Damping Optimization Design of Plant Fiber-Reinforced Composites for Subway Interior Structures
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Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Numerical Analysis
2.2.1. FE Model for Analysis of the Damping Properties
2.2.2. FE Model for Analysis of the Bending Properties
2.3. Experimental
2.3.1. Preparation of the Composites
2.3.2. Vibration Tests
3. Results and Discussion
3.1. Effects of Stacking Sequences on the Damping Properties of CFFRC Structures
3.2. Effects of Stacking Sequences on the Bending Properties of CFFRC Structures
3.3. Mechanisms on Structural and Functional Integrated Optimization Design of CFFRC Structures
4. Conclusions
- (1)
- The effects of the stacking sequences on the bending and damping properties of CFFRC structures were evaluated by developing a finite element (FE) model integrating laminate theory, the Hashin failure criterion, and the complex eigenvalue method. The stacking sequence of carbon or flax fiber had a considerable impact on the damping ratio of the CFFRC structure, with the greatest improvement by placing the flax fibers in the outermost layer, whereas the bending strength decreased as the number of flax fiber layers positioned close to the outer layer. The balance between the damping and bending properties should be considered for structural design. The CFFRC structure with the stacking sequence of F10C10F10C10F10 exhibited balanced damping and bending properties.
- (2)
- Mechanisms of load-bearing and damping functional integrated optimization design of CFFRC structures were clarified. High damping capacity of the outer layers could absorb and dissipate effective vibrational energy before it propagates deep into the structure. The hierarchical structure and viscoelastic behaviors of flax fibers created additional pathways for energy dissipation at the interface between each cell wall layer and the micro-fibrillated sub-layers. The maximum compressive and tensile stresses were observed at the upper and lower layers of the CFFRC structures under bending load, with relatively low shear stress. When flax fiber as the outer layer was substituted with carbon fiber, the carbon fiber layer could sustain a high bending load.
- (3)
- The experimental modal behaviors (modal damping ratios, modal frequencies, and vibration mode shapes) of CFFRC structures with the optimal stacking sequence were identified by employing a non-contacting 3D Scanning Laser Doppler Vibrometer (SLDV) in vibration tests. The effects of the stacking sequences on the mode shapes tended to primarily occur in high-order modes. A significant agreement between the experimental first seven mode shapes and those derived from the established model was achieved. The findings provided essential parameters for designing subway interior structures that are both safe and reliable.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| PFRCs | Plant fiber-reinforced composites |
| CFFRCs | Carbon/flax fiber-reinforced epoxy composites |
| FRPs | Fiberglass-reinforced polymers |
| FE | Finite element |
| SLDV | Scanning Laser Doppler Vibrometer |
| CFRCs | Carbon fiber-reinforced composites |
| FFRCs | Flax fiber-reinforced composites |
| UMAT | User-defined material subroutine |
| ODS | Operational Deformation Shape |
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| E1 (GPa) | E2 (GPa) | E3 (GPa) | v12 | v13 | v23 | G12 (GPa) | G13 (GPa) | G23 (GPa) | Density | |
|---|---|---|---|---|---|---|---|---|---|---|
| CFRCs | 160 | 8.7 | 8.7 | 0.30 | 0.30 | 0.45 | 6.5 | 6.5 | 3.25 | 1690 (kg/m3) |
| FFRCs | 32 | 2.6 | 2.6 | 0.12 | 0.12 | 0.14 | 1.4 | 1.4 | 0.7 | 1120 (kg/m3) |
| Laminates | Ply Number Ratio (Flax/Carbon) | Stacking Sequence |
|---|---|---|
| C80 | 0/80 | ![]() |
| C20F20C20 | 20/40 | ![]() |
| F15C20F15 | 30/20 | ![]() |
| F10C10F10C10F10 | 30/20 | ![]() |
| F40 | 40 | ![]() |
| Xt (MPa) | Xc (MPa) | Yt (MPa) | Yc (MPa) | S (MPa) | |
|---|---|---|---|---|---|
| CFRCs | 895 | 626 | 25 | 52 | 37 |
| FFRCs | 275 | 192 | 16 | 32 | 24 |
| Mode | Frequency (Hz) | Damping Ratio (%) | ||
|---|---|---|---|---|
| Num | Exp | Num | Exp | |
| 1 | 99.37 | 91.24 | 0.75 | 0.91 |
| 2 | 237.24 | 215.68 | 0.71 | 0.93 |
| 3 | 685.03 | 636.79 | 0.75 | 0.87 |
| 4 | 878.73 | 849.50 | 0.75 | 0.95 |
| 5 | 899.91 | 862.18 | 0.48 | 0.76 |
| 6 | 1216.6 | 1170.93 | 0.46 | 0.72 |
| 7 | 1605.3 | 1583.51 | 0.51 | 0.78 |
| 8 | 2016.1 | 1942.76 | 0.63 | 0.84 |
| 9 | 2033.8 | 1993.09 | 0.75 | 0.96 |
| 10 | 2195.5 | 2007.56 | 0.77 | 0.92 |
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Tan, S.; Cao, A.; Zhang, Z.; Li, Q. Damping Optimization Design of Plant Fiber-Reinforced Composites for Subway Interior Structures. Appl. Sci. 2025, 15, 12281. https://doi.org/10.3390/app152212281
Tan S, Cao A, Zhang Z, Li Q. Damping Optimization Design of Plant Fiber-Reinforced Composites for Subway Interior Structures. Applied Sciences. 2025; 15(22):12281. https://doi.org/10.3390/app152212281
Chicago/Turabian StyleTan, Songli, Andong Cao, Zhen Zhang, and Qian Li. 2025. "Damping Optimization Design of Plant Fiber-Reinforced Composites for Subway Interior Structures" Applied Sciences 15, no. 22: 12281. https://doi.org/10.3390/app152212281
APA StyleTan, S., Cao, A., Zhang, Z., & Li, Q. (2025). Damping Optimization Design of Plant Fiber-Reinforced Composites for Subway Interior Structures. Applied Sciences, 15(22), 12281. https://doi.org/10.3390/app152212281





