Research on Mechanical Properties of Origami Aluminum Honeycomb for Automobile Energy Absorbing Box
Abstract
:1. Introduction
2. Experiment and Simulation Setting
2.1. Experiment Process
2.2. Simulation
3. Experimental Process and Results Analysis
3.1. Experiment and Analysis of Welded Origami Aluminum Honeycomb Material
3.1.1. Static Results and Analysis
3.1.2. Dynamic Results and Analysis
3.2. Theoretical Analysis
3.2.1. Axial Deformation
3.2.2. Radial Deformation
3.2.3. Lateral Deformation
3.3. Simulation Results and Discussion under Axial Direction
3.4. Feasibility Study of Origami Aluminum Honeycomb as an Automotive Energy-Absorbing Element
4. Conclusions
- (1)
- Origami aluminum honeycomb had different deformation processes in three loading directions evaluated. Under the static test, the origami aluminum honeycomb had similar lateral and radial mechanical properties, and the deformation process was also similar. Under quasi-static action, the deformation of the material was flat, and the energy absorption was different after being loaded in three directions. The results show that more energy was absorbed in the axial direction than in the other two.
- (2)
- The stress of the material under dynamic loading was higher than that under static loading, and the fluctuation was stronger than that under static loading, indicating that speed has a great impact on the material properties, and similarly the energy absorption under dynamic loading was higher than that under static loading.
- (3)
- The mechanical properties of origami aluminum honeycomb were studied experimentally, by simulation and through theoretical analysis. Although there were some errors among the three results, these methods could characterize the accuracy of the material’s energy absorption.
- (4)
- The material could absorb a large amount of energy under low- and medium-speed impact. When applied to vehicle energy-absorbing components, it could effectively absorb a minimum of 10% of vehicle impact kinetic energy.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
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No. | Specimen | Size (mm) | Initial Height (mm) | ρ (g/cm3) |
---|---|---|---|---|
1 | Welded origami honeycomb 1 lateral direction | 245.4 × 211.1 × 196.8, wall thickness 1.5 | 196.8 | 0.2648 |
2 | Welded origami honeycomb 2 radial direction | 245.4 × 211.1 × 196.8, wall thickness 1.5 | 245.4 | 0.2648 |
3 | Welded origami honeycomb 3 axial direction | 245.4 × 211.1 × 196.8, wall thickness 1.5 | 211.1 | 0.2648 |
No. | Specimen | Energy/Volume (J/cm3) | Energy/Mass (J/g) |
---|---|---|---|
1 | Lateral direction | 0.39 | 1.48 |
2 | Radial direction | 0.45 | 1.71 |
3 | Axial direction | 1.74 | 6.60 |
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Wei, W.; Zhang, F.; Xing, Y.; Wang, H.; Liu, R. Research on Mechanical Properties of Origami Aluminum Honeycomb for Automobile Energy Absorbing Box. Materials 2023, 16, 141. https://doi.org/10.3390/ma16010141
Wei W, Zhang F, Xing Y, Wang H, Liu R. Research on Mechanical Properties of Origami Aluminum Honeycomb for Automobile Energy Absorbing Box. Materials. 2023; 16(1):141. https://doi.org/10.3390/ma16010141
Chicago/Turabian StyleWei, Wei, Fengqiang Zhang, Youdong Xing, Hongxiang Wang, and Rongqiang Liu. 2023. "Research on Mechanical Properties of Origami Aluminum Honeycomb for Automobile Energy Absorbing Box" Materials 16, no. 1: 141. https://doi.org/10.3390/ma16010141
APA StyleWei, W., Zhang, F., Xing, Y., Wang, H., & Liu, R. (2023). Research on Mechanical Properties of Origami Aluminum Honeycomb for Automobile Energy Absorbing Box. Materials, 16(1), 141. https://doi.org/10.3390/ma16010141