Laser powder bed fusion additive manufacturing of metals; physics, computational, and materials challenges
Аддитивное производство металлов методом селективного лазерного сплавления порошкового слоя: физические, вычислительные и материаловедческие проблемы
2015-12-01
SCID: 54.1/uhqmt3yp
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laser powder bed fusionmaterials challengesmetal additive manufacturingmodeling and simulationprocess physics
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Abstract (AI)
The production of metal parts via laser powder bed fusion additive manufacturing is growing exponentially. However, the transition of this technology from production of prototypes to production of critical parts is hindered by a lack of confidence in the quality of the part. Confidence can be established via a fundamental understanding of the physics of the process. It is generally accepted that this understanding will be increasingly achieved through modeling and simulation. However, there are significant physics, computational, and materials challenges stemming from the broad range of length and time scales and temperature ranges associated with the process. In this paper, we review the current state of the art and describe the challenges that need to be met to achieve the desired fundamental understanding of the physics of the process.
Key Findings
1
Fundamental understanding of the process physics is identified as essential for establishing confidence in part quality and enabling broader industrial adoption.
2
Metal laser powder bed fusion is expanding rapidly, but adoption for critical-part production is limited by insufficient confidence in manufactured-part quality.
3
Modeling and simulation are regarded as the primary pathways for advancing fundamental understanding of laser powder bed fusion.
4
Progress is constrained by coupled physics, computational, and materials challenges across broad length scales, time scales, and temperature ranges.
5
The paper reviews the state of the art and identifies unresolved challenges requiring future research to achieve reliable process-physics understanding.
Research Object
metal parts produced by laser powder bed fusion additive manufacturing
Research Subject
the multiscale and multitemperature process physics governing part quality, including associated modeling, computational, and materials challenges
Publication Details
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2015-12-01
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