4.6 Article

Modeling and Testing of Flexible Structures with Selected Planar Patterns Used in Biomedical Applications

期刊

MATERIALS
卷 14, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/ma14010140

关键词

wearable; flexible; structure; stiffness; biomedical; mechanics; simulation; pattern; 3D print; PA12

资金

  1. Ministry of Education, Youth and Sports [SP2020/23]
  2. Technology Agency of the Czech Republic [TN01000024]
  3. Structural Funds of the European Union within the project Innovative and additive manufacturing technology-new technological solutions for 3D printing of metals and composite materials [CZ.02.1.01/0.0/0.0/17_049/0008407]

向作者/读者索取更多资源

This paper presents virtual prototyping of 3D printed flexible structures with selected planar patterns using laboratory testing and computer modeling. The objective is to develop a non-linear computational model evaluating the structure's stiffness and its experimental verification, as well as to identify the best pattern with respect to its stiffness and load-bearing capacity ratio. Nylon-Polyamide 12 was chosen as the material for this study, suitable for 3D printing.
Flexible structures (FS) are thin shells with a pattern of holes. The stiffness of the structure in the normal direction is reduced by the shape of gaps rather than by the choice of the material based on mechanical properties such as Young's modulus. This paper presents virtual prototyping of 3D printed flexible structures with selected planar patterns using laboratory testing and computer modeling. The objective of this work is to develop a non-linear computational model evaluating the structure's stiffness and its experimental verification; in addition, we aimed to identify the best of the proposed patterns with respect to its stiffness: load-bearing capacity ratio. Following validation, the validated computational model is used for a parametric study of selected patterns. Nylon-Polyamide 12-was chosen for the purposes of this study as an appropriate flexible material suitable for 3D printing. At the end of the work, a computational model of the selected structure with modeling of load-bearing capacity is presented. The obtained results can be used in the design of external biomedical applications such as orthoses, prostheses, cranial remoulding helmets padding, or a new type of adaptive cushions. This paper is an extension of the conference paper: Modeling and Testing of 3D Printed Flexible Structures with Three-pointed Star Pattern Used in Biomedical Applications by authors Repa et al.

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