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频差偏差对全视场外差测量精度的影响 被引量:2

Effect of frequency difference deviation on full-field heterodyne measurement accuracy
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摘要 根据全视场外差测量的相关理论,推导了频差偏差与仪器测量精度的相互关系.分析了频差大小、频差偏差、采集初始时间、初始相位、采样频率和采样周期数等相关参数对测量精度的影响.研究结果可以作为全视场外差测量设备设计、参数选取的理论依据;并给出了通过合理选择采样时间和采样帧数提高测量精度的一种方法. With the advantages of high precision and great environmental adaptability, laser heterodyne interferometry has been successfullyused in some areas, such as measuring distance and angle and other point detection. The Hertz-level frequency-shifting technology greatly improves the accuracy and stability of surface measurement and extends its application to the areas of array detection, such as three-dimensional topography measurement, smooth surface measurement,digital holography, speckle measurement, etc. The frequency difference of heterodyne interferometry is realized by acousto-optic frequency shifter under the control of two radio frequency signals each with a fixed frequency value. However, a deviation of the real value from the design value of frequency always exists, which is referred to as frequency difference deviation. It causes the heterodyne frequency and the frame rate of the array detector to be unable to be strictly matched, thus affecting the improvement of measurement accuracy. According to the theory of full-field heterodyne measurement, we derive the relationship between frequency difference deviation and measurement accuracy of the heterodyne measurement instrument, and analyze the effects of relevant parameters including the value of frequency difference, frequency deviation, initial sampling time, initial phase, sampling frequency, and sampling cycles on measurement accuracy. A method of improving the measurement accuracy is proposed by reasonably selecting the sampling time and frame number. Analysis shows that the initial sampling time and initial phase have the same effect on the measurement accuracy. With the reasonable choosing of measurement parameters and processing methods, the measurement accuracy of the instrument could be greatly improved. In addition, the peak value of full-field heterodyne measurement error is linearly related to the frequency difference deviation. In the case of a certain frequency difference deviation, the instrument could achieve a higher measurement accuracy with greater frequency difference, but requires a higher frame rate of detector at the same time. As a result, designers should choose an appropriate value of frequency difference for measurement instrument. Furthermore, increasing the sampling frequency could also improve the measurement accuracy.Actually, if sampling frames are more than fifteen in a single cycle, the improvement of measurement accuracy would be limited. Multi-period sampling has little effect on measurement error caused by frequency difference deviation, and the measurement error is the limiting value of measurement accuracy that the instrument could reach. Therefore, this study could be used as a theoretical basis of the design and parameter selection and also the measurement accuracy analysis for full-field heterodyne measurement instrument development.
出处 《物理学报》 SCIE EI CAS CSCD 北大核心 2018年第2期62-68,共7页 Acta Physica Sinica
基金 国家自然科学基金青年科学基金(批准号:61605217) 中国科学院青年创新促进会(批准号:2015127)资助的课题~~
关键词 全视场外差 干涉测量 频差偏差 精度分析 full-field heterodyne, interference measurement, frequency difference deviation, accuracyanalysis
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  • 1Shelus P J 2001 Surveys in Geophysics 22 517.
  • 2Peggs G N, Maropoulos P G, Hughes E B, Forbes A B, Robson S, Ziebart M, Muralikrishnan B 2009 Proc. IMechE 223 571.
  • 3Kopeikin S M, Pavlis E, Pavlis D, Brumberg V A, Escapa A, Getino J, Gusev A, Muller J, Ni W T, Petrova N 2008 Advances in Space Re- search 42 1378.
  • 4Battat J B R, Chandler J F, Stubbs C W 2007 Phys. Rev. Lett. 99 241103.
  • 5Keem T, Gonda S, Misumi I, Huang Q X, Kurosawa T 2004 Applied Optics 43 2443.
  • 6Kim J W, Kang C S, Kim J A, Eom T, Cho M J, Kong H ] 2007 Optics Express 15 15759.
  • 7Liu Q, Huang Y, Cao J, Ou B Q, Guo B, Guan H, Huang X R, Gao K L 2011 Chin. Phys. Lett. 28 013201.
  • 8Hal! J L 2006 Reviews of Modern Physics 78 1279.
  • 9Meng F, Can S Y, Cai Y, Wang G Z, Cao J ELi T C, Fang Z J 2011 Acta Phys. Sin. 6 100601 (in Chinese).
  • 10Nathan R N 2011 nature photonics 5 186.

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