Single-Ended Eddy Current Micro-Displacement Sensor with High Precision Based on Temperature Compensation
-
Published:2024-03-07
Issue:3
Volume:15
Page:366
-
ISSN:2072-666X
-
Container-title:Micromachines
-
language:en
-
Short-container-title:Micromachines
Author:
Xu Zhengping1, Feng Yongtong12, Liu Yi12ORCID, Shi Fengxin1, Ge Yang1, Liu Han3, Cao Wei1, Zhou Hong1, Geng Shuang3, Lin Wenqi1
Affiliation:
1. Suzhou Institute of Biomedical Engineering and Technology, Chinese Academy of Sciences, Suzhou 215163, China 2. School of Biomedical Engineering (Suzhou), Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei 230026, China 3. Suzhou Guoke Medical Technology Development (Group) Co., Ltd., Suzhou 215163, China
Abstract
To measure the micro-displacement reliably with high precision, a single-ended eddy current sensor based on temperature compensation was studied in detail. At first, the principle of the eddy current sensor was introduced, and the manufacturing method of the probe was given. The overall design plan for the processing circuit was induced by analyzing the characteristics of the probe output signal. The variation in the probe output signal was converted to pulses with different widths, and then it was introduced to the digital phase discriminator along with a reference signal. The output from the digital phase discriminator was processed by a low-pass filter to obtain the DC component. At last, the signal was amplified and compensated to reduce the influence of temperature. The selection criteria of the frequency of the exciting signal and the design of the signal conditioning circuit were described in detail, as well as the design of the temperature-compensating circuit based on the digital potentiometer with an embedded temperature sensor. Finally, an experimental setup was constructed to test the sensor, and the results were given. The results show that nonlinearity exists in the single-ended eddy current sensor with a large range. When the range is 500 μm, the resolution can reach 46 nm, and the repeatability error is ±0.70% FR. Within the temperature range from +2 °C to +58 °C, the voltage fluctuation in the sensor is reduced to 44 mV after temperature compensation compared to the value of 586 mV before compensation. The proposed plan is verified to be feasible, and the measuring range, precision, and target material should be considered in real-world applications.
Reference26 articles.
1. Measurement of ball nut profile using laser sensors;Wang;Opt. Precis. Eng.,2020 2. Performance analysis of a digital capacitance measuring circuit;Xu;Rev. Sci. Instrum.,2015 3. Wang, W., Yang, H., Zhang, M., Chen, Z., Shi, G., Lu, K., Xiang, K., and Ju, B. (2018). A novel method for the micro-clearance measurement of a precision spherical joint based on a spherical differential capacitive sensor. Sensors, 18. 4. Ma, T., Yang, S., Xu, Y., Liu, D., Hou, J., and Liu, Y. (2022). Analysis and Correction of Measurement Error of Spherical Capacitive Sensor Caused by Assembly Error of the Inner Frame in the Aeronautical Optoelectronic Pod. Sensors, 22. 5. Yang, S., Xu, Y., Xu, Y., Ma, T., Wang, H., Hou, J., Liu, D., and Shen, H. (2022). A Novel Method for Detecting the Two-Degrees-of-Freedom Angular Displacement of a Spherical Pair, Based on a Capacitive Sensor. Sensors, 22.
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|