TY - JOUR
T1 - Does the model reflect the system? When two-dimensional biomechanics is not 'good enough'
AU - Smith, Amanda L.
AU - Davis, Julian
AU - Panagiotopoulou, Olga
AU - Taylor, Andrea B.
AU - Robinson, Chris
AU - Ward, Carol V.
AU - Kimbel, William H.
AU - Alemseged, Zeresenay
AU - Ross, Callum F.
N1 - Funding Information:
We thank the National Science Foundation (grant no. NSF BCS-1515240, BCS-0962677, BCS-0833394) and National Institutes of Health (grant no. NIH R24 HD050837). Acknowledgements
Publisher Copyright:
© 2023 The Authors.
PY - 2023/1/25
Y1 - 2023/1/25
N2 - Models are mathematical representations of systems, processes or phenomena. In biomechanics, finite-element modelling (FEM) can be a powerful tool, allowing biologists to test form-function relationships in silico, replacing or extending results of in vivo experimentation. Although modelling simplifications and assumptions are necessary, as a minimum modelling requirement the results of the simplified model must reflect the biomechanics of the modelled system. In cases where the three-dimensional mechanics of a structure are important determinants of its performance, simplified two-dimensional modelling approaches are likely to produce inaccurate results. The vertebrate mandible is one among many three-dimensional anatomical structures routinely modelled using two-dimensional FE analysis. We thus compare the stress regimes of our published three-dimensional model of the chimpanzee mandible with a published two-dimensional model of the chimpanzee mandible and identify several fundamental differences. We then present a series of two-dimensional and three-dimensional FE modelling experiments that demonstrate how three key modelling parameters, (i) dimensionality, (ii) symmetric geometry, and (iii) constraints, affect deformation and strain regimes of the models. Our results confirm that, in the case of the primate mandible (at least), two-dimensional FEM fails to meet this minimum modelling requirement and should not be used to draw functional, ecological or evolutionary conclusions.
AB - Models are mathematical representations of systems, processes or phenomena. In biomechanics, finite-element modelling (FEM) can be a powerful tool, allowing biologists to test form-function relationships in silico, replacing or extending results of in vivo experimentation. Although modelling simplifications and assumptions are necessary, as a minimum modelling requirement the results of the simplified model must reflect the biomechanics of the modelled system. In cases where the three-dimensional mechanics of a structure are important determinants of its performance, simplified two-dimensional modelling approaches are likely to produce inaccurate results. The vertebrate mandible is one among many three-dimensional anatomical structures routinely modelled using two-dimensional FE analysis. We thus compare the stress regimes of our published three-dimensional model of the chimpanzee mandible with a published two-dimensional model of the chimpanzee mandible and identify several fundamental differences. We then present a series of two-dimensional and three-dimensional FE modelling experiments that demonstrate how three key modelling parameters, (i) dimensionality, (ii) symmetric geometry, and (iii) constraints, affect deformation and strain regimes of the models. Our results confirm that, in the case of the primate mandible (at least), two-dimensional FEM fails to meet this minimum modelling requirement and should not be used to draw functional, ecological or evolutionary conclusions.
KW - biomechanics
KW - feeding
KW - mandible
KW - modelling
KW - strain
KW - two-dimensional FEA
UR - https://www.scopus.com/pages/publications/85147048051
U2 - 10.1098/rsif.2022.0536
DO - 10.1098/rsif.2022.0536
M3 - Article
C2 - 36695017
AN - SCOPUS:85147048051
SN - 1742-5662
VL - 20
JO - Journal of the Royal Society Interface
JF - Journal of the Royal Society Interface
IS - 198
M1 - 20220536
ER -