Acta Optica Sinica, Volume. 40, Issue 15, 1501001(2020)

Method for Detecting Atmospheric Pressure Profile Using Rotational and Vibrational Raman Lidar

Huige Di1, Jianyu Wang2, Xuan Zhao1, Geng Han1, Xiaonan Wen1, Xingqi Zhang1, Yufeng Wang1, Yuehui Song1, and Dengxin Hua1、*
Author Affiliations
  • 1School of Mechanical and Precision Instrument Engineering, Xi′an University of Technology, Xi′an, Shaanxi 710048, China
  • 2Key Laboratory of Active Opto-Electronics Technology, Chinese Academy of Sciences, Shanghai 200083, China
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    Figures & Tables(14)
    Atmospheric pressure over Xian from 2015 to 2018
    Atmospheric pressure profiles over Xian. (a) 4-year atmospheric pressure profiles from sounding balloon and the 1976 US standard atmospheric pressure model; (b) fluctuation of atmospheric pressure with height
    Layout of Raman lidar system
    Spectroscopic system diagram of Raman lidar
    Atmospheric temperature and pressure profiles. (a) Temperature profile; (b) pressure profile
    Atmospheric pressure error profile between sounding pressure and the retrieval of sounding temperature
    Pressure inversion error due to temperature error. (a) Temperature profile with 5 K random error; (b) temperature profile with 5 K random error and 3 K fixed error; (c) atmospheric pressure error profile
    Errors of atmospheric pressure profile obtained from measured temperature data by lidar. (a) Temperature profile 1 with error 1 and sounding temperature profile; (b) temperature profile 2 with error 2 and sounding temperature profile; (c) atmospheric pressure error profile caused by temperature error in two cases; (d) profile of pressure errors in two cases including temperature inversion error and sounding data error
    Atmospheric pressure inversion error introduced by reference point pressure deviation
    Specific humidity and pressure inversion error. (a) Specific humidity profile from sounding balloon; (b) pressure inversion error introduced by specific humidity
    Comparison of atmospheric temperature, water vapor mixing ratio from lidar and sounding balloon. (a) Range-squared-corrected signal (RSCS); (b) temperature profiles; (c) water vapor mixing ratio profiles
    Atmospheric pressure profile retrieved from lidar data and error profile. (a) Atmospheric pressure profile; (b) inversion error profile
    Temperature error profile and the corresponding pressure error profile
    • Table 1. Parameters of Raman lidar system

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      Table 1. Parameters of Raman lidar system

      Parameter of emitter and receiverIndexParameter of spectroscopic systemIndex
      Emitter(Nd∶YAG laser)Wavelength /nm354.7Spectroscopic systemDM1Transmittance TR>99%,350--365 nm;
      Reflectivity RT>90%,365--430 nm
      Pulse power /mJ~150DM2Transmittance TR>99%,360--395 nm
      Reflectivity RT>90%,400--430 nm
      Frequency /Hz20IF1Wavelength /nm354.7
      Peak /nm1
      Transmittance /%70
      Pulse width /ns7IF2Wavelength /nm386.7
      Peak /nm1
      Transmittance /%80
      ReceiverTelescope diameter /mm250IF3Wavelength /nm407.6
      Peak /nm1
      Transmittance /%65
      Field of view /mrad1IF4a+IF4bWavelength /nm353.9
      Peak /nm0.6
      Transmittance /%22.6
      Photomultiplier tube (PMT)HamamatsuR3896IF5a+IF5bWavelength /nm352.5
      Peak /nm1.1
      Transmittance /%22.3
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    Huige Di, Jianyu Wang, Xuan Zhao, Geng Han, Xiaonan Wen, Xingqi Zhang, Yufeng Wang, Yuehui Song, Dengxin Hua. Method for Detecting Atmospheric Pressure Profile Using Rotational and Vibrational Raman Lidar[J]. Acta Optica Sinica, 2020, 40(15): 1501001

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    Paper Information

    Category: Atmospheric Optics and Oceanic Optics

    Received: Feb. 1, 2020

    Accepted: Apr. 28, 2020

    Published Online: Aug. 14, 2020

    The Author Email: Hua Dengxin (dengxinhua@xaut.edu.cn)

    DOI:10.3788/AOS202040.1501001

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