Prediction of microstructure in selective laser melted Ti 6Al 4V alloy by cellular automaton

材料科学 选择性激光熔化 微观结构 细胞自动机 合金 粒度 热的 相(物质) 钛合金 复合材料 冶金 热力学 计算机科学 物理 化学 有机化学 算法
作者
Jingjing Yang,Hanchen Yu,Huihui Yang,Fanzhi Li,Zemin Wang,Xiaoyan Zeng
出处
期刊:Journal of Alloys and Compounds [Elsevier BV]
卷期号:748: 281-290 被引量:67
标识
DOI:10.1016/j.jallcom.2018.03.116
摘要

Selective laser melting (SLM), as a powder-bed-based additive manufacturing technology, is a promising technology for manufacturing metal parts with high geometric complexity. The prediction of the SLMed microstructure, a key approach to manipulate the microstructures and performances, is challenging due to the complex heat history involving multiple thermal cycles. In the work, the microstructural simulation of solidification and solid-state phase transformation processes under various spatially variable thermal cycles of SLM was investigated by a developed two-dimensional cellular automaton (CA) model considering the temperature distribution and transient thermal history. The morphology and size of the β grain and martensite simulated by the model agree well with the experimental results in single-layer, thin-wall and multi-track multi-layer samples. Based on the simulated results, there are three zones (powder melting, remelting and reheating zones) and four stages (powder melting, mushy, multi-phases and solid-state phase transformation stages) during SLM depositing Ti6Al4V alloy. The morphology, growth direction and size of prior β grains depend mainly on the direction of heat flux and overlapping of adjacent deposited tracks. Six evolutional types of β grains exist including disappearance, morphological change, size increasing to be a stable value, growing, size decreases to be a stable value, and no evolution. The prediction of microstructure in SLMed alloy can be realized by the developed CA model.

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