Improving Angular Accuracy of a Scanning Mirror Based on Error Modeling and Correction
Scanning mirrors appear to be key components in optoelectronic systems for line-of-sight (LOS) stabilization. For improving the angular accuracy of a scanning mirror based on the eddy current displacement sensor measurement, an angular error-correction method is proposed and demonstrated. A mathemat...
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doaj-ff5ad0c88e7e4e4fb026ec6da8361fb92020-11-25T00:39:02ZengMDPI AGSensors1424-82202019-01-0119236710.3390/s19020367s19020367Improving Angular Accuracy of a Scanning Mirror Based on Error Modeling and CorrectionYue Fan0Wenli Ma1Ping Jiang2Jinlong Huang3Kewei Chen4Nian Pan5Institute of Optics and Electronics, Chinese Academy of Sciences, 610209 Chengdu, ChinaInstitute of Optics and Electronics, Chinese Academy of Sciences, 610209 Chengdu, ChinaInstitute of Optics and Electronics, Chinese Academy of Sciences, 610209 Chengdu, ChinaInstitute of Optics and Electronics, Chinese Academy of Sciences, 610209 Chengdu, ChinaInstitute of Optics and Electronics, Chinese Academy of Sciences, 610209 Chengdu, ChinaInstitute of Optics and Electronics, Chinese Academy of Sciences, 610209 Chengdu, ChinaScanning mirrors appear to be key components in optoelectronic systems for line-of-sight (LOS) stabilization. For improving the angular accuracy of a scanning mirror based on the eddy current displacement sensor measurement, an angular error-correction method is proposed and demonstrated. A mathematic angular error model with physical parameters was developed, and the cross-validation method was employed to determine the reasonable order of the Maclaurin series used in the error model, which increased the exactitude and robustness of the correction method. The error parameters were identified by accurately fitting the calibrated angular errors with the error model, which showed excellent error prediction performance. Based on the angular calculation model corrected by the error model, the closed-loop control system was established to obtain accurate deflection angles. Experimental results show that within the deflection angle of ±1.5 deg, the angular accuracy was improved from 0.28 deg to less than 1.1 arcsec, and the standard deviation for six measurements was less than 1.2 arcsec, which indicates that the angle correction method was effective in improving the linearity of the eddy current sensors and reducing the influence of manufacturing and installation errors.http://www.mdpi.com/1424-8220/19/2/367scanning mirrorangular accuracyeddy current displacement sensorerror modelangle calibrationmodel correction |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yue Fan Wenli Ma Ping Jiang Jinlong Huang Kewei Chen Nian Pan |
spellingShingle |
Yue Fan Wenli Ma Ping Jiang Jinlong Huang Kewei Chen Nian Pan Improving Angular Accuracy of a Scanning Mirror Based on Error Modeling and Correction Sensors scanning mirror angular accuracy eddy current displacement sensor error model angle calibration model correction |
author_facet |
Yue Fan Wenli Ma Ping Jiang Jinlong Huang Kewei Chen Nian Pan |
author_sort |
Yue Fan |
title |
Improving Angular Accuracy of a Scanning Mirror Based on Error Modeling and Correction |
title_short |
Improving Angular Accuracy of a Scanning Mirror Based on Error Modeling and Correction |
title_full |
Improving Angular Accuracy of a Scanning Mirror Based on Error Modeling and Correction |
title_fullStr |
Improving Angular Accuracy of a Scanning Mirror Based on Error Modeling and Correction |
title_full_unstemmed |
Improving Angular Accuracy of a Scanning Mirror Based on Error Modeling and Correction |
title_sort |
improving angular accuracy of a scanning mirror based on error modeling and correction |
publisher |
MDPI AG |
series |
Sensors |
issn |
1424-8220 |
publishDate |
2019-01-01 |
description |
Scanning mirrors appear to be key components in optoelectronic systems for line-of-sight (LOS) stabilization. For improving the angular accuracy of a scanning mirror based on the eddy current displacement sensor measurement, an angular error-correction method is proposed and demonstrated. A mathematic angular error model with physical parameters was developed, and the cross-validation method was employed to determine the reasonable order of the Maclaurin series used in the error model, which increased the exactitude and robustness of the correction method. The error parameters were identified by accurately fitting the calibrated angular errors with the error model, which showed excellent error prediction performance. Based on the angular calculation model corrected by the error model, the closed-loop control system was established to obtain accurate deflection angles. Experimental results show that within the deflection angle of ±1.5 deg, the angular accuracy was improved from 0.28 deg to less than 1.1 arcsec, and the standard deviation for six measurements was less than 1.2 arcsec, which indicates that the angle correction method was effective in improving the linearity of the eddy current sensors and reducing the influence of manufacturing and installation errors. |
topic |
scanning mirror angular accuracy eddy current displacement sensor error model angle calibration model correction |
url |
http://www.mdpi.com/1424-8220/19/2/367 |
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