DocumentCode :
81833
Title :
Numerical Derivation-Based Serial Iterative Dynamic Decoupling-Compensation Method for Multiaxis Force Sensors
Author :
Shuang-Long Yang ; Ke-Jun Xu
Author_Institution :
Sch. of Electr. & Autom. Eng., Hefei Univ. of Technol., Hefei, China
Volume :
63
Issue :
12
fYear :
2014
fDate :
Dec. 2014
Firstpage :
2950
Lastpage :
2962
Abstract :
A novel serial iterative dynamic decouplingcompensation (SIDDC) method is proposed for multiaxis force sensors to solve their problems of cross-axis dynamic coupling interference and the main channel dynamic error. Specifically, based on the output coupling model of the sensor, the Jacobi, Gauss-Seidel (G-S), and successive over-relaxation (SOR) iterative methods are introduced into the sensor dynamic decoupling to solve the most critical problem of dynamic coupling interference. The frequency-domain analysis method of the iterative decoupling convergence characteristic is proposed, and the convergence characteristics of the three iterative methods are compared. Then, the frequency-dependent relaxation factorbased SORM iterative dynamic decoupling method, which may be more effective is put forward, and the construction method of the frequency-dependent relaxation factor with its amplitudefrequency characteristic meeting the specific demand is given in detail. Subsequently, the compensator of the sensor main channel is adopted to directly compensate the decoupling result for reducing the main channel dynamic error. In addition, according to the static coefficient matrix of the sensor output coupling model, the dynamic compensation result is reconstructed so as to ensure the static characteristic of the sensor before and after dynamic decoupling-compensation remain unchanged. Finally, the experimental data verifications of the proposed SIDDC method are performed for a three-component bar-shaped wind tunnel strain gauge balance. The verification results indicate that the proposed SIDDC method, especially the SORM iteration based method, is much effective for improving the dynamic performances of the multiaxis force sensors.
Keywords :
Jacobian matrices; compensation; force sensors; frequency-domain analysis; interference suppression; iterative methods; measurement errors; strain gauges; wind tunnels; Gauss-Seidel iterative method; Jacobi iterative method; SIDDC method; SORM iterative dynamic decoupling method; amplitude-frequency characteristic; channel dynamic error; cross-axis dynamic coupling interference; dynamic performances; frequency-dependent relaxation factor; frequency-domain analysis method; iterative decoupling convergence characteristic; multiaxis force sensor; numerical derivation-based serial iterative dynamic decoupling-compensation method; output coupling model; static characteristic; static coefficient matrix; successive over-relaxation iterative method; three-component bar shaped wind tunnel strain gauge balance; Force sensors; Frequency-domain analysis; Iterative methods; Sensor phenomena and characterization; Dynamic coupling interference; dynamic error; multiaxis force sensor; serial iterative dynamic decoupling-compensation (SIDDC); static reconstruction; wind tunnel strain gauge balance; wind tunnel strain gauge balance.;
fLanguage :
English
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9456
Type :
jour
DOI :
10.1109/TIM.2014.2313958
Filename :
6799230
Link To Document :
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