Modeling of Ti-W Solidification Microstructures Under Additive Manufacturing Conditions

被引:0
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作者
Matthew R. Rolchigo
Michael Y. Mendoza
Peyman Samimi
David A. Brice
Brian Martin
Peter C. Collins
Richard LeSar
机构
[1] Iowa State University,Department of Materials Science and Engineering
[2] Iowa State University,Center for Advanced Non
关键词
Cellular Automaton; Additive Manufacturing; Lattice Boltzmann Method; Molten Pool; Lattice Boltzmann;
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摘要
Additive manufacturing (AM) processes have many benefits for the fabrication of alloy parts, including the potential for greater microstructural control and targeted properties than traditional metallurgy processes. To accelerate utilization of this process to produce such parts, an effective computational modeling approach to identify the relationships between material and process parameters, microstructure, and part properties is essential. Development of such a model requires accounting for the many factors in play during this process, including laser absorption, material addition and melting, fluid flow, various modes of heat transport, and solidification. In this paper, we start with a more modest goal, to create a multiscale model for a specific AM process, Laser Engineered Net Shaping (LENS™), which couples a continuum-level description of a simplified beam melting problem (coupling heat absorption, heat transport, and fluid flow) with a Lattice Boltzmann-cellular automata (LB-CA) microscale model of combined fluid flow, solute transport, and solidification. We apply this model to a binary Ti-5.5 wt pct W alloy and compare calculated quantities, such as dendrite arm spacing, with experimental results reported in a companion paper.
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页码:3606 / 3622
页数:16
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