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Minimizing Stress Shielding and Cement Damage in Cemented Femoral Component of a Hip Prosthesis through Computational Design Optimization.

Abdellah Ait MoussaJustin FischerRohan YadavMorshed Khandaker
Published in: Advances in orthopedics (2017)
The average life expectancy of many people undergoing total hip replacement (THR) exceeds twenty-five years and the demand for implants that increase the load-bearing capability of the bone without affecting the short- or long-term stability of the prosthesis is high. Mechanical failure owing to cement damage and stress shielding of the bone are the main factors affecting the long-term survival of cemented hip prostheses and implant design must realistically adjust to balance between these two conflicting effects. In the following analysis we introduce a novel methodology to achieve this objective, the numerical technique combines automatic and realistic modeling of the implant and embedding medium, and finite element analysis to assess the levels of stress shielding and cement damage and, finally, global optimization, using orthogonal arrays and probabilistic restarts, were used. Applications to implants, fabricated using a homogeneous material and a functionally graded material, were presented.
Keyphrases
  • total hip
  • soft tissue
  • total knee arthroplasty
  • oxidative stress
  • finite element analysis
  • bone mineral density
  • stress induced
  • total hip arthroplasty
  • deep learning
  • bone regeneration
  • bone loss