Study of the vibrational behaviour of a healing tibia using finite element modelling

被引:33
|
作者
Lowet, G
Dayuan, X
VanderPerre, G
机构
[1] Div. of Biomech. and Eng. Design, K.U. Leuven, 3001 Heverlee
关键词
vibration analysis; fracture healing; finite element modelling;
D O I
10.1016/0021-9290(96)00002-4
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Two finite element models of a fractured tibia with healing callus were developed. In the first model, the callus was modelled at the middle of the diaphysis, while in the second one the callus was located at two-thirds of the length, distal from the knee. From these two models the static torsional stiffness as well as the resonant frequencies and mode shapes of the first four vibration modes were calculated for a series of increasing values of Young's modulus of the callus. Two situations were considered. In the first situation, the geometry of the callus was kept constant, while in the second, the dimensions of the callus were reduced while its Young's modulus was increased. The resonant frequencies were found to increase with increasing stiffness of the callus. The single bending modes were found to be more sensitive when the callus was at the middle of the diaphysis, whereas the double bending modes were more sensitive when the callus was situated distally. Mode shapes were similar to those for the intact tibia when the stiffness of the callus was 5% of the stiffness of the intact bone or higher. A basically linear relation was found between the torsional stiffness and the resonant frequencies. A theoretical relation between resonant frequencies and torsional stiffness was evaluated and found to be valid if the Young's modulus of the callus was equal to or greater than 5% of the Young's modulus of the intact bone. The present results support the quantitative interpretation of vibration analysis measurements for the assessment of tibial fracture healing. Copyright (C) 1996 Elsevier Science Ltd.
引用
收藏
页码:1003 / 1010
页数:8
相关论文
共 50 条
  • [1] FINITE ELEMENT MODELLING OF THE BEHAVIOUR OF A CERTAIN
    Gizejowski, M. A.
    Barcewicz, W.
    Salah, W.
    ARCHIVES OF CIVIL ENGINEERING, 2010, 56 (01) : 19 - 56
  • [2] FINITE ELEMENT MODELLING OF FABRIC TENSILE BEHAVIOUR USING AN AUTOMATIC MODELLING APPROACH
    Lin, H.
    Clifford, M. J.
    Long, A. C.
    Sherburn, M.
    Ramgulam, R.
    Potluri, P.
    86TH TEXTILE INSTITUTE WORLD CONFERENCE, VOL 3, CONFERENCE PROCEEDINGS, 2008,
  • [3] Study of drilled piles behaviour, modelling by finite element method
    Bekkouche, A.
    Ras, A.
    Geotechnical and Geophysical Site Characterization Vols 1 and 2, 2004, : 1425 - 1429
  • [4] Finite element modelling of the vibrational behaviour of the human femur using CT-based individualized geometrical and material properties
    Couteau, B
    Hobatho, MC
    Darmana, R
    Brignola, JC
    Arlaud, JY
    JOURNAL OF BIOMECHANICS, 1998, 31 (04) : 383 - 386
  • [5] Experimental validation of finite element modelling on tibia with osteogenesis imperfecta
    Tan, H. Y.
    Basaruddin, K. S.
    Khan, S. F.
    Som, M. H. Mat
    Daud, R.
    Sulaiman, A. R.
    6TH INTERNATIONAL CONFERENCE ON APPLICATIONS AND DESIGN IN MECHANICAL ENGINEERING, 2019, 670
  • [6] Spot weld modelling techniques and performances of finite element models for the vibrational behaviour of automotive structures
    Lardeur, P
    Lacouture, E
    Blain, E
    NOISE AND VIBRATION ENGINEERING, VOLS 1 - 3, PROCEEDINGS, 2001, : 387 - 394
  • [7] Finite element modelling of the behaviour of composite plates
    Vuksanovic, D
    Lazarevic, N
    COMPUTER METHODS IN COMPOSITE MATERIALS VI, 1998, : 473 - 482
  • [8] Modelling of stretch forming behaviour in steel strip using finite element method
    Xia, J.Y.
    Llewellyn, D.T.
    1600, Maney Publishing (10):
  • [9] Modelling the fracture behaviour of high speed steels using finite element method
    Lippmann, N
    Lehmann, A
    Steinkopff, T
    Spies, HJ
    COMPUTATIONAL MATERIALS SCIENCE, 1996, 7 (1-2) : 123 - 130
  • [10] Vibrational behaviour of the guitar soundboard analysed by the Finite Element Method
    Elejabarrieta, MJ
    Ezcurra, A
    Santamaría, C
    ACUSTICA, 2001, 87 (01): : 128 - 136