4.8 Article

Additive manufacturing of a precious bulk metallic glass

期刊

APPLIED MATERIALS TODAY
卷 24, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.apmt.2021.101080

关键词

Additive manufacturing; Bulk metallic glass; Laser powder-bed fusion; Pd-based alloy; Selective laser melting

资金

  1. PREcision Additive Manufacturing of Precious metals Alloys (PREAMPA) project - Swiss ETH domain
  2. PX Group

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A high-density, crack-free, amorphous bulk metallic glass based on a precious metal was successfully produced via additive manufacturing, achieving excellent mechanical properties and mirror-like surface finish. By investigating the main processing parameters and applying various characterization techniques, efficient production of precious metal parts with enhanced mechanical properties was demonstrated, providing new insights for the manufacturing of precious metal components.
For the first time, a high-density amorphous and crack-free bulk metallic glass (BMG) based on a precious metal (PdCuNiP) was produced via additive manufacturing (AM). Laser powder-bed fusion (LPBF) was used for the fabrication of the samples, and led to a density of 99.6%. Excellent mechanical properties such as high hardness and compressive strength were achieved, overcoming the limitations usually found for precious metals in jewelry and watchmaking. Furthermore, without any post-processing, a mirror-like smooth and brilliant surface was directly obtained, which is highly beneficial for applications where surface finish or aesthetics matters. The effect of the main processing parameters, such as laser power and laser-scanning speed, on the shape of single tracks was investigated by laser confocal microscopy (LCM). Following the single-track experiments, highly amorphous LPBF samples were produced. The samples were characterized by optical microscopy (OM), scanning electron microscopy (SEM), conventional and synchrotron X-ray diffraction (XRD), micro-computed tomography (mu-CT), compression tests, and microhardness. The crystallization kinetics of the powder alloy was investigated via fast differential scanning calorimetry (FDSC). A small quantity of the powder (< 70 g) was used for the fabrication of samples, alleviating the cost of the process. Efficient production of precious metal parts with enhanced mechanical properties is demonstrated. (C) 2021 The Author(s). Published by Elsevier Ltd.

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