Finite element analysis of tibial implants - effect of fixation design and friction model

被引:32
作者
Hashemi, A. [1 ]
Shirazi-Adl, A. [1 ]
机构
[1] Division of Applied Mechanics, Department of Mechanical Engineering, Ecole Polytechnique, Montreal, QC
关键词
Finite element; Fixation; Interface; Knee-implant; Micromotion; Nonlinear friction; Polyethylene;
D O I
10.1080/10255840008915264
中图分类号
学科分类号
摘要
A three dimensional nonlinear finite element model was developed to investigate tibial fixation designs and friction models (Coulomb's vs nonlinear) in total knee arthroplasty in the immediate postoperative period with no biological attachment. Bi-directional measurement-based nonlinear friction constitutive equations were used for the bone-porous coated implant interface. Friction properties between the polyethylene and femoral components were measured for this study. Linear elastic isotropic but heterogeneous mechanical properties taken from literature were considered for the bone. The Tensile behaviour of polyethylene was measured and subsequently modeled by an elasto-plastic model. Based on the earlier finite element and experimental pull-out studies, pegs and screws were also realistically modeled. The geometry of every component was obtained through measurement. The PCA tibial baseplate with three different configurations was considered; one with three screws, one with one screw and two short inclined porous-coated pegs, and a third one with no fixation for the sake of comparison. The axial load of 2000N was applied through the femoral component on the medial plateau of articular insert. It was found that Coulomb's friction significantly underestimates the relative micromotion at the bone-implant interface. The lowest micromotion and lift-off were found for the design with screws. Relative micromotion and stress transfer at the bone-implant interface depended significantly on the friction model and on the baseplate anchorage configuration. Cortical and cancellous bones carried, respectively, 10-13% and 65-86% of the axial load depending on the fixation configuration used. The remaining portion was transmitted as shear force by screws and pegs. Normal and Mises stresses as well as contact area in the polyethylene insert were nearly independent of the baseplate fixation design. The Maximum Mises stress in the polyethylene exceeded yield and was found 1-2 mm below the contact surface for all designs. © 2000 OPA (Overseas Publishers Association) N.V.
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页码:183 / 201
页数:18
相关论文
共 79 条
[1]
Peters C.L., Rosenberg A.G., Bone ingrowth and total knee replacement, The knee, 1, pp. 189-196, (1995)
[2]
Huiskes R., Chao E.Y.S., A survey of finite element analysis in orthopaedic biomechanics: The first decade, Journal of Biomechanics, 16, pp. 385-409, (1983)
[3]
Askew M.J., Lewis J.L., Analysis of model variables and fixation post length effects on stresses around a prosthesis in the proximal tibia, Journal of Biomechanical Engineering, 103, pp. 239-245, (1981)
[4]
Beaupre G.S., Vasu R., Carter D.R., Schurman D.J., Epiphyseal-based designs for tibial plateau components-ii, stress analysis in the sagittal plane, Journal of Biomechanics, 19, pp. 663-673, (1986)
[5]
Lewis J.L., Askew M.J., Jayeox D.P., A comparative evaluation of tibial component designs of total knee prostheses, The Journal of Bone and Joinl Surgery, 64 A, pp. 129-135, (1982)
[6]
Rakotomanana R.L., Leyvraz P.F., Curnier A., Heegaard J.H., Rubin P.J., A finite element model for evaluation of tibial prosthesis-bone interface in total knee replacement, Journal of Biomechanics, 25, pp. 1413-1424, (1992)
[7]
Vasu R., Carter D.R., Schurman D.J., Beaupre G.S., Epiphyseal-based designs for tibial plateau components-i, stress analysis in the frontal plane, Journal of Biomechanics, 19, pp. 647-662, (1986)
[8]
Ahmed A.M., Tissakht M., Shirvastava S.C., Chan K., Dynamic stress response of the implant/cement interface: An axisymmetric analysis of a knee tibial component, Journal of Orthopaedic Research, 8, pp. 435-447, (1990)
[9]
Dawson J.M., Bartel D.L., Consequences of an interface fit on the fixation of porous-coated tibial components in total knee replacement, The Journal of Bone and Joint Surgery, 74 A, pp. 233-238, (1992)
[10]
Murase K., Crowninshield R.D., Pedersen D.R., Chang T.S., An analysis of tibial component design in total knee arthroplasty, Journal of Biomechanics, 16, pp. 13-22, (1983)