Steady-state elastohydrodynamic lubrication analysis of a metal-on-metal hip implant employing a metallic cup with an ultra-high molecular weight polyethylene backing

Proc Inst Mech Eng H. 2004;218(4):261-70. doi: 10.1243/0954411041561045.

Abstract

The elastohydrodynamic lubrication (EHL) analysis was carried out in this study for a 28 mm diameter metal-on-metal hip prosthesis employing a metallic cup with an ultra-high molecular weight polyethylene (UHMWPE) backing under a simple steady state rotation representing the flexion/extension during walking. Both Reynolds and elasticity equations were coupled and solved numerically by the finite difference method. The elastic deformation was determined by means of the fast Fourier transform (FFT) technique using the displacement coefficients obtained from the finite element method. Excellent agreement of the predicted elastic deformation was obtained between the FFT technique and the conventional direct summation method. The number of grid points used in the lubrication analysis was found to be important in predicting accurate film thicknesses, particularly at low viscosities representative of physiological lubricants. The effect of the clearance between the femoral head and the acetabular cup on the predicted lubricant film thickness was shown to be significant, while the effect of load was found to be negligible. Overall, the UHMWPE backing was found not only to reduce the contact pressure as identified in a previous study by the authors (Liu et al., 2003) but also significantly to increase the lubricant film thickness for the 28 mm diameter metal-on-metal hip implant, as compared with a metallic mono-block cup.

Publication types

  • Comparative Study
  • Evaluation Study
  • Research Support, Non-U.S. Gov't
  • Validation Study

MeSH terms

  • Computer Simulation
  • Elasticity
  • Equipment Failure Analysis / methods*
  • Friction
  • Hip Joint / physiopathology
  • Hip Joint / surgery
  • Hip Prosthesis*
  • Humans
  • Lubrication
  • Metals / chemistry*
  • Models, Biological*
  • Models, Chemical*
  • Polyethylenes / chemistry*
  • Surface Properties
  • Viscosity
  • Walking
  • Weight-Bearing

Substances

  • Metals
  • Polyethylenes
  • ultra-high molecular weight polyethylene