Strong and Flexible Braiding Pattern of Carbon Nanotubes for Composites: Stiff and Robust Structure Active in Composite Materials
Abstract
:1. Introduction
2. Development of Braiding Patterns
2.1. Braided Spider Net
2.2. Braided Pattern Based on Honeycomb
3. Basic Calculation of Mechanical Properties
4. Consideration: Braided Patterns Revisited and Proposal of Mechanisms to Maintain Overall Stability
4.1. Braiding Patterns with Inclined Reinforcement Bar Assisted by Diagonal Bridges
- Construction of a stiff framework to improve strength.
- The sliding at the contact point of webs is beneficial to reduce the stresses; however, this is the degree problem.
- A hierarchical structure is essential to avoid unfavorable overload and enhance flexibility.
4.2. Ultimate System Comprising CNTs Available in Composites and Engineering Belts
5. Conclusions
- This study proposed three types of braiding patterns based on spider net and honeycomb. The first pattern combines sliding and tight-yet-flexible sewing between the wefts and warps to provide both strength and flexibility. The second pattern combines the wefts and warps into boxes to balance strength and flexibility by utilizing the continuity and discontinuity. The final pattern was generated through the combination of rectangular wefts and hexagonal webs. The wefts were surrounded by hierarchical hexagonal webs, with variations in their positions in the depth direction. This results in the stress distribution and resilience to fracture at low strains.
- The basic FEA analysis was performed for the honeycomb pattern, which elucidated that the load borne by the webs and the partly generated slippage contributed to the reduction in overall stresses. The constraint between the webs does not necessarily increase the stress in CNT webs and utilizing their interaction can effectively yield both strength and fracture resilience with the generation of flexibility. Thus, wrapping and warping, sliding and doubling, and partly locked structures have been proposed as a mechanism for generation of strength and flexibility. The recovery of structures from the interaction to the independent state is vital to generate fracture resistance with low strains.
- We propose the finalized structure specialized for CNTs. The combination of curled CNTs and straight CNTs can transfer the load associated with tension and sagging. The hierarchical pattern in which the braiding density is spatially altered is unique and can generate strong and resilient structural components. Compared with conventional braiding patterns, a balance of strength and flexibility can be expected in our proposed braiding pattern. Furthermore, we discussed its similarities and dissimilarities with high-stiffness structural board materials.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameters | Value | Mesh Type | Analysis Method |
---|---|---|---|
Young’s modulus | 200 GPa (Assuming multiply twisted yarns) | Adaptive mesh (P-method) Approximately 70,000 elements | Contact (Severe constraint) Large deformation (Compensate) |
Poisson’s ratio | 0.3 |
Model | Maximum Stress (GPa) | Minimum Stress (Pa) | Average Stress (MPa) |
---|---|---|---|
(A) | 392 | 39.7 | 2402 |
(B) | 255 | 3012 | 1044 |
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Ogawa, F.; Liu, F.; Hashida, T. Strong and Flexible Braiding Pattern of Carbon Nanotubes for Composites: Stiff and Robust Structure Active in Composite Materials. Materials 2023, 16, 1725. https://doi.org/10.3390/ma16041725
Ogawa F, Liu F, Hashida T. Strong and Flexible Braiding Pattern of Carbon Nanotubes for Composites: Stiff and Robust Structure Active in Composite Materials. Materials. 2023; 16(4):1725. https://doi.org/10.3390/ma16041725
Chicago/Turabian StyleOgawa, Fumio, Fan Liu, and Toshiyuki Hashida. 2023. "Strong and Flexible Braiding Pattern of Carbon Nanotubes for Composites: Stiff and Robust Structure Active in Composite Materials" Materials 16, no. 4: 1725. https://doi.org/10.3390/ma16041725
APA StyleOgawa, F., Liu, F., & Hashida, T. (2023). Strong and Flexible Braiding Pattern of Carbon Nanotubes for Composites: Stiff and Robust Structure Active in Composite Materials. Materials, 16(4), 1725. https://doi.org/10.3390/ma16041725