• DocumentCode
    3045136
  • Title

    Optimal design of strap-down inertial navigation support under random loads

  • Author

    Hao XiangYu ; Li Ming ; Jia Hongguang ; Xuan Ming

  • Author_Institution
    Changchun Inst. of Opt., Fine Mech. & Phys., Changchun, China
  • fYear
    2010
  • fDate
    20-23 June 2010
  • Firstpage
    1251
  • Lastpage
    1255
  • Abstract
    In order to realize miniaturization and light weight of the strap-down inertial navigation system, and then to make sure that it works well under random loads, optimal design is applied to the strap-down inertial navigation support with the methods of topology optimization and size optimization. Firstly, based on the installation requirement of devices and connection requirement of the support and the carrier, the initial structure of the support is designed. Topology optimization with FEA software ANSYS is adopted on the initial structure to get the basic one. Then 5 critical sizes are chosen as design variables, and the support structure is optimized by means of size optimization to reach light weight with satisfying the requirement of dynamic stiffness. Finally, random vibration analysis is applied to the initial structure. In the mean time, random vibration test is carried out to qualify the analysis method. After the qualification, a random vibration analysis is applied to the optimized support structure to get the rms of displacement response and acceleration response of the support to validate whether the optimized structure is appropriate. The results indicate that the dynamic stiffness of the optimized support structure satisfies the design requirements, and its weight is lighter 49.38% than that of the initial one. This research can be a reference to the structure design of supports under random loads, and the result has been applied to the development and manufacture of a prototype aerocraft.
  • Keywords
    finite element analysis; inertial navigation; optimisation; FEA software ANSYS; dynamic stiffness; prototype aerocraft; random loads; random vibration analysis; size optimization; strapdown inertial navigation support; topology optimization; Acceleration; Aerodynamics; Building materials; Design optimization; Frequency; Inertial navigation; Optical design; Silicon compounds; Topology; Vibrations; Random vibration analysis; Size optimization; Strap-down inertial navigation system; Topology optimization;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Information and Automation (ICIA), 2010 IEEE International Conference on
  • Conference_Location
    Harbin
  • Print_ISBN
    978-1-4244-5701-4
  • Type

    conf

  • DOI
    10.1109/ICINFA.2010.5512119
  • Filename
    5512119