New Concept of Dual-Sinusoid Distributed Fiber-Optic Sensors Antiphase-Placed for the SHM of Smart Composite Structures for Offshore
Abstract
:1. Introduction
2. Finite Element Model Features
2.1. Solid Models
2.2. Material Properties
2.3. Mesh Features
2.4. Boundary Conditions
2.4.1. Tension
2.4.2. Cantilever Bending
2.4.3. Torsion
3. Results and Discussion
3.1. Mechanical Considerations Pertaining to Sensor Embedment
3.2. Strain Sensing Information from Numerical Results
3.2.1. Tension
3.2.2. Cantilever Bending
3.2.3. Torsion
3.3. Discussion
4. Conclusions
- Numerical results have helped further identify the resulting strain patterns and sensing capabilities from the optimized dual-sinusoidal placement of FOSs in three loading cases.
- Nonetheless, it is worth noting that the modeling suggested is nothing more than a proof of concept that targets the best combination of variables, which will be further applied in a more realistic project related to real smart composite structures for offshore applications.
- The responses of dual-sinusoidal FOSs under tension, bending, and torsion agree with expectations and demonstrate their strain-measuring advantages.
- On the one hand, dual-sinusoidal placement retains the multi-axial strain-sensing capability from a single-sinusoidal placement; on the other hand, it provides enlarged strain-measuring areas.
- The strain measurements along dual-sinusoidal FOSs can be readily related to the corresponding strain components of host structures if the structures are primarily under in-plane strains; if out-of-plane shear strains become dominant or comparable to in-plane strains, it becomes difficult to do so.
- Based on this research work, the following future studies are worth conducting: (1) correlations between numerical and experimental results to be further established to more accurately interpret the strains measured by FOSs and reflect the mechanical responses of host materials; (2) the three key in-plane placement parameters to be further optimized quantitatively as functions of the length and width of host composite structures by conducting parametric studies to strike a balance between their resulting mechanical influences and sensing functions; (3) the out-of-plane placement of dual-sinusoidal FOSs to be further characterized. Note also that the thickness of adhesive joints (elasto-plastic effects) and temperature play an important role in strain measurements, and they will be addressed in further studies.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Materials | Modulus (MPa) | Poisson’s Ratio |
---|---|---|
CFRP lamina | E1 = 103,000; E2 = 10,400; G12 = 54,000 | ν12 = 0.3; ν21 = 0.03 |
Epoxy resin | 3500 | 0.3 |
Acrylate | 2700 | 0.35 |
Silica glass | 72,000 | 0.17 |
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Su, H.; Drissi-Habti, M.; Carvelli, V. New Concept of Dual-Sinusoid Distributed Fiber-Optic Sensors Antiphase-Placed for the SHM of Smart Composite Structures for Offshore. Appl. Sci. 2024, 14, 932. https://doi.org/10.3390/app14020932
Su H, Drissi-Habti M, Carvelli V. New Concept of Dual-Sinusoid Distributed Fiber-Optic Sensors Antiphase-Placed for the SHM of Smart Composite Structures for Offshore. Applied Sciences. 2024; 14(2):932. https://doi.org/10.3390/app14020932
Chicago/Turabian StyleSu, Hao, Monssef Drissi-Habti, and Valter Carvelli. 2024. "New Concept of Dual-Sinusoid Distributed Fiber-Optic Sensors Antiphase-Placed for the SHM of Smart Composite Structures for Offshore" Applied Sciences 14, no. 2: 932. https://doi.org/10.3390/app14020932
APA StyleSu, H., Drissi-Habti, M., & Carvelli, V. (2024). New Concept of Dual-Sinusoid Distributed Fiber-Optic Sensors Antiphase-Placed for the SHM of Smart Composite Structures for Offshore. Applied Sciences, 14(2), 932. https://doi.org/10.3390/app14020932