Influence of Colloidal Additivation with Surfactant‐Free Laser‐Generated Metal Nanoparticles on the Microstructure of Suction‐Cast Nd–Fe–B Alloy

Author:

Liu Jianing1,Yang Ying2,Staab Franziska3,Doñate-Buendia Carlos24ORCID,Streubel René2,Gökce Bilal24ORCID,Maccari Fernando1,Gabriel Philipp2,Zingsem Benjamin5,Spoddig Detlef5,Durst Karsten3ORCID,Farle Michael5ORCID,Gutfleisch Oliver1ORCID,Barcikowski Stephan2ORCID,Skokov Konstantin1ORCID,Ziefuß Anna R.2ORCID

Affiliation:

1. Functional Materials Institute of Material Science Technical University of Darmstadt 64287 Darmstadt Germany

2. Technical Chemistry and Center for Nanointegration Duisburg-Essen (CENIDE) University of Duisburg-Essen 45141 Essen Germany

3. Physical Metallurgy Institute of Material Science Technical University of Darmstadt 64287 Darmstadt Germany

4. Chair of Materials Science and Additive Manufacturing School of Mechanical Engineering and Safety Engineering University of Wuppertal 42119 Wuppertal Germany

5. Faculty of Physics and Center for Nanointegration (CENIDE) University Duisburg-Essen 47057 Duisburg Germany

Abstract

Development of new powder feedstocks using nanoparticles (NPs) has the potential to influence the microstructure of as‐built parts and overcome the limitations of current powder‐based additive manufacturing (AM) techniques. The focus of this study is to investigate the impact of NP‐modified magnetic microparticle powder feedstock on the microstructure of suction‐cast Nd–Fe–B‐based alloys. This particular casting method has been recognized for its ability to replicate, to some extent, the melting and rapid solidification stages inherent to metal powder‐based AM techniques such as powder bed fusion using a laser beam. Two types of NP materials, Ag and ZrB2, are used, and their effects on the grain size distribution and dendritic structures are evaluated after suction casting. Ag NPs result in smaller, more uniform grain sizes. ZrB2 NPs result in uniformly distributed grain sizes at much lower mass loadings. The results show that feedstock powder surface modification with low‐melting‐point metal NPs can improve permanent magnets’ microstructure and magnetic properties, at below 1 vol%, equal to submonolayer surface loads. Herein, the potential of using NPs to develop new powder feedstocks for AM is highlighted, significantly improving the final part's properties.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

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