• DocumentCode
    3167161
  • Title

    Vibration control of ocean platform based on buckling-restrained braces

  • Author

    Zhang, Jingjing ; Zhang, Jigang

  • Author_Institution
    Sch. of Civil Eng., Qingdao Technol. Univ., Qingdao, China
  • fYear
    2011
  • fDate
    16-18 April 2011
  • Firstpage
    2844
  • Lastpage
    2847
  • Abstract
    The conventional brace appears buckling easily under the strong earthquake. and it can not meet the demand of the structure. The hysteretic behavior is stable and the energy absorption capacity is good. The buckling - restrained brace (BRB) can undergo fully reversed axial yield cycles without loss of stiffness and strength. Ocean platform structure is complicated, and the surrounding environment is harsh. It is significant to study the platform structure vibration control. BRB structure with isolation layer under earthquake and ice load simulation is studied based on ANSYS. The results show that the BRB can reduce the seismic responses of the ocean platform and significantly suppress the maximal acceleration by dissipating the vibration energy through inelastic deformation. The seismic performance is improved. Therefore BRB with simlpe bilinear resilisence is adoptadopted in structure wiih more reqirment to resist horizontal and seismic load. It has a good future.
  • Keywords
    buckling; deformation; elasticity; offshore installations; vibration control; ANSYS; buckling restrained braces; earthquake; energy absorption capacity; fully reversed axial yield cycles; ice load simulation; inelastic deformation; ocean platform; stiffness; vibration control; vibration energy; Acceleration; Earthquakes; Finite element methods; Ice; Load modeling; Oceans; Vibrations; ANSYS; Ocean platform vibration; buckling-restrained brace; hysteretic behavior; seismic behavior;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Consumer Electronics, Communications and Networks (CECNet), 2011 International Conference on
  • Conference_Location
    XianNing
  • Print_ISBN
    978-1-61284-458-9
  • Type

    conf

  • DOI
    10.1109/CECNET.2011.5769205
  • Filename
    5769205