| Literature DB >> 31795373 |
Mun-Young Hwang1,2, Dae-Hyun Han1,2, Lae-Hyong Kang1,2,3.
Abstract
Carbon nanotube/polymer-based composites have led to studies that enable the realization of low-cost, high-sensitivity piezoresistive strain sensors. This study investigated the characteristics of piezoresistive multi-walled carbon nanotube (MWCNT)/epoxy composite strain sensors subjected to tensile and compressive loads in one direction at relatively small amounts of strain. A patterned sensor was designed to overcome the disadvantage of the load direction sensitivity differences in the existing sensors. The dispersion state of the MWCNTs in the epoxy polymer matrix with the proposed dispersion process was verified by scanning electron microscopy. An MWCNT/epoxy patterned strain sensor and a patch-type strain sensor were directly attached to an acrylic cantilever beam on the opposite side of a commercial metallic strain gauge. The proposed patterned sensor had gauge factors of 2.52 in the tension direction and 2.47 in the compression direction. The measured gauge factor difference for the patterned sensor was less than that for the conventional patch-type sensor. Moreover, the free-vibration frequency response characteristics were compared with those of metal strain gauges to verify the proposed patch-type sensor. The designed drive circuit compensated for the disadvantages due to the high drive voltage, and it was confirmed that the proposed sensor had higher sensitivity than the metallic strain gauge. In addition, the hysteresis of the temperature characteristics of the proposed sensor is presented to show its temperature range. It was verified that the patterned sensor developed through various studies could be applied as a strain sensor for structural health monitoring.Entities:
Keywords: multi-walled carbon nanotubes; patterned type; piezoresistivity; polymer-matrix composites; strain sensing; structural health
Year: 2019 PMID: 31795373 PMCID: PMC6926730 DOI: 10.3390/ma12233962
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Patterned type of MWCNT/epoxy strain sensor that can minimize compression direction restriction with respect to CNT particle distance; (a) the pattern sensor under tension load, (b) the pattern sensor under compression load.
Figure 2Designed fabrication process for the MWCNT/epoxy composite strain sensor.
Figure 3Geometry of patterned MWCNT/epoxy strain sensor.
Figure 4Curing process for MWCNT/epoxy strain sensor with pattern integrated into structure to remove pores in sensor.
Figure 5Patterned and patch-type specimens of MWCNT/epoxy strain sensors used to measure sensing characteristics.
Figure 6Patch-type sensors manufactured with various concentrations of MWCNTs to verify the proposed dispersion process: (a) 0.5 wt.%, (b) 0.8 wt.%, and (c) 1.0 wt.%.
Gauge factors of 0.5 wt.% MWCNT/epoxy strain sensors according to fabrication type and load direction.
| Thickness | Gauge Factor | Gauge Factor |
|---|---|---|
| 0.5 | 1.43 | 2.20 |
| 1.5 | 1.08 | 1.57 |
| 2.0 | 0.72 | 1.14 |
| Pattern (0.5) | 2.47 | 2.52 |
Figure 7Results for resistance changes according to tip deflection of cantilever beam.
Figure 8Results of experiment to measure frequency response of sensor by impact: (a) results in 0–500 Hz range and (b) results in 0–50 Hz range.
Results of comparison of primary frequency responses to verify sensing ability of patterned sensor.
| Analysis (ANSYS) | MWCNT/Epoxy Patterned Strain Sensor | Commercial Strain Gauge | LDV Sensor |
|---|---|---|---|
| 15.11 Hz | 15.63 Hz | 15.63 Hz | 15.63 Hz |
Figure 9Relative resistance deviation of MWCNT/epoxy patterned composite strain sensor under cyclic temperature change effect at 30–80 °C for three cycles.
Relative resistance deviation of MWCNT/epoxy patterned composite strain sensor under cyclic temperature change.
| Temperature (°C) | Resistance (×MΩ) | Measurement Interval (h) | Temperature (°C) | Resistance (×MΩ) | Measurement Interval (h) |
|---|---|---|---|---|---|
| 30 | 247.8 | 0 | 30 | 251.1 | 24 |
| 40 | 252.4 | 2 | 40 | 256.5 | 2 |
| 50 | 255.8 | 2 | 50 | 260.3 | 2 |
| 60 | 259.1 | 2 | 60 | 263.8 | 2 |
| 70 | 260.3 | 2 | 70 | 263.0 | 2 |
| 80 | 260.0 | 2 | 80 | 262.1 | 2 |
| 30 | 254.8 | 24 |