Additive manufacturing of high-strength alumina through a multi-material approach
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in: Open ceramics, Jahrgang 5, 100082, 03.2021.
Publikationen: Beitrag in Fachzeitschrift › Artikel › Forschung › (peer-reviewed)
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TY - JOUR
T1 - Additive manufacturing of high-strength alumina through a multi-material approach
AU - Schlacher, Josef
AU - Hofer, Anna-Katharina
AU - Geier, Sebastian
AU - Kraleva, Irina Rosenova
AU - Papšík, Roman
AU - Schwentenwein, Martin
AU - Bermejo, Raul
N1 - Publisher Copyright: © 2021 The Author(s)
PY - 2021/3
Y1 - 2021/3
N2 - This work demonstrates the use of additive manufacturing to design and fabricate alumina ceramics with strength as high as 1 GPa. A multi-material approach is employed by embedding alumina-zirconia layers between outer pure alumina layers with significant compressive residual stresses. Biaxial bending is performed both on the 3D printed multi-material and monolithic alumina parts. Results are analysed in the framework of Weibull statistics. A characteristic biaxial strength higher than 1 GPa is measured on the multilayers, compared to 650 MPa in monolithic alumina, the difference corresponding to the magnitude of compressive residual stresses due to the thermal mismatch between material regions during cooling from sintering. This is the first report of employing additive manufacturing to tailor the strength of alumina ceramics, taking advantage of the layer-by-layer printing process. Designing complex-shaped ceramic architectures with residual stresses through additive manufacturing opens a new path for fabrication of technical ceramics with tailored mechanical properties.
AB - This work demonstrates the use of additive manufacturing to design and fabricate alumina ceramics with strength as high as 1 GPa. A multi-material approach is employed by embedding alumina-zirconia layers between outer pure alumina layers with significant compressive residual stresses. Biaxial bending is performed both on the 3D printed multi-material and monolithic alumina parts. Results are analysed in the framework of Weibull statistics. A characteristic biaxial strength higher than 1 GPa is measured on the multilayers, compared to 650 MPa in monolithic alumina, the difference corresponding to the magnitude of compressive residual stresses due to the thermal mismatch between material regions during cooling from sintering. This is the first report of employing additive manufacturing to tailor the strength of alumina ceramics, taking advantage of the layer-by-layer printing process. Designing complex-shaped ceramic architectures with residual stresses through additive manufacturing opens a new path for fabrication of technical ceramics with tailored mechanical properties.
KW - Additive manufacturing
KW - Alumina
KW - Multi-material
KW - Residual Stress
KW - Strength
UR - http://www.scopus.com/inward/record.url?scp=85117701422&partnerID=8YFLogxK
U2 - https://doi.org/10.1016/j.oceram.2021.100082
DO - https://doi.org/10.1016/j.oceram.2021.100082
M3 - Article
VL - 5
JO - Open ceramics
JF - Open ceramics
SN - 2666-5395
M1 - 100082
ER -