• DocumentCode
    7309
  • Title

    All-Metal Optical Fiber Accelerometer With Low Transverse Sensitivity for Seismic Monitoring

  • Author

    Dongshan Jiang ; Wentao Zhang ; Fang Li

  • Author_Institution
    Optoelectron. Syst. Lab., Inst. of Semicond., Beijing, China
  • Volume
    13
  • Issue
    11
  • fYear
    2013
  • fDate
    Nov. 2013
  • Firstpage
    4556
  • Lastpage
    4560
  • Abstract
    An all-metal double metal diaphragm-based optical fiber accelerometer with low transverse sensitivity is proposed and experimentally demonstrated. The theoretical analysis is given based on the electro-mechanical theory. Finite element modal analysis shows that the proposed accelerometer has low transverse sensitivity. Calibration results show that axis responsivity is 41 dB (re: 0 dB = 1 rad/g) with a fluctuation ±2 dB in frequency bandwidth of 5-400 Hz. The transverse sensitivity is ~ 3 dB (re: 0 dB = 1 rad/g) with a fluctuation ±1.5 dB. A transverse sensitivity of about -40 dB is achieved. The fluctuation of the acceleration responsivity for the three accelerometers is within ±2.5 dB, which shows good consistency of the proposed accelerometer. The minimum phase demodulation detection accuracy of the phase-generated carrier is 10-5 rad/Hz1/2, and the minimum detectable acceleration can be 90 ng/Hz1/2 theoretically. With an all-metal structure, the proposed accelerometer is expected to improve the reliability of long-term use in harsh environment. These desirable features show that the proposed optical fiber accelerometer is promising for seismic wave monitoring in oil and gas exploration.
  • Keywords
    acceleration measurement; accelerometers; calibration; fibre optic sensors; finite element analysis; geophysical equipment; geophysical prospecting; hydrocarbon reservoirs; modal analysis; seismic waves; seismology; acceleration responsivity fluctuation; all-metal double metal diaphragm-based optical fiber accelerometer; bandwidth 5 Hz to 400 Hz; calibration; electro-mechanical theory; finite element modal analysis; gas exploration; harsh environment; long-term use reliability; low transverse sensitivity; minimum phase demodulation detection accuracy; oil exploration; phase-generated carrier; seismic monitoring; seismic wave monitoring; theoretical analysis; All-metal; consistency; optical fiber accelerometer; transverse sensitivity;
  • fLanguage
    English
  • Journal_Title
    Sensors Journal, IEEE
  • Publisher
    ieee
  • ISSN
    1530-437X
  • Type

    jour

  • DOI
    10.1109/JSEN.2013.2270554
  • Filename
    6545329