• DocumentCode
    1248879
  • Title

    Finite Element Modeling and Modal Analysis of the Human Spine Vibration Configuration

  • Author

    Li-Xin Guo ; Yi-Min Zhang ; Ming Zhang

  • Author_Institution
    Sch. of Mech. Eng. & Autom., Northeastern Univ., Shenyang, China
  • Volume
    58
  • Issue
    10
  • fYear
    2011
  • Firstpage
    2987
  • Lastpage
    2990
  • Abstract
    This study was designed to investigate the modal characteristics of the human spine. A 3-D finite element model of the spine T12-Pelvis segment was used to extract resonant frequencies and modal modes of the human spine. By finite element modal analysis and harmonic response analysis, several lower vibration modes in the flexion-extension, lateral bending, and vertical directions were obtained and its vibration configurations were shown in this paper. The results indicate that the lowest resonant frequency of the model is in the flexion-extension direction. The second-order resonant frequency is in the lateral bending direction and the third-order resonant frequency of the T12-Pelvis model is in the vertical direction. The results also show that lumbar spinal vertebrae conduct the rotation action during whole body vibration (WBV). The vibration configurations of the lumbar spine can explore the motion mechanism of different lumbar components under WBV and make us to understand the vibration-induced spine diseases. The findings in this study will be helpful to understand WBV-related injury of the spine in clinics and the ergonomics design and development of mechanical production to protect human spine safety.
  • Keywords
    biomechanics; biomedical engineering; bone; diseases; finite element analysis; harmonic analysis; injuries; medical signal processing; orthopaedics; physiological models; vibrations; 3D finite element model; ergonomics design; finite element modal analysis; flexion-extension direction; harmonic response analysis; human spine safety; human spine vibration configuration; lateral bending direction; lower vibration mode; lumbar spinal vertebrae; motion mechanism; spine T12-pelvis segment; vertical direction; vibration-induced spine disease; whole body vibration related injury; Biological system modeling; Computational modeling; Finite element methods; Humans; Resonant frequency; Spine; Vibrations; Biomechanics; finite element (FE) analysis; harmonic analysis; lumbar spine; modal analysis; Biomechanics; Finite Element Analysis; Humans; Lumbar Vertebrae; Middle Aged; Models, Biological; Vibration;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2011.2160061
  • Filename
    5898395