Research on the Sensing Performance of the Tuning Fork-Probe as a Micro Interaction Sensor
Abstract
:1. Introduction
2. Resonance Properties Measurement
2.1. Geometric and Material Parameters of the TF
No. | Total Length Lt (mm) | Prong Length Lp (mm) | Prong Width Wp (mm) | Prong Height Hp (mm) | Gap Width Wg (mm) |
---|---|---|---|---|---|
1 | 6.104 | 3.887 | 0.618 | 0.355 | 0.303 |
2 | 6.026 | 3.781 | 0.592 | 0.339 | 0.299 |
3 | 6.037 | 3.793 | 0.592 | 0.334 | 0.281 |
4 | 6.017 | 3.743 | 0.617 | 0.337 | 0.289 |
5 | 5.983 | 3.760 | 0.586 | 0.342 | 0.297 |
6 | 6.077 | 3.778 | 0.621 | 0.342 | 0.299 |
7 | 6.005 | 3.739 | 0.593 | 0.358 | 0.298 |
8 | 6.017 | 3.744 | 0.604 | 0.348 | 0.299 |
9 | 5.991 | 3.752 | 0.615 | 0.350 | 0.282 |
Mean | 6.037 | 3.787 | 0.608 | 0.359 | 0.297 |
2.2. Frequency Spectrum of a TF
No. | fR of TF(kHz) | Q Factor of TF | fR of TF-Probe (kHz) | Q Factor of TF-Probe |
---|---|---|---|---|
23 | 32.755 | 6422 | 32.472 | 1353 |
24 | 31.684 | 8563 | 31.099 | 2962 |
25 | 31.835 | 7014 | 31.455 | 1430 |
2.3. Effect of Air Pressure on the Q Factor
3. Dynamic Property Optimization of the TF Sensor and Its Application in Force Detection
3.1. Optimization of the Q Factor
Damping Coefficient of the Probe (Ns/m) * | Q Factor | Damping Coefficient of the Epoxy Resin (Ns/m) # | Q Factor |
---|---|---|---|
0.05 | 3037 | 0.6 | 1431 |
0.005 | 4025 | 0.2 | 4025 |
0.0005 | 4182 | 0.06 | 10,063 |
0.00005 | 4182 | 0.02 | 17,889 |
Young’s Modulus of the Probe (GPa) * | Q Factor | Young’s Modulus of the Epoxy Resin (GPa) # | Q Factor |
---|---|---|---|
411 | 4025 | 20 | 2106 |
200 | 3926 | 10 | 4025 |
78 | 3350 | 6 | 6311 |
10 | 1516 | 2 | 13,691 |
Type | Q Factor |
---|---|
1 | 12,913 |
2 | 22,253 |
3 | 29,306 |
4 | 20,821 |
5 | 40,337 |
6 | 17,922 |
7 | 37,934 |
8 | 22,241 |
9 | 6844 |
3.2. Dynamic Response of the TF Sensor under Longitudinal and Transverse Interactions
Force (mN) | Resonance Frequency (Hz) | Probe Tip Oscillation Amplitude ( nm) | Phase Angle (°) |
---|---|---|---|
1E−13 | 32,375 | 10.11 | 91.11 |
0.001 | 32,375 | 10.11 | 91.11 |
0.01 | 32,375 | 10.11 | 91.14 |
0.1 | 32,375 | 10.11 | 91.36 |
1 | 32,375 | 10.09 | 93.59 |
10 | 32,376 | 9.21 | 114.34 |
20 | 32,377 | 7.57 | 131.51 |
30 | 32,378 | 6.11 | 142.79 |
50 | 32,380 | 4.21 | 155.36 |
4. Drag Force Measurement
5. Discussion
5.1. Parameters Affecting the Resonance Frequency of the TF-Probe
Probe Length (mm) | Resonance Frequency (Hz) |
---|---|
0.5 | 32,426 |
1.0 | 32,102 |
1.5 | 31,598 |
2.0 | 30,830 |
Young’s Modulus of the Probe (GPa) * | Resonance Frequency (Hz) | Young’s Modulus of the Epoxy Resin (GPa) # | Resonance Frequency (Hz) |
---|---|---|---|
411 | 32,200 | 20 | 32,214 |
200 | 32,192 | 10 | 32,200 |
78 | 32,113 | 6 | 32,186 |
10 | 32,056 | 2 | 32,175 |
5.2. Parameters Affecting the Spatial and the Force Resolutions of the TF-Probe
Probe Radii (nm) | Force Range (nm) | Probe Length (mm) | Force Range (nm) | Q Factor | Force Range (nm) |
---|---|---|---|---|---|
100 | 0.4 | 0.5 | 6.0 | 100 | 2.0 |
500 | 1.3 | 1.0 | 7.0 | 500 | 4.0 |
1000 | 2.0 | 1.5 | 10.5 | 3000 | 7.0 |
5025 | 6.0 | - | - | - | - |
Probe Length (mm) | Oscillation Amplitude Ratio |
---|---|
0.5 | 1.2 |
1.0 | 1.5 |
1.5 | 3.8 |
2.0 | 4.9 |
5.3. Comparison between FEM and Beam Theory
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Gao, F.; Li, X. Research on the Sensing Performance of the Tuning Fork-Probe as a Micro Interaction Sensor. Sensors 2015, 15, 24530-24552. https://doi.org/10.3390/s150924530
Gao F, Li X. Research on the Sensing Performance of the Tuning Fork-Probe as a Micro Interaction Sensor. Sensors. 2015; 15(9):24530-24552. https://doi.org/10.3390/s150924530
Chicago/Turabian StyleGao, Fengli, and Xide Li. 2015. "Research on the Sensing Performance of the Tuning Fork-Probe as a Micro Interaction Sensor" Sensors 15, no. 9: 24530-24552. https://doi.org/10.3390/s150924530