<div class="csl-bib-body">
<div class="csl-entry">Nistler, S., Hofstetter, C., Baudis, S., Schwentenwein, M., & Stampfl, J. (2024, September 25). <i>Sinter-joining of Two Different Bioceramic Materials to Selectively Enhance Bone Implants</i> [Conference Presentation]. Material Science and Engineering MSE 2024, Darmstadt, Germany. http://hdl.handle.net/20.500.12708/204672</div>
</div>
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/204672
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dc.description.abstract
Once a bone defect has exceeded a critical size, the human bone is no longer able to heal the defect on its own. In such cases, the implantation of an artificial structure becomes necessary to bridge the defect and to support the natural healing process. Bioceramics like hydroxyapatite (HA) and tricalcium phosphate (TCP) are commonly used as artificial implants due to their remarkable ability to significantly promote bone ingrowth and activate natural bone cells. However, their relatively low mechanical properties limit their application to small bone defects in areas of minimal mechanical stress. In contrast to HA and TCP, zirconia is also a bioceramic which possesses exceptional mechanical properties characterised by high hardness and strength, making it suitable for areas of high mechanical stress. However, zirconia lacks the ability to enhance bone ingrowth and activate natural bone cells.
Our aim in this study is to combine the benefits of both materials, using HA or TCP in areas intended for osseointegration, and zirconia in areas of increased mechanical stress.
Our manufacturing process uses Digital Light Processing (DLP) based vat polymerisation, where a photocurable ceramic slurry containing ceramic particles and organic binder is selectively cured by blue light to build up the part layer by layer. Subsequent thermal post-processing produces bioceramic parts characterised by high density with high resolution (<40 µm).
For our sinter-joining experiments, we chose a ring-in-ring design where the outer and inner ring each consisting of a different ceramic material. First, both ceramic materials are thermally treated to remove the organic binder. Second, the inner ring optionally undergoes a pre-sintering step to reduce its size to fit inside the outer ring. Third, the sinter-joining process takes place during the final co-sintering step, in which the materials that are then combined are subjected to the maximum sintering temperature. We use the different shrinkage behaviour of the ceramic materials to achieve a press fit between the rings. This involves dimensioning the diameters to ensure that the inner diameter of the outer ring is smaller than the outer diameter of the inner ring after co-sintering. Precise dimensional adjustments, facilitated by the high resolution of the printing process, reduce the risk of inducing excessive stresses in the outer ring and thereby avoid part failure.
To understand the effects and establish process control, our investigations include parameters such as varying pre-sintering temperatures and different co-sintering temperatures and profiles. We also investigate parts with a fine surface texture at the interface. A final quantitative analysis provides insight into the bond strength between the two different ceramic materials.
Acknowledgment: Christian Doppler Research Association, Austrian Federal Ministry for Digital & Economic Affairs, National foundation for Research, Technology & Development
en
dc.description.sponsorship
Christian Doppler Forschungsgesells
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dc.language.iso
en
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dc.subject
Sinter-joining
en
dc.subject
bioceramics
en
dc.subject
hydroxyapatite
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dc.subject
zirconia
en
dc.subject
additive manufacturing
en
dc.title
Sinter-joining of Two Different Bioceramic Materials to Selectively Enhance Bone Implants
en
dc.type
Presentation
en
dc.type
Vortrag
de
dc.contributor.affiliation
Lithoz GmbH
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dc.relation.grantno
CDL Baudis
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dc.type.category
Conference Presentation
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tuw.project.title
Christian Doppler Labor für Fortschrittliche Polymere für Biomaterialien und den 3D Druck
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tuw.researchTopic.id
M2
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tuw.researchTopic.id
M6
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tuw.researchTopic.id
M4
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tuw.researchTopic.name
Materials Characterization
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tuw.researchTopic.name
Biological and Bioactive Materials
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tuw.researchTopic.name
Non-metallic Materials
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tuw.researchTopic.value
30
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tuw.researchTopic.value
10
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tuw.researchTopic.value
60
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tuw.publication.orgunit
E308-02-2 - Forschungsgruppe Werkstoffe und Additive Fertigung
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tuw.publication.orgunit
E163-02-1 - Forschungsgruppe Polymerchemie und Technologie
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tuw.author.orcid
0009-0006-9591-5749
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tuw.author.orcid
0000-0002-5390-0761
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tuw.author.orcid
0000-0002-2076-5575
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tuw.author.orcid
0000-0002-3626-5647
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tuw.event.name
Material Science and Engineering MSE 2024
en
tuw.event.startdate
24-09-2024
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tuw.event.enddate
26-09-2024
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tuw.event.online
On Site
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tuw.event.type
Event for scientific audience
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tuw.event.place
Darmstadt
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tuw.event.country
DE
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tuw.event.presenter
Nistler, Sarah
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wb.sciencebranch
Medizintechnik
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wb.sciencebranch
Maschinenbau
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wb.sciencebranch
Werkstofftechnik
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wb.sciencebranch.oefos
2060
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wb.sciencebranch.oefos
2030
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wb.sciencebranch.oefos
2050
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wb.sciencebranch.value
5
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wb.sciencebranch.value
20
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wb.sciencebranch.value
75
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item.grantfulltext
none
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item.openairetype
conference paper not in proceedings
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item.openairecristype
http://purl.org/coar/resource_type/c_18cp
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item.cerifentitytype
Publications
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item.languageiso639-1
en
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item.fulltext
no Fulltext
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crisitem.author.dept
E308-02-2 - Forschungsgruppe Werkstoffe und Additive Fertigung
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crisitem.author.dept
E308-02-2 - Forschungsgruppe Werkstoffe und Additive Fertigung
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crisitem.author.dept
E163-02-1 - Forschungsgruppe Polymerchemie und Technologie
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crisitem.author.dept
E163 - Institut für Angewandte Synthesechemie
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crisitem.author.dept
E308-02 - Forschungsbereich Polymer- und Verbundwerkstoffe
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crisitem.author.orcid
0009-0006-9591-5749
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crisitem.author.orcid
0000-0002-5390-0761
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crisitem.author.orcid
0000-0002-3626-5647
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crisitem.author.parentorg
E308-02 - Forschungsbereich Polymer- und Verbundwerkstoffe
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crisitem.author.parentorg
E308-02 - Forschungsbereich Polymer- und Verbundwerkstoffe