Study on the Design and Mechanical Properties of a Novel Hexagonal Cell Body Topology
Abstract
:1. Introduction
2. Materials and Methods
2.1. Design of the Novel Hexagonal Cell Body Topology
- R: radius of the inner tangent circle of the outer hexagon, which controls the overall size of the microstructures and affects the size of the inner hollow part of the microstructures;
- a: controls the spacing between the inner and outer edge lengths; in this study, this distance is equal to the wall thickness t, see Equation (2);
- r: the radius of the inner hexagonal tangent circle of the inner layer, which has the same function as the parameter R;
- t: wall thickness.
2.2. Sample Preparation
2.3. Three-Dimensional Printing Process
2.4. Test Methods
2.5. Finite Element Analysis
3. Results and Discussion
3.1. Experimental Results of Mechanical Properties
3.1.1. Analysis of Tensile Properties of the NH Structure
3.1.2. Analysis of Impact Performance of the NH Structure
3.1.3. Analysis of Impact Properties for Different Cell Sizes
3.2. Simulation Analysis of the Novel Hexagonal Cell Body Topology
4. Conclusions
- In the structural comparison experiment, the tensile strength of the novel hexagonal cell body topology reaches 44.21 MPa, representing a 7.46% increase compared to the conventional honeycomb structure. And the impact strength of the novel hexagonal cell body topology measures 11.66 KJ/m2, marking a substantial 19.1% improvement over the ordinary honeycomb structure.
- The size of the single cell directly affects the size of the hollow part inside the structure, which influences the impact performance of the overall structure, and if the size of the single cell is too large or too small, it will reduce the impact performance of the overall structure. It was found that the impact properties of the specimens were optimal at a single cell size of about 1.2 mm. How to determine the optimal single-cell size remains to be investigated.
- Finite element analysis reveals that each element within the novel hexagonal cell body topology excels in transferring external forces, leading to a more uniform stress distribution and enhanced tensile and impact strength of the sample.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
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Nozzle Diameter (mm) | Printing Speed (mm/s) | Printing Temperature (°C) | Build Plate Temperature (°C) | Layer Thickness (mm) | Top/Bottom Thickness (mm) |
---|---|---|---|---|---|
0.4 | 50 | 210 | 50 | 0.1 | 1.2 |
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Hao, E.; Zhang, X.; Zhao, X.; Zhang, H. Study on the Design and Mechanical Properties of a Novel Hexagonal Cell Body Topology. Polymers 2024, 16, 2201. https://doi.org/10.3390/polym16152201
Hao E, Zhang X, Zhao X, Zhang H. Study on the Design and Mechanical Properties of a Novel Hexagonal Cell Body Topology. Polymers. 2024; 16(15):2201. https://doi.org/10.3390/polym16152201
Chicago/Turabian StyleHao, Enze, Xindan Zhang, Xueqing Zhao, and Hui Zhang. 2024. "Study on the Design and Mechanical Properties of a Novel Hexagonal Cell Body Topology" Polymers 16, no. 15: 2201. https://doi.org/10.3390/polym16152201
APA StyleHao, E., Zhang, X., Zhao, X., & Zhang, H. (2024). Study on the Design and Mechanical Properties of a Novel Hexagonal Cell Body Topology. Polymers, 16(15), 2201. https://doi.org/10.3390/polym16152201