会议论文详细信息
7th National Conference on Processing and Characterization of Materials
Continuum simulation of heat transfer and solidification behavior of AlSi10Mg in Direct Metal Laser Sintering Process
Ojha, Akash^1 ; Samantaray, Mihir^1 ; Nath Thatoi, Dhirendra^1 ; Sahoo, Seshadev^1
Department of Mechanical Engineering, Institute of Technical Education and Research, Bhubaneswar
751030, India^1
关键词: Complex structure;    Continuum simulations;    Densification mechanisms;    Direct metal laser sintering;    Heat transfer and solidifications;    High cooling rates;    High intensity laser beams;    Laser-based additive manufacturing;   
Others  :  https://iopscience.iop.org/article/10.1088/1757-899X/338/1/012052/pdf
DOI  :  10.1088/1757-899X/338/1/012052
来源: IOP
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【 摘 要 】

Direct Metal Laser Sintering (DMLS) process is a laser based additive manufacturing process, which built complex structures from powder materials. Using high intensity laser beam, the process melts and fuse the powder particles makes dense structures. In this process, the laser beam in terms of heat flux strikes the powder bed and instantaneously melts and joins the powder particles. The partial solidification and temperature distribution on the powder bed endows a high cooling rate and rapid solidification which affects the microstructure of the build part. During the interaction of the laser beam with the powder bed, multiple modes of heat transfer takes place in this process, that make the process very complex. In the present research, a comprehensive heat transfer and solidification model of AlSi10Mg in direct metal laser sintering process has been developed on ANSYS 17.1.0 platform. The model helps to understand the flow phenomena, temperature distribution and densification mechanism on the powder bed. The numerical model takes into account the flow, heat transfer and solidification phenomena. Simulations were carried out for sintering of AlSi10Mg powders in the powder bed having dimension 3 mm × 1 mm × 0.08 mm. The solidification phenomena are incorporated by using enthalpy-porosity approach. The simulation results give the fundamental understanding of the densification of powder particles in DMLS process.

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