Controlling grain nucleation and morphology by laser beam shaping in metal additive manufacturing

被引:14
|
作者
Roehling T.T. [1 ]
Shi R. [1 ]
Khairallah S.A. [1 ]
Roehling J.D. [1 ]
Guss G.M. [1 ]
McKeown J.T. [1 ]
Matthews M.J. [1 ]
机构
[1] Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, 94550, CA
来源
Materials and Design | 2020年 / 195卷
关键词
Beam shape; Laser powder bed fusion; Microstructure control; Solidification; Stainless steel;
D O I
10.1016/j.matdes.2020.109071
中图分类号
学科分类号
摘要
Gaussian laser intensity profiles are standard in laser-based metal additive manufacturing, although recent work in single-layer melt tracks showed that beam shaping could offer a feasible route towards microstructural control. Since thermal cycling and grain orientation templating in multilayer builds can alter microstructures, we compare three-dimensional 316 L stainless steel cubes built using Gaussian and elliptical laser intensity profiles. Microstructural characterization confirms that elliptical beams result in a modified and improved microstructure compared to Gaussian beams. This assessment favoring the elliptical beam is based on: (1) the observed refinement of the columnar and equiaxed grains; (2) more importantly, the volume fraction occupied by equiaxed grains increases dramatically such that the average grain area is reduced by nearly 50%; (3) reduced texture in cubes built using an elliptical beam. The random orientation of small equiaxed grains in samples built using an elliptical beam also suggests a higher nucleation frequency. High-fidelity finite element simulations that deliver accurate thermal profiles by incorporating laser ray tracing and fluid dynamics were performed. Using a time-dependent solidification map based on local thermal gradients (G) and growth rates (R), our simulation results confirm the experimentally observed trend that an elliptical beam results in a favorable thermal profile. © 2020 The Authors
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