4.5 Article

A finite element model to assess transtibial prosthetic sockets with elastomeric liners

Journal

MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING
Volume 56, Issue 7, Pages 1227-1240

Publisher

SPRINGER HEIDELBERG
DOI: 10.1007/s11517-017-1758-z

Keywords

Finite element analysis; Prosthesis; Prosthesis design; Elastomers; Magnetic resonance imaging

Funding

  1. Institute of Child Health and Human Development of the National Institutes of Health [R01HD065766]

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People with transtibial amputation often experience skin breakdown due to the pressures and shear stresses that occur at the limb-socket interface. The purpose of this research was to create a transtibial finite element model (FEM) of a contemporary prosthesis that included complete socket geometry, two frictional interactions (limb-liner and liner-socket), and an elastomeric liner. Magnetic resonance imaging scans from three people with characteristic transtibial limb shapes (i.e., short-conical, long-conical, and cylindrical) were acquired and used to develop the models. Each model was evaluated with two loading profiles to identify locations of focused stresses during stance phase. The models identified five locations on the participants' residual limbs where peak stresses matched locations of mechanically induced skin issues they experienced in the 9 months prior to being scanned. The peak contact pressure across all simulations was 98 kPa and the maximum resultant shear stress was 50 kPa, showing reasonable agreement with interface stress measurements reported in the literature. Future research could take advantage of the developed FEM to assess the influence of changes in limb volume or liner material properties on interface stress distributions.

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