ROSAMA2 · RObust and Sustainable Additive Manufacturing of Amorphous Metallic Alloys
Horizon Europe — Marie Skłodowska-Curie Actions
- Duration
- 2022-11-01 → 2025-06-30
- EU contribution
- €218,160
- Participants
- 2
- Scheme
- HORIZON-TMA-MSCA-PF-EF
Lines connect the coordinator with its partners.
Results in brief
RObust and Sustainable Additive Manufacturing of Amorphous Metallic Alloys
Bulk metallic glasses are metals with unique amorphous structures granting them exceptional properties (such as high strength). However, their use is limited because traditional casting methods can only produce relatively small and simple geometries. Additive manufacturing (AM), and in particular laser powder bed fusion (LPBF), offers a promising alternative, potentially allowing a broader use of BMGs in advanced applications. LPBF can achieve high cooling rates needed to maintain the amorphous structure, potentially allowing larger or more complex BMG parts to be produced. However, several challenges remain. As an example, BMGs made via LPBF often show lower ductility than cast ones, largely attributed to internal defects and/or oxygen contamination. To address such challenges, the project sets out the following objectives: - Understand and improve the printability of BMGs using a unique LPBF system that allows in situ 3D imaging of defect formation at synchrotron facilities (herein employed at ESRF on beamline BM18). - Understand how defects impact material properties in order to improve their performances. - Studying how BMG powder degrades with reuse and developing strategies to improve recyclability, and therefore sustainability. This project addresses critical challenges of AM of BMGs. It targets the three above-mentionned interconnected objectives, and thus it directly responds to Europe’s strategic priorities. Work Package 1 lays the foundation for the project by exploring how process parameters affect defect formation during LPBF. A miniature, custom-built LPBF replicator is specifically designed for use with synchrotron X-ray tomography. It allows researchers to observe defect population formation in situ and in 3D inside the produced parts. This capability is supported by a Long Term Project allocation at ESRF, ensuring dedicated access to beamtime. These insights help define optimal printing conditions. Work Package 2 addresses the need for robust mechanical performance in BMGs by LPBF. Using state-of-the-art tools, including nano-indentation, compression testing, high-resolution microscopy, and synchrotron X-ray tomography, the materials are characterized at the micro and nanoscale, comparing AM samples to their cast equivalents. Work Package 3 tackles an additional challenge for AM sustainability, which is material reuse. By analyzing the degradation mechanisms of BMG powders during repeated LPBF cycles, the project aims to develop strategies to limit material waste. The project’s expected impacts are significant in scientific and also in industrial terms. Industrially, it has the potential to unlock new applications for BMGs in sectors such as aerospace, medical devices, and tooling. In addition, by advancing the recyclability and efficiency of AM materials, it contributes to a more sustainable and resilient European manufacturing ecosystem.
Data: CORDIS, © European Union
Project objective
Bulk metallic glasses (BMGs) are promising materials to support the goal to make EU climate-neutral by 2050, and promote the growth of many industrial sectors such as biomedical. Thanks to their amorphous nature, BMGs offer an outstanding combination of high strength, corrosion/wear resistance and biocompability. Recently, Additive Manufacturing (AM) has been proposed as a solution to tackle the size limitation of the conventional casting production of BMGs. Still, many challenges remain to develop defect-free parts with mechanical performances comparable to their as-cast counterparts. In addition, to date, no post-processes can be applied to close porosity and improve quality without altering the amorphous state of the material. The project ROSAMA2 hosted by SIMaP in Grenoble aims to develop a RObust and Sustainable Additive Manufacturing of Amorphous Metallic Alloys by laser powder bed fusion. In situ X-ray microtomography will enable the 3D reconstruction of the deposited material layer-by-layer using a unique miniature system designed for usage at synchrotrons. The high brilliance of the radiation will reveal the quality of the powder bed, the morphology of the deposited material, the presence of defects in its volume and their evolution upon processing. Doing so, strategies to eliminate porosity in situ will be proposed. The printed BMGs will be evaluated to determine the role of defects, structural and chemical heterogeneities on the mechanical performances, by means of X-ray nanotomography, advanced thermal analyses, high resolution microscopy, nano-indentation and compression testing. In a final effort, strategies to enhance powder recyclability and limit pick-up of oxygen, harmful to the glass forming ability, will be developed, and the role of process atmosphere composition will be considered. Besides strengthening EU’s position on the AM market, ROSAMA2 will develop and consolidate Dr. Pauzon’s profile and secure future position in academia and industry.
Original text from CORDIS.
Participants
Links
- View on CORDIS
- DOI: 10.3030/101059435
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e51bc15dd4&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e5fa6c6466&appId=PPGMS
Data: CORDIS, © European Union
