Fabrication of 3D metal-ceramic (Al-AlN) architectures using laser-powder bed fusion process

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Fabrication of 3D metal-ceramic (Al-AlN) architectures using laser-powder bed fusion process. / Wallis, Christopher; Buchmayr, Bruno; Bermejo, Raul et al.
in: Additive Manufacturing, Jahrgang 38.2021, Nr. February, 101799, 2021.

Publikationen: Beitrag in FachzeitschriftArtikelForschung(peer-reviewed)

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@article{625a79860a15456e8750dc2746452310,
title = "Fabrication of 3D metal-ceramic (Al-AlN) architectures using laser-powder bed fusion process",
abstract = "The potential of metal additive manufacturing for producing high conductivity materials and hybrid systems for thermal management in opto-, power and microelectronics has been investigated. Using the laser-based powder-bed fusion technology, the joining of ceramics (aluminum nitride) and metals (aluminum alloy: AlSi10Mg) has been studied with a focus on the fusion zone and the interlayer. Metallization of the ceramic surface with aluminum was applied to realize a stable process for forming metal-ceramic multilayer architectures. A sputtering process proved to be able to form a stiff interlayer and prevent direct contact of the laser beam with aluminum nitride. The bonding characteristics of aluminum nitride/aluminum alloy hybrid have been assessed, using scanning electron microscopy and energy dispersive X-ray spectroscopy. Owing to residual stress evolution during laser-powder bed fusion, process-induced material damage such as cracking at the binding zone was investigated and compared to residual stress simulations by which a correlation between process parameters, part geometry and the material failure could be established. Thus, the fabrication of crack-free metal-ceramics by a stable laser-powder bed fusion process was achieved.",
author = "Christopher Wallis and Bruno Buchmayr and Raul Bermejo and Peter Supancic",
year = "2021",
doi = "10.1016/j.addma.2020.101799",
language = "English",
volume = "38.2021",
journal = "Additive Manufacturing",
issn = "2214-8604",
publisher = "Elsevier",
number = "February",

}

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TY - JOUR

T1 - Fabrication of 3D metal-ceramic (Al-AlN) architectures using laser-powder bed fusion process

AU - Wallis, Christopher

AU - Buchmayr, Bruno

AU - Bermejo, Raul

AU - Supancic, Peter

PY - 2021

Y1 - 2021

N2 - The potential of metal additive manufacturing for producing high conductivity materials and hybrid systems for thermal management in opto-, power and microelectronics has been investigated. Using the laser-based powder-bed fusion technology, the joining of ceramics (aluminum nitride) and metals (aluminum alloy: AlSi10Mg) has been studied with a focus on the fusion zone and the interlayer. Metallization of the ceramic surface with aluminum was applied to realize a stable process for forming metal-ceramic multilayer architectures. A sputtering process proved to be able to form a stiff interlayer and prevent direct contact of the laser beam with aluminum nitride. The bonding characteristics of aluminum nitride/aluminum alloy hybrid have been assessed, using scanning electron microscopy and energy dispersive X-ray spectroscopy. Owing to residual stress evolution during laser-powder bed fusion, process-induced material damage such as cracking at the binding zone was investigated and compared to residual stress simulations by which a correlation between process parameters, part geometry and the material failure could be established. Thus, the fabrication of crack-free metal-ceramics by a stable laser-powder bed fusion process was achieved.

AB - The potential of metal additive manufacturing for producing high conductivity materials and hybrid systems for thermal management in opto-, power and microelectronics has been investigated. Using the laser-based powder-bed fusion technology, the joining of ceramics (aluminum nitride) and metals (aluminum alloy: AlSi10Mg) has been studied with a focus on the fusion zone and the interlayer. Metallization of the ceramic surface with aluminum was applied to realize a stable process for forming metal-ceramic multilayer architectures. A sputtering process proved to be able to form a stiff interlayer and prevent direct contact of the laser beam with aluminum nitride. The bonding characteristics of aluminum nitride/aluminum alloy hybrid have been assessed, using scanning electron microscopy and energy dispersive X-ray spectroscopy. Owing to residual stress evolution during laser-powder bed fusion, process-induced material damage such as cracking at the binding zone was investigated and compared to residual stress simulations by which a correlation between process parameters, part geometry and the material failure could be established. Thus, the fabrication of crack-free metal-ceramics by a stable laser-powder bed fusion process was achieved.

U2 - 10.1016/j.addma.2020.101799

DO - 10.1016/j.addma.2020.101799

M3 - Article

VL - 38.2021

JO - Additive Manufacturing

JF - Additive Manufacturing

SN - 2214-8604

IS - February

M1 - 101799

ER -