Study on the Deformation Mode and Energy Absorption Characteristics of Protective Honeycomb Sandwich Structures Based on the Combined Design of Lotus Root Nodes and Leaf Stem Veins
Abstract
:1. Introduction
2. Bionic Structural Design
3. Honeycomb Compression Experiment
3.1. Material Properties and Specimen Preparation
3.2. Energy Absorption Index
3.3. Experimental Results
4. Numerical Simulation
4.1. Finite Element Modeling
4.2. Numerical Results
5. Discussion and Analysis
5.1. The Lotus Root Effect
5.2. The Leaf Venation Effect
5.3. Effect of Leaf Vein Plate Position, Number, and Thickness
6. Conclusions
- (1)
- Quasistatic compression experiments with TCS, LVHS, LRHS, and LRVHS were carried out. The LRHS and LRVHS deformation patterns exhibited helical twisting under continuous load application. The nominal stress–strain curves of the TCS, LVHS, LRHS, and LRVHS were analyzed. Compared with TCS, the LRHS had greater peak nominal stress and plateau stress values. The SEA differences between TCS and LRHS and between LVHS and LRVHS were 3.86% and 4.29%, respectively.
- (2)
- Research on the mechanisms of the lotus root effect and leaf vein effect was carried out. It was found that through the lotus root effect mechanism, the energy absorption of LRHS increased by 51.4%. Compared with that of TCS in the plateau stage, the deformation mechanical mechanism of the LRHS was helical twisting in the plateau stage. Compared with that of TCS, the peak nominal stress of LVHS increased by 4.84% through the mechanism of the leaf vein effect. The leaf vein plate provided greater out-of-plane load-carrying capacity and energy-absorbing effect values for the overall structure through changes in the arc, S-type, and W-type deflections.
- (3)
- An extensive analysis was conducted to examine the impact of the leaf vein plate position, number, and thickness on the overall mechanical properties of the structure. Optimal energy-absorbing properties were observed when the leaf vein plates were positioned outward. The structure exhibited the most effective SEA when the number of leaf vein plates was 4. Leaf vein plate thickness played a significant role in determining the peak force magnitude, with an increasing trend observed as the thickness increased. Notably, at a leaf vein plate thickness of 0.6 mm, the SEA was enhanced by up to 7.3% compared to that at other thicknesses. However, above a thickness of 0.6 mm, the structure’s energy absorption decreased with increasing leaf vein plate thickness.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Specimen Samples | L1 (mm) | L2 (mm) | L3 (mm) | W1 (mm) | W2 (mm) | T (mm) | Mass (g) |
---|---|---|---|---|---|---|---|
1 | 164.8 | 114.7 | 49.9 | 19.3 | 13.3 | 3.1 | 8.5 |
2 | 164.8 | 114.8 | 49.8 | 19.1 | 13.1 | 2.9 | 8.5 |
3 | 165.3 | 115.3 | 50.3 | 19.2 | 13.2 | 3 | 8.4 |
Error | ±0.3 | ±0.3 | ±0.3 | ±0.3 | ±0.3 | ±0.2 |
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Chen, W.; Chen, C.; Zhang, Y.; Li, P.; Li, M.; Li, X. Study on the Deformation Mode and Energy Absorption Characteristics of Protective Honeycomb Sandwich Structures Based on the Combined Design of Lotus Root Nodes and Leaf Stem Veins. J. Mar. Sci. Eng. 2024, 12, 652. https://doi.org/10.3390/jmse12040652
Chen W, Chen C, Zhang Y, Li P, Li M, Li X. Study on the Deformation Mode and Energy Absorption Characteristics of Protective Honeycomb Sandwich Structures Based on the Combined Design of Lotus Root Nodes and Leaf Stem Veins. Journal of Marine Science and Engineering. 2024; 12(4):652. https://doi.org/10.3390/jmse12040652
Chicago/Turabian StyleChen, Wei, Chunyang Chen, Yiheng Zhang, Pu Li, Mengzhen Li, and Xiaobin Li. 2024. "Study on the Deformation Mode and Energy Absorption Characteristics of Protective Honeycomb Sandwich Structures Based on the Combined Design of Lotus Root Nodes and Leaf Stem Veins" Journal of Marine Science and Engineering 12, no. 4: 652. https://doi.org/10.3390/jmse12040652
APA StyleChen, W., Chen, C., Zhang, Y., Li, P., Li, M., & Li, X. (2024). Study on the Deformation Mode and Energy Absorption Characteristics of Protective Honeycomb Sandwich Structures Based on the Combined Design of Lotus Root Nodes and Leaf Stem Veins. Journal of Marine Science and Engineering, 12(4), 652. https://doi.org/10.3390/jmse12040652