Smart Self-Sensing Composite: Piezoelectric and Magnetostrictive FEA Modeling and Experimental Characterization Using Wireless Detection Systems
Abstract
:1. Introduction
Background
2. Smart Self-Sensing Composite FEA
2.1. Geometry and Boundary Conditions
2.2. Multi-Physics Model
3. Experimental Methodology
3.1. Piezoelectric Solution
3.2. Magnetostrictive Solution
3.3. Compression Molding
3.4. Detection System
4. Results and Discussion
5. Conclusions
- A finite element analysis (FEA) study was conducted to study the mechanical, electrical and magnetic behavior of this composite to characterize its piezoelectric and magnetostrictive self-sensing responses in the presence of applied stress. The electric polarization of the piezoelectric material was found to increase rapidly with increase in strain. High piezoelectric responses were observed at sections of the composites with the highest change in length. The COMSOL Multiphysics® magnetostrictive response was characterized by studying the change in magnetic field around the composite sample. The strain change in the composite sample resulted in a higher magnetization of the composite sample. This increase in magnetization is related to the solid mechanics properties of the material following the Villari effect (i.e., the change in the magnetic susceptibility of a material when subjected to a mechanical stress), therefore showing composite sensitivity to strains.
- Experimental tensile tests of composite samples without any particles, samples with SWCNTs, samples with Terfenol-D nanoparticles and samples with both SWCNTs and Terfenol-D nanoparticles were conducted. It was observed that increase in Terfenol-D nanoparticles volume fraction increases the change in magnetization and, therefore, voltage response up to the point of saturation. The optimum change in amplitude was observed at 0.20% volume fraction of Terfenol-D nanoparticles. A constant ratio of SWCNTs was maintained, and maximum change in electrical resistance was at 7.4%.
- Fracture toughness for the samples with all nanoparticles was explored, and the results showed improved resistance to crack propagation. This is due to the presence of SWCNTs and, therefore, proved that the mechanical properties affected by the presence of Terfenol-D alloys in the composites can be offset by the dispersion of SWCNTs and still maintain the self-sensing property of the composite.
Author Contributions
Funding
Conflicts of Interest
References
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Property | Unit | Glass Fiber | SWCNT | Terfenol-D |
---|---|---|---|---|
Density | g/cc | 2.44 | 1.9 | 9.25 |
Modulus of Elasticity | GPa | 72.4 | 34.65 | 50–90 |
Thermal Conductivity | W/(m-K) | 1.3 | 3500 | 13.5 |
Electrical conductivity | S/m | 1.05 × 10−4 | 106–107 | 1.6667 × 106 |
Poisson’s ratio | - | 0.20 | 0.311 | 0.5 |
Relative Permeability | - | 1–4.5 | 100.3 | 2–10 |
Linear Magnetostriction | ppm | - | - | 800–1200 |
Specimen | Peak Stress (MPa) | Young’s Modulus (GPa) | Sensitivity |
---|---|---|---|
GFRP Experimental | 370 | 22.72 | 0.0457 |
GFRP/SWCNT Experimental | 385 | 22.85 | 0.0543 |
GFRP/Terfenol-D Experimental | 361 | 22.31 | 7.243 |
GFRP/SWCNT/Terfenol-D Experimental | 366 | 22.51 | 6.495 |
GFRP/SWCNT/Terfenol-D COMSOL | 450 | 23.012 | 7.35 |
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Qhobosheane, R.G.; Elenchezhian, M.R.P.; Das, P.P.; Rahman, M.; Rabby, M.M.; Vadlamudi, V.; Reifsnider, K.; Raihan, R. Smart Self-Sensing Composite: Piezoelectric and Magnetostrictive FEA Modeling and Experimental Characterization Using Wireless Detection Systems. Sensors 2020, 20, 6906. https://doi.org/10.3390/s20236906
Qhobosheane RG, Elenchezhian MRP, Das PP, Rahman M, Rabby MM, Vadlamudi V, Reifsnider K, Raihan R. Smart Self-Sensing Composite: Piezoelectric and Magnetostrictive FEA Modeling and Experimental Characterization Using Wireless Detection Systems. Sensors. 2020; 20(23):6906. https://doi.org/10.3390/s20236906
Chicago/Turabian StyleQhobosheane, Relebohile George, Muthu Ram Prabhu Elenchezhian, Partha Pratim Das, Minhazur Rahman, Monjur Morshed Rabby, Vamsee Vadlamudi, Kenneth Reifsnider, and Rassel Raihan. 2020. "Smart Self-Sensing Composite: Piezoelectric and Magnetostrictive FEA Modeling and Experimental Characterization Using Wireless Detection Systems" Sensors 20, no. 23: 6906. https://doi.org/10.3390/s20236906
APA StyleQhobosheane, R. G., Elenchezhian, M. R. P., Das, P. P., Rahman, M., Rabby, M. M., Vadlamudi, V., Reifsnider, K., & Raihan, R. (2020). Smart Self-Sensing Composite: Piezoelectric and Magnetostrictive FEA Modeling and Experimental Characterization Using Wireless Detection Systems. Sensors, 20(23), 6906. https://doi.org/10.3390/s20236906