• DocumentCode
    41580
  • Title

    Design and Analysis of a High Sensitivity FBG Accelerometer Based on Local Strain Amplification

  • Author

    Jun Wang ; Gangding Peng ; Zhengliang Hu ; Huayong Yang ; Yongming Hu

  • Author_Institution
    Coll. of Optoelectron. Sci. & Eng., Nat. Univ. of Defense Technol., Changsha, China
  • Volume
    15
  • Issue
    10
  • fYear
    2015
  • fDate
    Oct. 2015
  • Firstpage
    5442
  • Lastpage
    5449
  • Abstract
    A fiber Bragg grating (FBG) accelerometer based on a push-pull elastic cylinder structure is demonstrated. First, the model based on the uniform cylinder structure is analyzed and the optimized accelerometer parameters are given. Then, by designing a radius-varying cylinder structure, the FBG strain becomes larger than the cylinder strain, which leads to enhanced sensitivity amplification for a small accelerometer size and relatively high resonant frequency. Meanwhile, the influence of the transverse force on the accelerometer is theoretically analyzed. These results indicate that the transverse-induced FBG deformation is very big so that a strict transverse constrain is needed. The formula of the strain magnification is derived and the design rules of the strain magnification are given. After structure optimization according to the rules, the FBG strain increases to 1.5 times, the sensitivity increases to 1.82 times, whereas the resonant frequency reduces to 0.9 times compared with the parameters of accelerometer based on uniform cylinder structure. Finally, the accelerometer size reduces to Φ20 mm × 34 mm, the sensitivity increases to 623 pm/g, and the resonant frequency reduces to 449 Hz.
  • Keywords
    Bragg gratings; accelerometers; elasticity; fibre optic sensors; force measurement; force sensors; optimisation; strain measurement; strain sensors; FBG accelerometer; fiber Bragg grating accelerometer; frequency 449 Hz; local strain amplification; optimization; push-pull elastic cylinder structure; radius-varying cylinder structure; strain magnification; transverse force influence; transverse-induced FBG deformation; Accelerometers; Fiber gratings; Force; Resonant frequency; Sensitivity; Sensors; Strain; FBG accelerometer; elastic cylinder structure optimization; local strain amplification;
  • fLanguage
    English
  • Journal_Title
    Sensors Journal, IEEE
  • Publisher
    ieee
  • ISSN
    1530-437X
  • Type

    jour

  • DOI
    10.1109/JSEN.2014.2370640
  • Filename
    6955835