Theoretical relationship between vibration transmissibility and driving-point response functions of the human body

被引:20
作者
Dong, Ren G. [1 ]
Welcome, Daniel E. [1 ]
McDowell, Thomas W. [1 ]
Wu, John Z. [1 ]
机构
[1] NIOSH, Engn & Control Technol Branch, Morgantown, WV 26505 USA
关键词
BIODYNAMIC RESPONSE; VERTICAL VIBRATION; APPARENT MASS; BIOMECHANICAL MODEL; HAND-ARM; HEAD;
D O I
10.1016/j.jsv.2013.07.017
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
The relationship between the vibration transmissibility and driving-point response functions (DPRFs) of the human body is important for understanding vibration exposures of the system and for developing valid models. This study identified their theoretical relationship and demonstrated that the sum of the DPRFs can be expressed as a linear combination of the transmissibility functions of the individual mass elements distributed throughout the system. The relationship is verified using several human vibration models. This study also clarified the requirements for reliably quantifying transmissibility values used as references for calibrating the system models. As an example application, this study used the developed theory to perform a preliminary analysis of the method for calibrating models using both vibration transmissibility and DPRFs. The results of the analysis show that the combined method can theoretically result in a unique and valid solution of the model parameters, at least for linear systems. However, the validation of the method itself does not guarantee the validation of the calibrated model, because the validation of the calibration also depends on the model structure and the reliability and appropriate representation of the reference functions. The basic theory developed in this study is also applicable to the vibration analyses of other structures. Published by Elsevier Ltd.
引用
收藏
页码:6193 / 6202
页数:10
相关论文
共 20 条
  • [1] Biomechanical models of the human hand-arm to simulate distributed biodynamic responses for different postures
    Adewusi, S.
    Rakheja, S.
    Marcotte, P.
    [J]. INTERNATIONAL JOURNAL OF INDUSTRIAL ERGONOMICS, 2012, 42 (02) : 249 - 260
  • [2] Boileau P. E., 1997, Noise & Vibration Worldwide, V28, P7
  • [3] A body mass dependent mechanical impedance model for applications in vibration seat testing
    Boileau, PÉ
    Rakheja, S
    Wu, X
    [J]. JOURNAL OF SOUND AND VIBRATION, 2002, 253 (01) : 243 - 264
  • [4] Definition of a range of idealized values to characterize seated body biodynamic response under vertical vibration
    Boileau, PE
    Wu, X
    Rakheja, S
    [J]. JOURNAL OF SOUND AND VIBRATION, 1998, 215 (04) : 841 - 862
  • [5] A Proposed Theory on Biodynamic Frequency Weighting for Hand-Transmitted Vibration Exposure
    Dong, Ren G.
    Welcome, Daniel E.
    Mcdowell, Thomas W.
    Xu, Xueyan S.
    Krajnak, Kristine
    Wu, John Z.
    [J]. INDUSTRIAL HEALTH, 2012, 50 (05) : 412 - 424
  • [6] Estimation of the biodynamic responses distributed at fingers and palm based on the total response of the hand-arm system
    Dong, Ren G.
    Rakheja, Subhash
    McDowell, Thomas W.
    Welcome, Daniel E.
    Wu, John Z.
    [J]. INTERNATIONAL JOURNAL OF INDUSTRIAL ERGONOMICS, 2010, 40 (04) : 425 - 436
  • [7] AN IMPROVED BIOMECHANICAL MODEL FOR SIMULATING THE STRAIN OF THE HAND ARM SYSTEM UNDER VIBRATION STRESS
    FRITZ, M
    [J]. JOURNAL OF BIOMECHANICS, 1991, 24 (12) : 1165 - 1171
  • [8] Griffin MJ., 1990, Handbook of Human Vibration
  • [9] Harris C.M., 1995, SHOCK VIBRATION HDB
  • [10] Development of a biomechanical model of the human body in a sitting posture with vibration transmissibility in the vertical direction
    Kim, TH
    Kim, YT
    Yoon, YS
    [J]. INTERNATIONAL JOURNAL OF INDUSTRIAL ERGONOMICS, 2005, 35 (09) : 817 - 829