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How to control the crystallization of metallic glasses during laser powder bed fusion? Towards part-specific 3D printing of in situ composites AITranslate

Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology;Warsaw University of Technology; Cardinal Stefan Wyszynski University in Warsaw;Institute of High Pressure Physics PA; Institute of Aviation; The University of New South Wales (UNSW Sydney);University of South Carolina;Wroclaw University of Science and Technology;Institute of Metallurgy and Materials Science
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Publisher: Elsevier
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Abstract AITranslate

This paper describes a strategy for creating highly oriented crystalline-amorphous composites using the laser powder bed fusion (LPBF) process. The strategy involves using a novel two-stage melting approach and ultra-high-pressure hot isostatic pressing (HIP) on well-known AMZ4 (Zr59.3Cu28.8Al10.4Nb1.5) and equiatomic CuZr amorphous alloys. The experiments demonstrate that by the fine-tuning laser parameters, allowed to obtain parts with purely amorphous material and to create geometry-specific microstructural design composites based on laminate amorphous-crystalline structure. This approach also provides novel opportunities for nonequilibrium phase distribution design by controlling local crystallization in the heat-affected zone (HAZ) and avoiding heat accumulation. Additionally, the porous amorphous material can be densified without crystallization using HIP at a temperature near the supercooled liquid region. The distribution of the crystalline phase created during LPBF and crystallization on pre-induced nuclei during HIP was proven to be a critical factor for composite properties. Wear and bending tests reveal the influence of crystalline-amorphous layers orientation on mechanical properties. The functional demonstrators were manufactured to show the possibilities in the design for additive manufacturing (DfAM) with a microstructure-designed composites. Graphical Download : Download high-res image (203KB) Download : Download full-size image

KeyWords AITranslate

Bulk metallic glasses (BMGs) Laser powder bed fusion (LPBF) Selective laser melting (SLM) in situ composites Crystallization 4Dprinting
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DOI:https://doi.org/10.1016/j.addma.2023.103775

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Citation Information:

This paper describes a strategy for creating highly oriented crystalline-amorphous composites using the laser powder bed fusion (LPBF) process. The strategy involves using a novel two-stage melting approach and ultra-high-pressure hot isostatic pressing (HIP) on well-known AMZ4 (Zr59.3Cu28.8Al10.4Nb1.5) and equiatomic CuZr amorphous alloys. The experiments demonstrate that by the fine-tuning laser parameters, allowed to obtain parts with purely amorphous material and to create geometry-specific microstructural design composites based on laminate amorphous-crystalline structure. This approach also provides novel opportunities for nonequilibrium phase distribution design by controlling local crystallization in the heat-affected zone (HAZ) and avoiding heat accumulation. Additionally, the porous amorphous material can be densified without crystallization using HIP at a temperature near the supercooled liquid region. The distribution of the crystalline phase created during LPBF and crystallization on pre-induced nuclei during HIP was proven to be a critical factor for composite properties. Wear and bending tests reveal the influence of crystalline-amorphous layers orientation on mechanical properties. The functional demonstrators were manufactured to show the possibilities in the design for additive manufacturing (DfAM) with a microstructure-designed composites. Graphical Download : Download high-res image (203KB) Download : Download full-size image

quote

GB/T 7714-2015 [1] Łukasz Żrodowski, Rafał Wróblewski, Marcin Leonowicz, et al. Additive Manufacturing, 2023(76). DOI:10.1016/j.addma.2023.103775.
MLA [1] Łukasz Żrodowski, et al., Additive Manufacturing, no. 76, 2023, https://doi.org/10.1016/j.addma.2023.103775.
APA [1] Łukasz Żrodowski, Rafał Wróblewski, Marcin Leonowicz, Bartosz Morończyk, Tomasz Choma, Jakub Ciftci, Wojciech Święszkowski, Anna Dobkowska, Ewa UraBińczyk, Piotr Błyskun, Jakub Jaroszewicz, Agnieszka Krawczyńska, Krzysztof Kulikowski, Bartłomiej Wysocki, Tomasz Cetner, Grzegorz Moneta, Xiaopeng Li, Lang Yuan, Aleksandra Małachowska, & Robert Chulist. (2023). Additive Manufacturing(76). https://doi.org/10.1016/j.addma.2023.103775
IEEE [1] Łukasz Żrodowski, Rafał Wróblewski, Marcin Leonowicz, Bartosz Morończyk, Tomasz Choma, Jakub Ciftci, Wojciech Święszkowski, Anna Dobkowska, Ewa UraBińczyk, Piotr Błyskun, Jakub Jaroszewicz, Agnieszka Krawczyńska, Krzysztof Kulikowski, Bartłomiej Wysocki, Tomasz Cetner, Grzegorz Moneta, Xiaopeng Li, Lang Yuan, Aleksandra Małachowska, and Robert Chulist, Additive Manufacturing, no. 76, 2023, doi: 10.1016/j.addma.2023.103775. keywords: {Bulk metallic glasses (BMGs);Laser powder bed fusion (LPBF);Selective laser melting (SLM);in situ composites;Crystallization;4Dprinting}