• Laser & Optoelectronics Progress
  • Vol. 59, Issue 7, 0728002 (2022)
Mengdi Nie1, Gang Zheng1、*, Xiongxing Zhang1, Qiming Sheng2, Yuan Guo1, Lang Bai1, and Yuan Han2
Author Affiliations
  • 1School of Opto-Electronic Engineering, Xi'an Technological University, Xi'an , Shaanxi 710021, China
  • 2School of Electronic Information Engineering, Xi'an Technological University, Xi'an , Shaanxi 710021, China
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    DOI: 10.3788/LOP202259.0728002 Cite this Article Set citation alerts
    Mengdi Nie, Gang Zheng, Xiongxing Zhang, Qiming Sheng, Yuan Guo, Lang Bai, Yuan Han. Compensation for Temperature Drift in Frequency-Modulated Continuous-Wave Interference Fiber Optic Pressure Sensor[J]. Laser & Optoelectronics Progress, 2022, 59(7): 0728002 Copy Citation Text show less

    Abstract

    The temperature-pressure cross-sensitivity problem in a frequency-modulated continuous-wave (FMCW) interference fiber pressure sensor is addressed in this study using a real-time temperature drift compensation method. The reference and pressure sensors are bonded and placed in the same temperature field. The temperature drift correction principle is evaluated using the relationship between the cavity length changes of the two sensors and the temperature. Further, the temperature drift of the pressure sensor is corrected in real-time using the temperature drift compensation method. The experimental results show that the pressure measurement error of the method decreases from 9.21% to 0.32% in the heating process, the pressure measurement error decreases from 3.33% to -0.24% in the cooling process, and the pressure drift of the pressure sensor is less than 0.1 kPa within 60 min of cooling. The temperature compensation method significantly improves the measurement accuracy of the FMCW interference fiber pressure sensor.
    I(XOPD,t)=I01+Vcos2πΔvvmXOPDct+2πλ0XOPD=I0[1+Vcos(2πvbt+ϕb0)]
    ϕb0=2πλ0XOPD
    XOPD=2nd
    ΔXOPD=2nΔd
    Δd=3(1-ν2)γ416Eh3ΔP
    ΔdΔP=3(1-ν2)γ416Eh3
    ΔP=4Eh3λ0ϕb03π1-ν2γ4
    ΔL1=K1,TΔT
    ΔL2=K2,TΔT+K2,PΔP
    ΔLT=K2,TK1,TΔL1
    ΔLP=ΔL2-K2,TK1,TΔL1
    ΔP=16Eh331-ν2γ4ΔL2-K2,TK1,TΔL1
    σ=m-ff
    Mengdi Nie, Gang Zheng, Xiongxing Zhang, Qiming Sheng, Yuan Guo, Lang Bai, Yuan Han. Compensation for Temperature Drift in Frequency-Modulated Continuous-Wave Interference Fiber Optic Pressure Sensor[J]. Laser & Optoelectronics Progress, 2022, 59(7): 0728002
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