• Laser & Optoelectronics Progress
  • Vol. 59, Issue 19, 1906002 (2022)
Zhenkun Tan1、*, Yao Li1, Yingxiu Kong1, Pengfei Wu2, and Fangyuan Xia3、4
Author Affiliations
  • 1Faculty of Optoelectronic Engineering, Xi’an Technological University, Xi’an 710021, Shaanxi, China
  • 2Faculty of Automation & Information Engineering, Xi’an University of Technology, Xi’an 710048, Shaanxi, China
  • 3Beijing Institute of Tracking and Telecommunication Technology, Beijing 100094, China
  • 4Xi’an Institute of Space Radio Technology, Xi’an 710000, Shaanxi, China
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    DOI: 10.3788/LOP202259.1906002 Cite this Article Set citation alerts
    Zhenkun Tan, Yao Li, Yingxiu Kong, Pengfei Wu, Fangyuan Xia. Research on Influencing Factors of Distance Uncertainty in Multiwavelength Heterodyne Interferometric Distance Measurement Method Based on Dual-Optical Frequency Comb[J]. Laser & Optoelectronics Progress, 2022, 59(19): 1906002 Copy Citation Text show less
    Principle of distance measurement of multi wavelength heterodyne interference based on dual-optical frequency comb[19]
    Fig. 1. Principle of distance measurement of multi wavelength heterodyne interference based on dual-optical frequency comb[19]
    Schematic diagram of the spectrum of a heterodyne dual-optical frequency comb[19]
    Fig. 2. Schematic diagram of the spectrum of a heterodyne dual-optical frequency comb[19]
    Variation curve of distance measurement uncertainty with m for different phase measurement uncertainty
    Fig. 3. Variation curve of distance measurement uncertainty with m for different phase measurement uncertainty
    Variation curve of distance measurement uncertainty with m at different repetition frequencies
    Fig. 4. Variation curve of distance measurement uncertainty with m at different repetition frequencies
    Variation curve of uncertainty of distance measurement with uncertainty of repetition frequency of signal optical frequency comb under different distances to be measured
    Fig. 5. Variation curve of uncertainty of distance measurement with uncertainty of repetition frequency of signal optical frequency comb under different distances to be measured
    Variation curve of the distance measurement uncertainty with the phase measurement uncertainty when different fine synthetic wavelengths
    Fig. 6. Variation curve of the distance measurement uncertainty with the phase measurement uncertainty when different fine synthetic wavelengths
    Variation curve of distance measurement uncertainty with synthetic wavelength m for different methods
    Fig. 7. Variation curve of distance measurement uncertainty with synthetic wavelength m for different methods
    Variation curve of distance measurement uncertainty with temperature for different methods
    Fig. 8. Variation curve of distance measurement uncertainty with temperature for different methods
    Variation curve of distance measurement uncertainty with pressure for different methods
    Fig. 9. Variation curve of distance measurement uncertainty with pressure for different methods
    Variation curve of measurement uncertainty with carbon dioxide volume fraction by different methods
    Fig. 10. Variation curve of measurement uncertainty with carbon dioxide volume fraction by different methods
    Zhenkun Tan, Yao Li, Yingxiu Kong, Pengfei Wu, Fangyuan Xia. Research on Influencing Factors of Distance Uncertainty in Multiwavelength Heterodyne Interferometric Distance Measurement Method Based on Dual-Optical Frequency Comb[J]. Laser & Optoelectronics Progress, 2022, 59(19): 1906002
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