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About the Mechanical Strength of Calcium Phosphate Cement Scaffolds

  • For the treatment of bone defects, biodegradable, compressive biomaterials are needed as replacements that degrade as the bone regenerates. The problem with existing materials has either been their insufficient mechanical strength or the excessive differences in their elastic modulus, leading to stress shielding and eventual failure. In this study, the compressive strength of CPC ceramics (with aFor the treatment of bone defects, biodegradable, compressive biomaterials are needed as replacements that degrade as the bone regenerates. The problem with existing materials has either been their insufficient mechanical strength or the excessive differences in their elastic modulus, leading to stress shielding and eventual failure. In this study, the compressive strength of CPC ceramics (with a layer thickness of more than 12 layers) was compared with sintered β-TCP ceramics. It was assumed that as the number of layers increased, the mechanical strength of 3D-printed scaffolds would increase toward the value of sintered ceramics. In addition, the influence of the needle inner diameter on the mechanical strength was investigated. Circular scaffolds with 20, 25, 30, and 45 layers were 3D printed using a 3D bioplotter, solidified in a water-saturated atmosphere for 3 days, and then tested for compressive strength together with a β-TCP sintered ceramic using a Zwick universal testing machine. The 3D-printed scaffolds had a compressive strength of 41.56 ± 7.12 MPa, which was significantly higher than that of the sintered ceramic (24.16 ± 4.44 MPa). The 3D-printed scaffolds with round geometry reached or exceeded the upper limit of the compressive strength of cancellous bone toward substantia compacta. In addition, CPC scaffolds exhibited more bone-like compressibility than the comparable β-TCP sintered ceramic, demonstrating that the mechanical properties of CPC scaffolds are more similar to bone than sintered β-TCP ceramics.show moreshow less

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Metadaten
Document Type:Article (reviewed)
Zitierlink: https://opus.hs-offenburg.de/8397
Bibliografische Angaben
Title (English):About the Mechanical Strength of Calcium Phosphate Cement Scaffolds
Author:Elisa Bertrand, Sergej Zankovic, Johannes VinkeStaff MemberORCiDGND, Hagen Schmal, Michael Seidenstuecker
Year of Publication:2023
Place of publication:Basel
Publisher:MDPI
First Page:1
Last Page:18
Article Number:87
Parent Title (English):Designs
Volume:7
Issue:4
ISSN:2411-9660
DOI:https://doi.org/10.3390/designs7040087
URN:https://urn:nbn:de:bsz:ofb1-opus4-83977
Language:English
Inhaltliche Informationen
Institutes:Fakultät Maschinenbau und Verfahrenstechnik (M+V)
Institutes:Bibliografie
Tag:3D printing; CPC; calciumphosphate cement; mechanical properties; sinter ceramics; β-TCP
Formale Angaben
Relevance:Wiss. Zeitschriftenartikel reviewed: Sonstiger Nachweis des Review-Verfahrens
Open Access: Open Access 
 Gold 
Licence (German):License LogoCreative Commons - CC BY - Namensnennung 4.0 International