Crack Length Estimation from the Damage Modelisation around a Cavityi in the Orthopedic Cement of the Total Hip Prosthesis

Author:

Benbarek S.1,Sahli A.1,Bouziane M.M.1,Bachir Bouiadjra Bel Abbès1,Serier B.1

Affiliation:

1. University of Sidi Bel Abbes

Abstract

In orthopedic surgery and particularly in the total hip arthroplasty, the stem fixation is performed in general using a surgical cement which consists essentially of polymer (PMMA). Fracture of cement and prosthesis loosening appears after a high-stress level. This phenomenon origin is due to the presence of micro-cavities in the PMMA volume. The focus of our study is the modeling using the finite-element method of the cement damage around these cavities, the cavities' sizes and shapes effect on the damage risk, and the crack length estimation due to this damage. A small Fortran schedule was incorporated with the Abaqus code to calculate the damage zone. Results show that the presence of a cavity in the cement increases the damage parameter. The damage appears when the cavity is located in cement on the loading axis. If the cavity changes its shape from circular to elliptical, the size of the damage zone increases. One can predict the initiation of a crack in cement with a maximal length of 70μm.Keywords: total hip prosthesis, crack, bone cement, biomechanics, damage.

Publisher

Trans Tech Publications, Ltd.

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

Reference9 articles.

1. Jan Stolk. Finite element simulation of anisotropic damage accumulation and creep in acrylic bone cement. Engineering Fracture Mechanics. 71 (2004) 513-528.

2. Jan Stolk. Prevention of mesh-dependent damage growth in the finite element simulation of crack formation in acrylic bone cement. Journals of Biomaterials. 36 (2003) 861-871.

3. J. Graza & All. A probabilistic damage model for acrylic cement. Application to the life prediction of cemented hip implants. International Journal of Fatigue. 27 (2005) 891-904.

4. A. B Lennon et All. Risidual stress due to can initiate damage in porous bone cement : experimental and theoritical evidence.

5. Andrew Phillips. Finite Element Analysis of the Acetabulum after impacting Grafting. The University of Edinburgh. School of civil and environmental Engineering(2001).

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