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Dynamics of pore formation during laser powder bed fusion additive manufacturing
by
Khairallah, Saad A.
, Depond, Phillip J.
, Toney, Michael F.
, Martin, Aiden A.
, Thampy, Vivek
, Fong, Anthony Y.
, Kiss, Andrew M.
, Matthews, Manyalibo J.
, Tassone, Christopher J.
, Stone, Kevin H.
, Calta, Nicholas P.
, Nelson Weker, Johanna
, Wang, Jenny
, Guss, Gabe M.
, van Buuren, Tony
in
639/301/1023/1026
/ 639/301/930/1032
/ 639/301/930/2735
/ Additive manufacturing
/ Collapse
/ design, synthesis and processing
/ Fabrication
/ Humanities and Social Sciences
/ imaging techniques
/ Lasers
/ Liquid-solid interfaces
/ MATERIALS SCIENCE
/ Melting
/ Metals
/ metals and alloys
/ multidisciplinary
/ Physics
/ Pore formation
/ Pores
/ Powder
/ Powder beds
/ Rapid prototyping
/ Science
/ Science (multidisciplinary)
/ Shielding
/ Three dimensional printing
/ X ray imagery
2019
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Dynamics of pore formation during laser powder bed fusion additive manufacturing
by
Khairallah, Saad A.
, Depond, Phillip J.
, Toney, Michael F.
, Martin, Aiden A.
, Thampy, Vivek
, Fong, Anthony Y.
, Kiss, Andrew M.
, Matthews, Manyalibo J.
, Tassone, Christopher J.
, Stone, Kevin H.
, Calta, Nicholas P.
, Nelson Weker, Johanna
, Wang, Jenny
, Guss, Gabe M.
, van Buuren, Tony
in
639/301/1023/1026
/ 639/301/930/1032
/ 639/301/930/2735
/ Additive manufacturing
/ Collapse
/ design, synthesis and processing
/ Fabrication
/ Humanities and Social Sciences
/ imaging techniques
/ Lasers
/ Liquid-solid interfaces
/ MATERIALS SCIENCE
/ Melting
/ Metals
/ metals and alloys
/ multidisciplinary
/ Physics
/ Pore formation
/ Pores
/ Powder
/ Powder beds
/ Rapid prototyping
/ Science
/ Science (multidisciplinary)
/ Shielding
/ Three dimensional printing
/ X ray imagery
2019
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Dynamics of pore formation during laser powder bed fusion additive manufacturing
by
Khairallah, Saad A.
, Depond, Phillip J.
, Toney, Michael F.
, Martin, Aiden A.
, Thampy, Vivek
, Fong, Anthony Y.
, Kiss, Andrew M.
, Matthews, Manyalibo J.
, Tassone, Christopher J.
, Stone, Kevin H.
, Calta, Nicholas P.
, Nelson Weker, Johanna
, Wang, Jenny
, Guss, Gabe M.
, van Buuren, Tony
in
639/301/1023/1026
/ 639/301/930/1032
/ 639/301/930/2735
/ Additive manufacturing
/ Collapse
/ design, synthesis and processing
/ Fabrication
/ Humanities and Social Sciences
/ imaging techniques
/ Lasers
/ Liquid-solid interfaces
/ MATERIALS SCIENCE
/ Melting
/ Metals
/ metals and alloys
/ multidisciplinary
/ Physics
/ Pore formation
/ Pores
/ Powder
/ Powder beds
/ Rapid prototyping
/ Science
/ Science (multidisciplinary)
/ Shielding
/ Three dimensional printing
/ X ray imagery
2019
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Dynamics of pore formation during laser powder bed fusion additive manufacturing
Journal Article
Dynamics of pore formation during laser powder bed fusion additive manufacturing
2019
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Overview
Laser powder bed fusion additive manufacturing is an emerging 3D printing technique for the fabrication of advanced metal components. Widespread adoption of it and similar additive technologies is hampered by poor understanding of laser-metal interactions under such extreme thermal regimes. Here, we elucidate the mechanism of pore formation and liquid-solid interface dynamics during typical laser powder bed fusion conditions using in situ X-ray imaging and multi-physics simulations. Pores are revealed to form during changes in laser scan velocity due to the rapid formation then collapse of deep keyhole depressions in the surface which traps inert shielding gas in the solidifying metal. We develop a universal mitigation strategy which eliminates this pore formation process and improves the geometric quality of melt tracks. Our results provide insight into the physics of laser-metal interaction and demonstrate the potential for science-based approaches to improve confidence in components produced by laser powder bed fusion.
Laser-matter interactions during laser powder bed fusion additive manufacturing remain poorly understood. Here, the authors combine in situ X-ray imaging and finite element simulations to show how detrimental pores form under printing conditions and develop a strategy to suppress them.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
Subject
/ Collapse
/ design, synthesis and processing
/ Humanities and Social Sciences
/ Lasers
/ Melting
/ Metals
/ Physics
/ Pores
/ Powder
/ Science
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