Literature DB >> 31132536

Laser additive manufacturing of biodegradable magnesium alloy WE43: A detailed microstructure analysis.

Florian Bär1, Leopold Berger1, Lucas Jauer2, Güven Kurtuldu1, Robin Schäublin1, Johannes H Schleifenbaum3, Jörg F Löffler4.   

Abstract

WE43, a magnesium alloy containing yttrium and neodymium as main alloying elements, has become a well-established bioresorbable implant material. Implants made of WE43 are often fabricated by powder extrusion and subsequent machining, but for more complex geometries laser powder bed fusion (LPBF) appears to be a promising alternative. However, the extremely high cooling rates and subsequent heat treatment after solidification of the melt pool involved in this process induce a drastic change in microstructure, which governs mechanical properties and degradation behaviour in a way that is still unclear. In this study we investigated the changes in the microstructure of WE43 induced by LPBF in comparison to that of cast WE43. We did this mainly by electron microscopy imaging, and chemical mapping based on energy-dispersive X-ray spectroscopy in conjunction with electron diffraction for the identification of the various phases. We identified different types of microstructure: an equiaxed grain zone in the center of the laser-induced melt pool, and a lamellar zone and a partially melted zone at its border. The lamellar zone presents dendritic lamellae lying on the Mg basal plane and separated by aligned Nd-rich nanometric intermetallic phases. They appear as globular particles made of Mg3Nd and as platelets made of Mg41Nd5 occurring on Mg prismatic planes. Yttrium is found in solid solution and in oxide particles stemming from the powder particles' shell. Due to the heat influence on the lamellar zone during subsequent laser passes, a strong texture developed in the bulk material after substantial grain growth. STATEMENT OF SIGNIFICANCE: Additively manufactured magnesium alloys have the potential of providing a major breakthrough in bone-reconstruction surgery by serving as biodegradable porous scaffold material. This study is the first to report in detail on the microstructure development of the established magnesium alloy WE43 fabricated by the additive manufacturing process of Laser Powder Bed Fusion (LPBF). It presents unique microstructural features which originate from the laser-melting process. An in situ transmission electron microscopy heating experiment further demonstrates the development of two distinct intermetallic phases in additively manufactured WE43 alloys. While one forms already during solidification, the other precipitates due to the ongoing heat treatment during LPBF processing.
Copyright © 2019 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Biodegradable implants; Bone scaffolds; Electron microscopy; Laser powder bed fusion; Magnesium; Microstructure; Rapid solidification; WE43

Year:  2019        PMID: 31132536     DOI: 10.1016/j.actbio.2019.05.056

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  5 in total

Review 1.  A review of current challenges and prospects of magnesium and its alloy for bone implant applications.

Authors:  Meysam Nasr Azadani; Abolfazl Zahedi; Oluwole Kingsley Bowoto; Bankole Ibrahim Oladapo
Journal:  Prog Biomater       Date:  2022-03-03

2.  Microstructural Origins of the Corrosion Resistance of a Mg-Y-Nd-Zr Alloy Processed by Powder Bed Fusion - Laser Beam.

Authors:  Hanna Nilsson Åhman; Francesco D'Elia; Pelle Mellin; Cecilia Persson
Journal:  Front Bioeng Biotechnol       Date:  2022-07-01

3.  Biodegradable magnesium alloy WE43 porous scaffolds fabricated by laser powder bed fusion for orthopedic applications: Process optimization, in vitro and in vivo investigation.

Authors:  Jinge Liu; Bingchun Liu; Shuyuan Min; Bangzhao Yin; Bo Peng; Zishi Yu; Caimei Wang; Xiaolin Ma; Peng Wen; Yun Tian; Yufeng Zheng
Journal:  Bioact Mater       Date:  2022-02-24

4.  A multi modal approach to microstructure evolution and mechanical response of additive friction stir deposited AZ31B Mg alloy.

Authors:  Sameehan S Joshi; Shashank Sharma; M Radhakrishnan; Mangesh V Pantawane; Shreyash M Patil; Yuqi Jin; Teng Yang; Daniel A Riley; Rajarshi Banerjee; Narendra B Dahotre
Journal:  Sci Rep       Date:  2022-08-02       Impact factor: 4.996

5.  An Enhanced Understanding of the Powder Bed Fusion-Laser Beam Processing of Mg-Y3.9wt%-Nd3wt%-Zr0.5wt% (WE43) Alloy through Thermodynamic Modeling and Experimental Characterization.

Authors:  Hanna Nilsson Åhman; Lena Thorsson; Pelle Mellin; Greta Lindwall; Cecilia Persson
Journal:  Materials (Basel)       Date:  2022-01-06       Impact factor: 3.623

  5 in total

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