± 0.038 | 88.95 ± 4.23 |
75° | 4.89 ± 0.39 | 0.493 ± 0.036 | 80.24 ± 3.93 |
90° | 4.92 ± 0.37 | 0.533 ± 0.037 | 79.96 ± 4.42 |
Load-Bearing Angle | SEA (kJ/kg) | Densification Strain | Plateau Stress (MPa) |
---|---|---|---|
0° | 5.64 ± 0.43 | 0.572 ± 0.032 | 82.49 ± 4.15 |
15° | 5.78 ± 0.35 | 0.570 ± 0.033 | 84.34 ± 4.23 |
30° | 7.50 ± 0.32 | 0.594 ± 0.035 | 105.95 ± 5.06 |
45° | 3.72 ± 0.45 | 0.370 ± 0.039 | 85.77 ± 4.57 |
60° | 7.59 ± 0.33 | 0.591 ± 0.032 | 107.12 ± 4.55 |
75° | 6.10 ± 0.46 | 0.589 ± 0.038 | 86.16 ± 4.98 |
90° | 5.76 ± 0.39 | 0.587 ± 0.041 | 81.74 ± 4.24 |
Load-Bearing Angle | SEA (kJ/kg) | Densification Strain | Plateau Stress (MPa) |
---|---|---|---|
0° | 9.30 ± 0.42 | 0.532 ± 0.037 | 152.88 ± 4.37 |
15° | 6.97 ± 0.44 | 0.499 ± 0.041 | 119.16 ± 4.18 |
30° | 5.42 ± 0.39 | 0.496 ± 0.036 | 93.97 ± 4.86 |
45° | 5.53 ± 0.38 | 0.498 ± 0.039 | 96.60 ± 4.54 |
60° | 6.04 ± 0.52 | 0.499 ± 0.044 | 95.86 ± 5.02 |
75° | 6.75 ± 0.38 | 0.492 ± 0.045 | 120.41 ± 4.73 |
90° | 9.55 ± 0.36 | 0.538 ± 0.032 | 153.97 ± 5.14 |
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Lyu, Y.; Gong, T.; He, T.; Wang, H.; Zhuravkov, M.; Xia, Y. Study on the Energy Absorption Performance of Triply Periodic Minimal Surface (TPMS) Structures at Different Load-Bearing Angles. Biomimetics 2024, 9, 392. https://doi.org/10.3390/biomimetics9070392
Lyu Y, Gong T, He T, Wang H, Zhuravkov M, Xia Y. Study on the Energy Absorption Performance of Triply Periodic Minimal Surface (TPMS) Structures at Different Load-Bearing Angles. Biomimetics. 2024; 9(7):392. https://doi.org/10.3390/biomimetics9070392
Chicago/Turabian StyleLyu, Yongtao, Tingxiang Gong, Tao He, Hao Wang, Michael Zhuravkov, and Yang Xia. 2024. "Study on the Energy Absorption Performance of Triply Periodic Minimal Surface (TPMS) Structures at Different Load-Bearing Angles" Biomimetics 9, no. 7: 392. https://doi.org/10.3390/biomimetics9070392
APA StyleLyu, Y., Gong, T., He, T., Wang, H., Zhuravkov, M., & Xia, Y. (2024). Study on the Energy Absorption Performance of Triply Periodic Minimal Surface (TPMS) Structures at Different Load-Bearing Angles. Biomimetics, 9(7), 392. https://doi.org/10.3390/biomimetics9070392