A three-dimensional finite element model of the proximal tibia has been developed to provide a base line for further modeling of prosthetic resurfaced tibiae. The geometry for the model was developed by digitizing coronal and transverse sections made with the milling machine, from one fresh tibia of average size. The load is equally distributed between the medial and lateral compartments over contact areas that were reported in the literature. An indentation test has been used to measure the stiffness and the ultimate strength of cancellous bone in four cadaver tibiae. These values provided the statistical basis for characterising the inhomogeneous distribution of the cancellous bone properties in the proximal tibia. All materials in the model were assumed to be linearly elastic and isotropic. Mechanical properties for the cortical bone and cartilage have been taken from the literature. Results have been compared with strain gage tests and with a two-dimensional axisymmetric finite element model both from the literature. Qualitative comparison between trabecular alignment, and the direction of the principal compressive stresses in the cancellous bone, showed a good relationship. Maximum stresses in the cancellous bone and cortical bone, under a load which occurs near stance phase during normal gait, show safety factors of approximately eight and twelve, respectively. The load sharing between the cancellous bone and the cortical bone has been plotted for the first 40 mm distally from the tibial eminence.
Skip Nav Destination
Article navigation
Research Papers
A Three-Dimensional Finite Element Analysis of the Upper Tibia
H. W. Wevers,
H. W. Wevers
Mechanical Engineering, Queen’s University, Kingston, Ontario, Canada
Search for other works by this author on:
D. Siu,
D. Siu
Clinical Mechanics Group, Queen’s University, Kingston, Ontario, Canada
Search for other works by this author on:
T. D. V. Cooke
T. D. V. Cooke
Department of Surgery, Division of Orthopaedics, Queen’s University, Kingston, Ontario, Canada
Search for other works by this author on:
R. B. Little
Windsor, Ontario, Canada
H. W. Wevers
Mechanical Engineering, Queen’s University, Kingston, Ontario, Canada
D. Siu
Clinical Mechanics Group, Queen’s University, Kingston, Ontario, Canada
T. D. V. Cooke
Department of Surgery, Division of Orthopaedics, Queen’s University, Kingston, Ontario, Canada
J Biomech Eng. May 1986, 108(2): 111-119 (9 pages)
Published Online: May 1, 1986
Article history
Received:
March 5, 1985
Revised:
January 6, 1986
Online:
June 12, 2009
Citation
Little, R. B., Wevers, H. W., Siu, D., and Cooke, T. D. V. (May 1, 1986). "A Three-Dimensional Finite Element Analysis of the Upper Tibia." ASME. J Biomech Eng. May 1986; 108(2): 111–119. https://doi.org/10.1115/1.3138589
Download citation file:
Get Email Alerts
Related Articles
Design of an Endoreactor for the Cultivation of a Joint-Like-Structure
J. Med. Devices (June,2009)
A New External Fixator Design for Femoral Fracture Reduction
J. Med. Devices (June,2008)
Development and Validation of a Three-Dimensional Finite Element Model of the Face
J Biomech Eng (April,2009)
A Finite Element Model of the Human Knee Joint for the Study of Tibio-Femoral Contact
J Biomech Eng (June,2002)
Related Proceedings Papers
Related Chapters
Introduction and Definitions
Handbook on Stiffness & Damping in Mechanical Design
Novel and Efficient Mathematical and Computational Methods for the Analysis and Architecting of Ultralight Cellular Materials and their Macrostructural Responses
Advances in Computers and Information in Engineering Research, Volume 2
Data Tabulations
Structural Shear Joints: Analyses, Properties and Design for Repeat Loading