z-logo
open-access-imgOpen Access
A continuous model of a standing human body in vertical vibration
Author(s) -
Qingwen Zhang,
Yu Zhang,
Tianjian Ji
Publication year - 2019
Publication title -
engineering review
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.198
H-Index - 11
eISSN - 1849-0433
pISSN - 1330-9587
DOI - 10.30765/er.39.2.2
Subject(s) - biomechanics , vibration , stiffness , mass distribution , natural frequency , finite element method , modal , modal analysis , parametric statistics , parametric model , structural engineering , normal mode , added mass , mechanics , engineering , mathematics , acoustics , physics , materials science , statistics , quantum mechanics , galaxy , polymer chemistry , thermodynamics
This paper develops a continuous standing human body model in the vertical vibration based on an anthropomorphic model, two measured natural frequencies of a biomechanics model, and structural dynamics methods. The mass distribution of a standing body is formed using the mass distribution of fifteen body segments in the anthropomorphic model.The axial stiffness of the model is determined based on the best matching to the two natural frequencies of the biomechanics model which were obtained using shaking table tests. Four similar models are assessed using finite element parametric analysis. The best of the four models has seven uniform mass segments with two stiffnesses and the samefundamental natural frequency as that of the biomechanics model, but its second natural frequency is 10% higher. The mode shapes of the continuous model are presented to demonstrate the relative magnitude of vibration throughout the height of the body. Finally the modal mass and stiffness of the continuous model are evaluated, which are related to some simple discrete models.

The content you want is available to Zendy users.

Already have an account? Click here to sign in.
Having issues? You can contact us here