Login / Signup

Assessment of 3D printed mechanical metamaterials for prosthetic liners.

Kirstie M DevinJinghua TangAndrew R HamiltonDavid MoserLiudi Jiang
Published in: Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine (2024)
This study focuses on novel design and evaluation of Elastic 50A (EL50) mechanical metamaterials with open-cell patterns for its potential application to lower limb residuum/socket interfaces, specifically that of a transtibial (TT) amputee. Mechanical characteristics, that is, effective Young's modulus ( E ), was tuned by altering metamaterial porosity, which was experimentally verified. Specifically, pore radius of the unit cell was varied to achieve a range of E -values (0.05-1.71 MPa) for these 3D printed metamaterials. Finite Element Analysis (FEA) was conducted to evaluate pressure distribution across key load-bearing anatomical sites of a TT residuum. Using designed metamaterials for homogeneous liners, pressure profiles were studied and compared with a silicone liner case. Additionally, a custom metamaterial liner was designed by assigning appropriate metamaterials to four load-sensitive and tolerant anatomical sites of the TT residuum. The results suggest that lowest pressure variation (PV), as a measure of pressure distribution levels and potential comfort for amputees, was achieved by the custom metamaterial liner compared to any of the homogeneous liners included in this study. It is envisaged that this work may aid future design and development of custom liners using now commonly available 3D printing technologies and available elastomer materials to maximise comfort, tissue safety and overall rehabilitation outcomes for lower limb amputees.
Keyphrases
  • lower limb
  • single cell
  • cell therapy
  • minimally invasive
  • bone marrow
  • stem cells
  • mesenchymal stem cells
  • finite element analysis
  • risk assessment
  • current status
  • clinical evaluation