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Artykuł

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Tytuł

3D printing of personalised stents using new advanced photopolymerizable resins and Ti-6Al-4V alloy

Autorzy

[ 1 ] Instytut Technologii Materiałów, Wydział Inżynierii Mechanicznej, Politechnika Poznańska | [ P ] pracownik

Dyscyplina naukowa (Ustawa 2.0)

[2.9] Inżynieria mechaniczna

Rok publikacji

2024

Opublikowano w

Rapid Prototyping Journal

Rocznik: 2024 | Tom: vol. 30 | Numer: iss. 4

Typ artykułu

artykuł naukowy

Język publikacji

angielski

Słowa kluczowe
EN
  • Photopolymerizable resins
  • Additive manufacturing
  • Stent struts
  • Ti-6Al-4V alloy
  • Morphology structure
  • Computer-aided engineering (CAE)
Streszczenie

EN Purpose: The development of new advanced materials, such as photopolymerizable resins for use in stereolithography (SLA) and Ti6Al4V manufacture via selective laser melting (SLM) processes, have gained significant attention in recent years. Their accuracy, multi-material capability and application in novel fields, such as implantology, biomedical, aviation and energy industries, underscore the growing importance of these materials. The purpose of this study is oriented toward the application of new advanced materials in stent manufacturing realized by 3D printing technologies. Design/methodology/approach: The methodology for designing personalized medical devices, implies computed tomography (CT) or magnetic resonance (MR) techniques. By realizing segmentation, reverse engineering and deriving a 3D model of a blood vessel, a subsequent stent design is achieved. The tessellation process and 3D printing methods can then be used to produce these parts. In this context, the SLA technology, in close correlation with the new types of developed resins, has brought significant evolution, as demonstrated through the analyses that are realized in the research presented in this study. This study undertakes a comprehensive approach, establishing experimentally the characteristics of two new types of photopolymerizable resins (both undoped and doped with micro-ceramic powders), remarking their great accuracy for 3D modeling in die-casting techniques, especially in the production process of customized stents. Findings: A series of analyses were conducted, including scanning electron microscopy, energy-dispersive X-ray spectroscopy, mapping and roughness tests. Additionally, the structural integrity and molecular bonding of these resins were assessed by Fourier-transform infrared spectroscopy–attenuated total reflectance analysis. The research also explored the possibilities of using metallic alloys for producing the stents, comparing the direct manufacturing methods of stents’ struts by SLM technology using Ti6Al4V with stent models made from photopolymerizable resins using SLA. Furthermore, computer-aided engineering (CAE) simulations for two different stent struts were carried out, providing insights into the potential of using these materials and methods for realizing the production of stents. Originality/value: This study covers advancements in materials and additive manufacturing methods but also approaches the use of CAE analysis, introducing in this way novel elements to the domain of customized stent manufacturing. The emerging applications of these resins, along with metallic alloys and 3D printing technologies, have brought significant contributions to the biomedical domain, as emphasized in this study. This study concludes by highlighting the current challenges and future research directions in the use of photopolymerizable resins and biocompatible metallic alloys, while also emphasizing the integration of artificial intelligence in the design process of customized stents by taking into consideration the 3D printing technologies that are used for producing these stents.

Data udostępnienia online

19.03.2024

Strony (od-do)

696 - 710

DOI

10.1108/RPJ-10-2023-0360

URL

https://www.emerald.com/insight/content/doi/10.1108/RPJ-10-2023-0360/full/html

Typ licencji

CC BY (uznanie autorstwa)

Tryb otwartego dostępu

otwarte czasopismo

Wersja tekstu w otwartym dostępie

ostateczna wersja opublikowana

Czas udostępnienia publikacji w sposób otwarty

w momencie opublikowania

Punktacja Ministerstwa / czasopismo

100

Impact Factor

3,9 [Lista 2022]

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