Study on error dynamic sampling and compensation model of the time grating displacement sensor

被引:0
|
作者
Yang J. [1 ]
Zhang D. [1 ]
Lu Y. [1 ]
Wu Z. [1 ]
Zhou R. [1 ]
机构
[1] Engineering Research Center of Mechanical Testing Technology and Equipment, Ministry of Education, Chongqing University of Technology, Chongqing
关键词
Cubic spline interpolation; Error compensation model; Fourier harmonic compensation; Time grating displacement sensor;
D O I
10.19650/j.cnki.cjsi.J2209601
中图分类号
学科分类号
摘要
The compensation effect of the current dynamic compensation model of the time grating displacement sensor is affected by the speed of calibration platform. To address this issue, an error compensation model based on cubic spline interpolation-Fourier harmonic compensation method is proposed. Firstly, the periodic distribution characteristics of multiple probe and whole cycle error curves of time grating displacement sensor are utilized. The short period error is affected by the speed of calibration platform, and the "dislocation" error is introduced. The dislocation error directly affects the compensation effect of the short period error compensation model. Secondly, the cubic spline interpolation method is used to locate the error sampling position accurately and reconstruct the short period error curve accurately. Finally, according to the reconstruction of short period error curve and the method of Fourier harmonic compensation short period error compensation model is established, the error compensation effect of time grating displacement sensor is improved. Experimental results show that the peak-to-peak value of short period error decreases to 1.7" after using the compensation model. The compensation effect of short period error is better than the traditional compensation model based on Fourier harmonic compensation method. When the calibration platform rate is 3 r/min, the compensation effect can be increased by 56.0%. It cannot only meet the working efficiency of sensor dynamic calibration, but also meet the demand of sensor high-precision error calibration. © 2022, Science Press. All right reserved.
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页码:9 / 18
页数:9
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共 16 条
  • [1] PENG D L, LI Y, FU M, Et al., Study on parasitic time grating sensors used for mechanical transmission error measurement under harsh and special environment, Chinese Journal of Scientific Instrument, 34, 2, pp. 359-364, (2013)
  • [2] LIU X, ZHAN B, YU Z, Et al., A miniaturized capacitive absolute angular positioning sensor based on a dual two stage secondary re-modulation scheme with time-division multiplexing[J], Sensors and Actuators a Physical, 310, (2020)
  • [3] PENG D L, LIU CH K, TAN W M., Study on the theory of time space coordinate transformation and the time grating displacement sensor [J], Chinese Journal of Scientific Instrument, 4, pp. 338-342, (2000)
  • [4] CHEN Z R, LI X, FENG X J, Et al., Research on absolute linear time-grating displacement sensor with one-pole-difference structure and analysis of measurement error characteristics, Optics and Precision Engineering, 30, 6, pp. 667-677, (2022)
  • [5] SHEN H Y, FU J Z, HE Y, Et al., On-line asynchronous compensation methods for static/quasistatic error imple-mentted on CNC machine tools[J], International Journal of Machine Tools and Manufacture, 60, pp. 14-26, (2012)
  • [6] LI B, ZHANG Y, WANG L P, Et al., Modeling for CNC machine tool thermal error based on genetic algorithm optimization wavelet neural networks, Journal of Mechanical Engineering, 55, 21, pp. 215-220, (2019)
  • [7] MIRANDA DANIEL L, SCHWARTZ JOEL B, LOOMIS ANDREW C, Et al., Static and dynamic error of a biplanar video radiography system using marker-based and marker-less tracking techniques[J], Journal of Biomechanical Engineering, 133, 12, (2011)
  • [8] HOTAIT M A, KAHRAMAN A., Experiments on the relationship between the dynamic transmission error and the dynamic stress factor of spur gear pairs, Mechanism and Machine Theory, 70, pp. 116-128, (2013)
  • [9] LI H X, ZHANG R, HAN F T., Error testing and compensation of an inductosyn-based angular measurement system, Journal of Tsinghua University (Science and Technology), 56, 6, pp. 611-616, (2016)
  • [10] FABER J., Self-calibration and noise reduction of resolver sensor in servo drive application, ELEKTRO IEEE, pp. 174-178, (2012)