scholarly journals Entwicklung und Realisierung neuer Designs zur Nutzung als Knochenersatzmaterial mittels Fused-Deposition-Modelling-3D- Druck

2021 ◽  
Author(s):  
◽  
Jonas Neijhoft

Die Therapie langstreckiger Knochendefekte stellt auch weiterhin eine große Herausforderung dar. Dies beruht unter anderem darauf, dass der therapeutische Goldstandard - die Verwendung von autogener Knochensubstanz aus dem Beckenkamm - neben der begrenzten Verfügbarkeit vor allem Komplikationen im Bereich der Entnahmestelle mit sich bringen kann. Es wurde bisher aber noch kein durchschlagendes Ergebnis in der Entwicklung neuer Scaffolds zum Einsatz bei langstreckigen Knochendefekten erreicht. Dies kann eine Vielzahl an Ursachen haben, die sich von der verwendeten Ausgangssubstanz, bis hin zum verwendeten Design erstrecken können. Neben dem Ausgangsmaterial spielen vor allem die Formgebung und physikalische Eigenschaften, wie Porosität und Mikroarchitektur, eine wichtige Rolle. Ein aktueller Ansatz zur Nutzung als alternatives Knochenersatzmaterial ist das Knochen-Tissue-Engineering. Hierbei werden körpereigene, knochen-regenerative Zellen mit einem dreidimensionalen Gerüststoff (Knochenersatzmaterial oder -scaffold) kombiniert und in den Knochendefekt implantiert. In dieser Arbeit wurde der Fokus auf die Designentwicklung eines neuen Kochenersatz-Scaffolds gelegt. Nach Vorbild schon vorgestellter Knochenersatzdesigns und unter Berücksichtigung einer Grundstruktur, die auch Phasen der Knochenheilung wie die Frakturhämatomausbreitung und initiale Nährstoffversorgung einbeziehen sollte, wurden mehrere Designs (Raster, Tempel, Zwiebel) entwickelt. Mithilfe des additiv extrusionsbasierten Schmelzschichtverfahrens (Fused Filament Fabrication) wurden die in Computer-Aided Design entworfenen Scaffolds realisiert. Dieser Ansatz beinhaltet, unter Verwendung des resorbierbaren und biokompatiblen Trägerpolymers Polylaktat, mehrstufige Designs, die kleine biologisch funktionelle Einheiten in eine tragende, kompressionsfeste Rahmenstruktur einbetten. Hierdurch entsteht einerseits die nötige mechanische Belastbarkeit und andererseits eine offene Architektur mit Poren, die Diffusion von Sauerstoff und Nährstoffen in die inneren Bereiche des Implantats ermöglicht. Es wurden verschiedene Designs entwickelt, gedruckt und mechanisch sowie in vitro in den Kernbereichen Zelladhäsion, Zellaktivität und osteogene Differenzierung nach Besiedelung mit Saos-2-Zellen charakterisiert. Ein weiterer Entwicklungsschritt stellte das Einführen eines neuartigen, innerhalb der Designs kompatiblen Baukastensystems dar. Hierdurch wird nicht nur die Anpassbarkeit an den Knochendefekt verbessert, es sind auch weitere Funktionen ergänzbar und die unterschiedlichen Designs untereinander kombinierbar. Die Ergebnisse dieser Dissertationsarbeit dienen als Basis für einen völlig neuen Ansatz von Knochenersatzmaterialien mit positiven biologischen sowie biophysikalischen Eigenschaften.

2021 ◽  
Vol ahead-of-print (ahead-of-print) ◽  
Author(s):  
Wiktoria Maria Wojnarowska ◽  
Jakub Najowicz ◽  
Tomasz Piecuch ◽  
Michał Sochacki ◽  
Dawid Pijanka ◽  
...  

Purpose Chicken orthoses that cover the ankle joint area are not commercially available. Therefore, the main purpose of this study is to fabricate a customised temporary Ankle–Foot Orthosis (AFO) for a chicken with a twisted ankle using computer-aided design (CAD) and three-dimensional (3D) printing. The secondary objective of the paper is to present the specific application of Additive Manufacturing (AM) in veterinary medicine. Design/methodology/approach The design process was based on multiple sketches, photos and measurements that were provided by the owner of the animal. The 3D model of the orthosis was made with Autodesk Fusion 360, while the prototype was fabricated using fused deposition modelling (FDM). Evaluation of the AFO was performed using the finite element method. Findings The work resulted in a functional 3D printed AFO for chicken. It was found that the orthosis made with AM provides satisfactory stiffen and a good fit. It was concluded that AM is suitable for custom bird AFO fabrication and, in some respects, is superior to traditional manufacturing methods. It was also concluded that the presented procedure can be applied in other veterinary cases and to other animal species and other parts of their body. AM provides veterinary with a powerful tool for the production of well-fitted and durable orthoses for animals. Research limitations/implications The study does not include the chicken's opinion on the comfort or fit of the manufactured AFO due to communication issues. Evaluation of the final prototype was done by the researchers and the animal owner. Originality/value No evidence was found in the literature on the use of AM for chicken orthosis, so this study is the first to describe such an application of AM. In addition, the study demonstrates the value of AM in veterinary medicine, especially in the production of devices such as orthoses.


Processes ◽  
2020 ◽  
Vol 8 (6) ◽  
pp. 664 ◽  
Author(s):  
Leszek A. Dobrzański ◽  
Lech B. Dobrzański ◽  
Anna Achtelik-Franczak ◽  
Joanna Dobrzańska

This paper presents a comparison of the impact of milling technology in the computer numerically controlled (CNC) machining centre and selective laser sintering (SLS) and on the structure and properties of solid Ti6Al4V alloy. It has been shown that even small changes in technological conditions in the SLS manufacturing variant significantly affect changes from two to nearly two and a half times in tensile and bending strengths. Both the tensile and bending strength obtained in the most favourable manufacturing variant by the SLS method is over 25% higher than in the case of cast materials subsequently processed by milling. Plug-and-play SLS conditions provide about 60% of the possibilities. Structural, tribological and electrochemical tests were carried out. In vitro biological tests using osteoblasts confirm the good tendency for the proliferation of live cells on the substrate manufactured under the most favourable SLS conditions. The use of SLS additive technology for the manufacturing of dental implants and abutments made of Ti6Al4V alloy in combination with the digitisation of dental diagnostics and computer-aided design and manufacture of computer-aided design/manufacturing (CAD/CAM) following the idea of Dentistry 4.0 is the best choice of technology for manufacturing of prosthetic and implant devices used in dentistry.


Author(s):  
Fariborz Vafaei ◽  
Alireza Izadi ◽  
Samaneh Abbasi ◽  
Maryam Farhadian ◽  
Zahra Bagheri

Objectives: This study aimed to compare the optical properties of Zolid FX, Katana UTML, and lithium disilicate laminate veneers. Materials and Methods: In this in-vitro experimental study, the maxillary left lateral incisor of a phantom received a laminate veneer preparation. An impression was made, and a die was fabricated using dental stone. The die was scanned using a computer-aided design/computer-aided manufacturing scanner. Ten dies were fabricated from each of the A1, A2, and A3 shades of composite resin. Laminate veneers were fabricated using A1 shade of Katana UTML, Zolid FX, and IPS e.max CAD ceramics (n=10) and placed on composite abutments using bleach and white colors of trial insertion paste (TIP). The optical properties were measured at the incisal, middle, and cervical thirds using a spectrophotometer. Data were analyzed using three-way analysis of variance and Tukey’s test. Results: The effect of laminate material on the L*, a*, and b* parameters was significant in all areas (P<0.001), except for the L* parameter in the middle and cervical thirds. All color parameters were affected by TIP color in all three regions in most samples (P<0.05). The effect of composite abutment shade was also significant in most cases (P<0.05). The effect of laminate material, abutment shade, and TIP color on the b* parameter was significant (P<0.001). The L* parameter was almost the same in the two zirconia and lithium disilicate ceramic groups. Conclusion: The composite abutment shade, TIP color, and laminate material should be carefully selected to achieve optimal aesthetics in laminate veneers.


Sign in / Sign up

Export Citation Format

Share Document