Hybrid Fabrication of Zirconia Parts with Smooth Surface Texture and Tight Tolerances

Author:

Spitaels Laurent1ORCID,Dambly Valentin1ORCID,Beobide Otaegi Aiora2,Bossu Julien1ORCID,Delmotte Cathy3,Martic Gregory3,Juste Enrique3ORCID,Carrus Raoul4,Arrazola Pedro-José2ORCID,Petit Fabrice3ORCID,Rivière-Lorphèvre Edouard1ORCID,Ducobu François1ORCID

Affiliation:

1. UMONS Research Institute for Materials Science and Engineering, University of Mons, Place du Parc 20, 7000 Mons, Belgium

2. Faculty of Engineering, Mondragon Unibertsitatea, Loramendi 4, 20500 Arrasate-Mondragón, Spain

3. Belgium Ceramic Research Centre, Avenue Gouverneur Cornez 4, 7000 Mons, Belgium

4. SIRRIS, Collective Centre for and by the Technological Industry, 12 Rue Bois Saint Jean, 4102 Seraing, Belgium

Abstract

The conventional manufacturing chain for technical ceramics is too expensive for the production of small series or unique parts with complex designs. Hybrid machines that combine additive and subtractive processes can be an interesting solution to overcome this technology lock-in. However, despite the great interest in hybrid machines for metallic parts, there is a lack of data in the literature when it comes to ceramics. The purpose of this paper is to contribute to closing this gap. It is the first to evaluate the achievable geometrical tolerances according to ISO 2768-2 as well as the surface textures of composite zirconia parts shaped sequentially by pellet additive manufacturing (PAM, from ceramic injection molding feedstock) and finish milling. The green parts were then debinded and sintered to analyze the influence of these steps. Compared to the initial green parts, the sintered parts exhibited shiny and smooth surfaces with sharp edges. Flatness, parallelism and perpendicularity all achieved an H (fine) class, while the surface textures were significantly improved, resulting in arithmetic roughness (Ra) below 1.6 µm.

Funder

Walloon regional government

Publisher

MDPI AG

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