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Additive Manufacturing of Ceramic Materials: Processes, Material Expertise, and Future Potentials
Additive Manufacturing as a Driver of Innovation
In recent years, additive manufacturing has evolved into a key driver of innovation in materials science. For advanced ceramics in particular, these technologies offer new degrees of freedom in design, functionalization, and customization of complex components. At the Research Institute for Glass and Ceramics (FGK), various technological approaches are being explored and advanced in order to fully exploit the potential of ceramic materials.
Core Processes at FGK
The primary focus is on Vat Photopolymerization (VPP) as well as material extrusion in both wet-plastic and thermoplastic variants. VPP enables the high-resolution fabrication of intricate geometries with excellent surface quality, making it suitable for the production of highly detailed structures. Wet-plastic extrusion allows for the processing of highly filled ceramic pastes and is particularly advantageous for larger, mechanically stable components. Complementary to this, thermoplastic extrusion enables the precise and reproducible shaping of feedstocks based on granulates or filaments. Together, these methods cover a wide range of applications – from functional prototypes to small-scale series production.
Multi-Material Printing for Functional Integration
A current research priority lies in multi-material printing, which enables the integration of different ceramic materials within a single component. This approach allows the realization of locally varying properties – such as tailored electrical, thermal, or mechanical functionalities – thereby creating multifunctional systems that are virtually unattainable with conventional manufacturing routes.
Aluminum Oxide as a Key Material
Material selection plays a pivotal role. Aluminum oxide (Al₂O₃) is one of the most important advanced ceramics, distinguished by its outstanding hardness, thermal stability, chemical resistance, and electrical insulation properties. These attributes make it highly relevant for applications in energy systems, electronics, medical technology, and mechanical engineering.
Collaboration with Almatis
FGK collaborates closely with Almatis, a global leader in high-purity alumina materials. Almatis provides tailored powders characterized by controlled particle size distributions, high chemical purity, and consistent quality – all of which are essential for reliable and reproducible additive manufacturing. By combining the advanced VPP, extrusion, and multi-material processes at FGK with Almatis’ material expertise, it becomes possible to produce ceramic components that meet the highest standards of density, precision, and performance.
Outlook
The interplay of material development and additive manufacturing technologies thus creates a strong foundation for expanding the applications of advanced ceramics and driving innovation across high-tech industries.
FGK website: FGK
Events:
Almatis website: https://www.almatis.com