Experimental Investigation of High Temperature-Resistant Inductive Sensor for Blade Tip Clearance Measurement
Abstract
:1. Introduction
2. Method and Sensor
2.1. Inductive Tip Clearance Measurement
2.2. Sensor Structure and Manufacture
3. Sensor Performance
3.1. Characteristics Calibration
3.2. Heat Resistance Test
4. Thermal Effect on Sensor
4.1. Experiment Method
4.2. Experiment Results
5. Conclusions
- The designed sensor with planar coil made of platinum wire is proved to be a good inductive sensor for its phase angle is up to 85° and quality factor is 14.27 under 4 MHz excitation frequency.
- The sensor performance meets the requirements of tip clearance measurement for the measuring range of sensor is proved to be at least 5 mm and the resolution is better than 10 μm within 5 mm range according to static calibration result. It is also found that the sensor coil repeatability is almost better than 0.05% within the whole sensing range.
- The encapsulated platinum coil can be long-term (2 h) heat-resistant at 1100 °C and maintains a good stability during multiple temperature cycles. This suggests the designed sensor is capable to operate in the high temperature for a long time and that is an important basis for the sensor to be used in turbine tip clearance measurement in the future.
- The inductance and resistance of the sensor coil can be solved based by phasor analysis and using the series resistance circuit. This decoupled analysis of sensor parameters makes its application range wider.
Author Contributions
Funding
Conflicts of Interest
References
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Clearance (mm) | dV/V0 (−%) |
---|---|
4.95 | 0.465 |
4.96 | 0.457 |
4.97 | 0.450 |
4.98 | 0.442 |
4.99 | 0.434 |
5.00 | 0.427 |
Clearance (mm) | Voltage (V) | Repeatibility (%) |
---|---|---|
0.0 | 0.41332 | 0.0327 |
0.5 | 0.43260 | 0.0300 |
1.0 | 0.44202 | 0.0171 |
1.5 | 0.44786 | 0.0288 |
2.0 | 0.45032 | 0.0179 |
2.5 | 0.45314 | 0.0055 |
3.0 | 0.45352 | 0.0311 |
3.5 | 0.45458 | 0.0593 |
4.0 | 0.45614 | 0.0483 |
4.5 | 0.45706 | 0.0378 |
5.0 | 0.45781 | 0.0327 |
p0 | p1 | p2 | |
---|---|---|---|
R(T) | 1.9779 | −9.7757 × 10−5 | 3.1143 × 10−7 |
L(T) | 0.12227 | −2.8571 × 10−9 | / |
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Zhao, Z.; Liu, Z.; Lyu, Y.; Gao, Y. Experimental Investigation of High Temperature-Resistant Inductive Sensor for Blade Tip Clearance Measurement. Sensors 2019, 19, 61. https://doi.org/10.3390/s19010061
Zhao Z, Liu Z, Lyu Y, Gao Y. Experimental Investigation of High Temperature-Resistant Inductive Sensor for Blade Tip Clearance Measurement. Sensors. 2019; 19(1):61. https://doi.org/10.3390/s19010061
Chicago/Turabian StyleZhao, Ziyu, Zhenxia Liu, Yaguo Lyu, and Yajun Gao. 2019. "Experimental Investigation of High Temperature-Resistant Inductive Sensor for Blade Tip Clearance Measurement" Sensors 19, no. 1: 61. https://doi.org/10.3390/s19010061
APA StyleZhao, Z., Liu, Z., Lyu, Y., & Gao, Y. (2019). Experimental Investigation of High Temperature-Resistant Inductive Sensor for Blade Tip Clearance Measurement. Sensors, 19(1), 61. https://doi.org/10.3390/s19010061