Abstract
Abstract
Background
Percutaneous transluminal coronary angioplasty (PTCA) balloon catheters must withstand high pressures required for the lesion treatment, pushing loads during insertion, and pulling loads during withdrawal. These loads pose a challenge especially for polymeric tubular shafts with small cross sections. In order to enable new design innovations and to better understand the mechanics of current catheter technologies, the tensile properties of polyamide (PA) 12 were investigated. PA 12 dog bone specimens and medical PA 12 tubes were either stored at ambient temperature and humidity or conditioned in water, and subjected to tensile loads at different temperatures. In addition, the effect on the tensile properties of the necking process, a forming process to reduce the wall thickness of the tubes, was determined.
Results
The tested tubes showed a reduction in both Young’s Modulus (− 41.5%) and yield stress (− 29.2%) compared to standardized specimens. Furthermore, an increase in temperature and water absorption softens the material and reduces the mechanical properties like the Young’s Modulus and the yield stress. It was found that the material strengthens during the necking process. Likely due to the orientation of the polymers chain molecules in load direction (Rösler et al., 2007), the Young’s Modulus of the material could be increased by 43.5%. Furthermore, the absence of a yield point after necking allows for a greater loading capacity of the material without unstable neck growth. Besides the strengthening, the ultimate strain is reduced by 50%. This indicates that the necking process induces plastic deformation.
Conclusion
The investigation showed that the environmental conditions like temperature and humidity can influence mechanical properties. It could also be shown that pre-forming processes such as necking can enhance the mechanical properties, such as the Young’s Modulus, while reducing the wall thickness. These findings suggest possible further development of catheters with a small cross section and higher mechanical strength and highlight the importance to account for the targeted operating temperature during the design process.
Funder
Innosuisse - Schweizerische Agentur für Innovationsförderung
Publisher
Springer Science and Business Media LLC
Subject
Radiology, Nuclear Medicine and imaging,Biomedical Engineering,General Medicine,Biomaterials,Radiological and Ultrasound Technology
Reference15 articles.
1. Ebnesajjad S, Modjarrad K. Handbook of polymer applications in medicine and medical devices. Handb Polym Appl Med Med Devices. 2014. http://linkinghub.elsevier.com/retrieve/pii/B9780323228053000153.
2. Secco GG, Buettner A, Parisi R, Pistis G, Vercellino M, Audo A, et al. Clinical experience with very high-pressure dilatation for resistant coronary lesions. Cardiovasc Revascularization Med. 2019. https://doi.org/10.1016/j.carrev.2019.02.026.
3. Barton M, Grüntzig J, Husmann M, Rösch J. Balloon angioplasty—the legacy of Andreas Grüntzig, MD (1939–1985). Front Cardiovasc Med. 2014. https://doi.org/10.3389/fcvm.2014.00015.
4. Massey LK, McKeen LW. Film properties of plastics and elastomers. Film Prop Plast Elastomers. 2004;157–88. http://www.sciencedirect.com/science/article/pii/B9781884207945500398.
5. Venoor V, Park JH, Kazmer DO, Sobkowicz MJ. Understanding the effect of water in polyamides: a review. Polym Rev. 2020. https://doi.org/10.1080/15583724.2020.1855196.
Cited by
5 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献