• Laser & Optoelectronics Progress
  • Vol. 58, Issue 19, 1906006 (2021)
Baiyan Hu1, Furong Wen1, Yongshan Cheng1, Weidong Wu1, and Quan Qi2、*
Author Affiliations
  • 1School of Computer and Information, Hubei Normal University, Huangshi , Hubei 435002, China
  • 2Information Department, General Hospital of the Central Theater Command of the People's Liberation Army, Wuhan , Hubei 430014, China
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    DOI: 10.3788/LOP202158.1906006 Cite this Article Set citation alerts
    Baiyan Hu, Furong Wen, Yongshan Cheng, Weidong Wu, Quan Qi. Simultaneous Measurement of Temperature and Pressure Based on Cascaded Fabry-Perot Interferometer[J]. Laser & Optoelectronics Progress, 2021, 58(19): 1906006 Copy Citation Text show less

    Abstract

    This article proposes and demonstrates a fiber optic sensor based on two cascaded Fabry-Perot interferometers (CFPIs) for simultaneous measurement of temperature and pressure. The sensor is made by fusion splicing of the single-mode fiber (SMF), hollow-core fiber (HCF), and double-hole fiber (DHF) in sequence. An air cavity FPI is formed in HCF and a silica cavity FPI is formed in DHF. The two FPIs are cascaded to form the mixed cavity FPI. The air cavity FPI is connected with the external environment via holes in the DHF, realizing sensing of air pressure with high sensitivity. At the same time, due to the thermo-optical effect and thermal expansion effect of the silica in the DHF, high sensitivity sensing is realized for temperature. In this article, in the air pressure measurement range of 0.1?0.6 MPa and the temperature measurement range of 60?260 °C, the sensitivity of the air cavity FPI to air pressure and temperature is 4 nm/MPa and 1 pm/°C, respectively, and the sensitivity of the mixed cavity FPI to air pressure and temperature is 0.5 nm/MPa and 9 pm/°C, respectively. The air cavity FPI and the mixing cavity FPI have different sensitivities to temperature and air pressure, and realize the dual parameter measurement of temperature and air pressure. At the same time, the sensing structure has simple manufacturing process, high integration, and high sensitivity.
    Iair=I1+I2+2I1I2cos ϕ12
    Imix=I1+I3+2I1I3cos ϕ13
    ϕ12=4n1L1πλ,  ϕ13=4n1L1+n2L2πλ
    RFSR1=λ1λ22n1L1RFSR2=λ1λ22n1L1+n2L2
    SP1=ΔλΔp=λ1n1dn1dp+1L1dL1dp
    SP3=ΔλΔp=λn1L1+n2L2×L1dn1dp+n1dL1dP+L2dn2dp+n2dL2dp
    ST1=ΔλΔT=λ1n1dn1dT+1L1dL1dT
    ST3=ΔλΔT=λn1L1+n2L2×L1dn1dT+n1dL1dT+L2dn2dT+n2dL2dT
    ΔPΔT=KFFPIPKSFPIPKFFPITKSFPIT-1ΔλFFPIΔλSFPI
    ΔPΔT=40.5 0.0010.009-1ΔλFFPIΔλSFPI
    Baiyan Hu, Furong Wen, Yongshan Cheng, Weidong Wu, Quan Qi. Simultaneous Measurement of Temperature and Pressure Based on Cascaded Fabry-Perot Interferometer[J]. Laser & Optoelectronics Progress, 2021, 58(19): 1906006
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