3D Characterization of the Columnar-to-Equiaxed Transition in Additively Manufactured Inconel 718

被引:17
作者
Polonsky, Andrew T. [1 ]
Raghavan, Narendran [2 ]
Echlin, McLean P. [1 ]
Kirka, Michael M. [3 ]
Dehoff, Ryan R. [3 ]
Pollock, Tresa M. [1 ]
机构
[1] Univ Calif Santa Barbara, Mat Dept, Santa Barbara, CA 93106 USA
[2] Oak Ridge Natl Lab, Computat Sci & Engn Div, Oak Ridge, TN 37830 USA
[3] Oak Ridge Natl Lab, Mat Sci & Technol Div, Oak Ridge, TN 37830 USA
来源
SUPERALLOYS 2020 | 2020年
关键词
Additive manufacturing; Tomography; Solidification; Microstructure; MECHANICAL-PROPERTIES; GRAIN-STRUCTURE; ELECTRON; TEXTURE; RECONSTRUCTION; SUPERALLOYS; DENUDATION; PARAMETERS; FATIGUE; PHYSICS;
D O I
10.1007/978-3-030-51834-9_97
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
Additive manufacturing (AM) provides enormous processing flexibility, enabling novel part geometries and optimized designs. Access to a local heat source further permits the potential for local microstructure control on the scale of individual melt pools, which can enable local control of part properties. In order to design tailored processing strategies for target microstructures, models predicting the columnar-to-equiaxed transition must be extended to the high solidification velocities and complex thermal histories present in AM. Here, we combine 3D characterization with advanced modeling techniques to develop a more complete understanding of the solidification process and evolution of microstructure during electron beam melting (EBM) of Inconel 718. Full calibration of existing microstructure prediction models demonstrates the differences between AM processes and more conventional welding techniques, underlying the need for accurate determination of key parameters that can only be measured directly in 3D. The ability to combine multisensor data in a consistent 3D framework via data fusion algorithms is essential to fully leverage these advanced characterization approaches. Thermal modeling provides insight on microstructure development within isolated solidification events and demonstrates the role of Marangoni effects on controlling solidification behavior.
引用
收藏
页码:990 / 1002
页数:13
相关论文
共 48 条
[1]  
[Anonymous], 1965, Nickel Alloy, Corrosion and Heat Resistant, Bars, Forgings, and Rings 52.5Ni 19Cr 3.0Mo 5.1Cb 0.90Ti 0.50Al 18Fe, Consumable Electrode or Vacuum Induction Melted 1775F (968C) Solution Heat Treated, Precipitation Hardenable
[2]   Effect of build geometry on the β-grain structure and texture in additive manufacture of Ti-6Al-4V by selective electron beam melting [J].
Antonysamy, A. A. ;
Meyer, J. ;
Prangnell, P. B. .
MATERIALS CHARACTERIZATION, 2013, 84 :153-168
[3]   The Solidification of Multicomponent Alloys [J].
Boettinger, William J. .
JOURNAL OF PHASE EQUILIBRIA AND DIFFUSION, 2016, 37 (01) :4-18
[4]  
Boettinger WJ, 1995, MODELING OF CASTING, WELDING AND ADVANCED SOLIDIFICATION PROCESSES VII, P649
[6]   The influence of the laser scan strategy on grain structure and cracking behaviour in SLM powder-bed fabricated nickel superalloy [J].
Carter, Luke N. ;
Martin, Christopher ;
Withers, Philip J. ;
Attallah, Moataz M. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2014, 615 :338-347
[7]   Accurate reconstruction of EBSD datasets by a multimodal data approach using an evolutionary algorithm [J].
Charpagne, Marie-Agathe ;
Strub, Florian ;
Pollock, Tresa M. .
MATERIALS CHARACTERIZATION, 2019, 150 :184-198
[8]  
Dantzig J.A., 2009, Solidification
[9]  
Deal Andrew, 2016, P 1 INT C 3D MAT SCI
[10]   Crystallographic texture engineering through novel melt strategies via electron beam melting: Inconel 718 [J].
Dehoff, R. R. ;
Kirka, M. M. ;
List, F. A., III ;
Unocic, K. A. ;
Sames, W. J. .
MATERIALS SCIENCE AND TECHNOLOGY, 2015, 31 (08) :939-944