Advanced 3D-Printed Capstan Clamping System for Accurate Uniaxial Tensile Testing of Biological Soft Tissues

被引:1
|
作者
Horvath, Paul [1 ,2 ]
Glaeser, Franz [1 ,3 ]
Antipova, Veronica [1 ]
Klug, Corina [2 ]
Lin, Alvin C. [1 ,4 ]
Scholze, Mario [3 ]
Hammer, Niels [1 ,5 ,6 ]
机构
[1] Med Univ Graz, Gottfried Schatz Res Ctr, Div Macroscop & Clin Anat, A-8036 Graz, Austria
[2] Graz Univ Technol, Vehicle Safety Inst, A-8010 Graz, Austria
[3] Tech Univ Chemnitz, Inst Mat Sci & Engn, D-09125 Chemnitz, Germany
[4] Paracelsus Med Univ, Inst Anat & Cell Biol, A-5020 Salzburg, Austria
[5] Univ Leipzig, Dept Orthoped & Trauma Surg, D-04103 Leipzig, Germany
[6] Fraunhofer Inst Forming Tools, Div Biomechatron, D-09126 Dresden, Germany
来源
APPLIED SCIENCES-BASEL | 2024年 / 14卷 / 24期
关键词
3D printing; biomechanical properties; capstan principle; clamping; material slippage; soft tissue; stress concentration; tensile testing; MECHANICAL-PROPERTIES; FATIGUE; TENDONS; BEHAVIOR;
D O I
10.3390/app142411537
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Featured Application This study introduces a 3D-printed capstan-based clamping system that enhances uniaxial tensile testing of tendon tissues by reducing stress concentrations and preventing premature failures at the clamping region, resulting in more reliable biomechanical data.Abstract Standardized testing methods for the mechanical characterization of biological soft tissues remain underdeveloped in several domains. Existing clamping methods often induce high stress levels in the clamping region, thereby affecting experimental outcomes. This study introduces a 3D-printed clamping system based on the capstan principle. The capstan system was designed and manufactured using 3D printing technology and optimized to minimize the required gripping pressure while maintaining the natural, non-tapered state of specimens. This optimization helps reduce experimental artifacts and prevents premature tissue failure in the clamping region caused by local stress peaks. Usability trials were conducted using human flexor digitorum profundus (FDP) tendons (n = 15). Results showed that 80% of the tendons failed at the midpoint region, indicating the desired load distribution achieved by the clamping mechanism. The elastic moduli, averaging 316.18 +/- 86.73 MPa, and failure load properties, averaging 79.25 +/- 19.10 MPa, fell within the range of FDP values reported by other researchers, thereby supporting the validity of the capstan design. Capstan clamping offers a promising add-on for biomechanical testing of soft tissues. Further development is necessary to tailor the clamping design to various tissue geometries and to address issues related to tissue moisture regulation, thereby enhancing the reliability and versatility of the clamping system.
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页数:12
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