SN Applied Sciences (Aug 2021)

Finite element modeling of multiple density materials of bone specimens for biomechanical behavior evaluation

  • Sebastián Irarrázaval,
  • Jorge Andrés Ramos-Grez,
  • Luis Ignacio Pérez,
  • Pablo Besa,
  • Angélica Ibáñez

DOI
https://doi.org/10.1007/s42452-021-04760-9
Journal volume & issue
Vol. 3, no. 9
pp. 1 – 13

Abstract

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Abstract The finite elements method allied with the computerized axial tomography (CT) is a mathematical modeling technique that allows constructing computational models for bone specimens from CT data. The objective of this work was to compare the experimental biomechanical behavior by three-point bending tests of porcine femur specimens with different types of computational models generated through the finite elements’ method and a multiple density materials assignation scheme. Using five femur specimens, 25 scenarios were created with differing quantities of materials. This latter was applied to computational models and in bone specimens subjected to failure. Among the three main highlights found, first, the results evidenced high precision in predicting experimental reaction force versus displacement in the models with larger number of assigned materials, with maximal results being an R 2 of 0.99 and a minimum root-mean-square error of 3.29%. Secondly, measured and computed elastic stiffness values follow same trend with regard to specimen mass, and the latter underestimates stiffness values a 6% in average. Third and final highlight, this model can precisely and non-invasively assess bone tissue mechanical resistance based on subject-specific CT data, particularly if specimen deformation values at fracture are considered as part of the assessment procedure.

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