Laser Powder Bed Fusion of Titanium Aluminides: An Investigation on Site-Specific Microstructure Evolution Mechanism

Xing Zhang, B. Mao, L. Mushongera, J. Kundin, Y. Liao
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引用次数: 20

Abstract

Abstract Metal additive manufacturing (AM) improves the design flexibility of titanium aluminides (TiAl-based alloys) as a new class of high-temperature alloys towards widespread applications. In this work, the underlying mechanisms responsible for the site-specific thermal history and grain evolution during laser powder bed fusion (LPBF) of TiAl-based alloys are investigated through an integrated computational and experimental effort. In specific, a multiphysics modeling framework integrating a finite element thermal model with a highly efficient phase-field method is developed to simulate the solidification microstructure at different locations within the melt pool during LPBF processing. The investigation of process-microstructure relationship is accomplished using a Ti-45Al (at.%) alloy for a binary approximation, with a focus on site-specific primary dendrite arm spacing (PDAS) and non-equilibrium microsegregation. The microstructural sensitivity to spatial variations, individual processing parameters, and misorientation angle between the preferred crystalline orientation and the temperature gradient direction are studied to thoroughly understand the rapid solidification during LPBF. LPBF experiments are carried out to validate the modeling results in terms of melt pool dimensions and site-specific PDAS across the melt pool. The knowledge gained in this work will benefit the development of AM processing routine for fabrication of high-performance TiAl-based alloys towards extensive applications.
激光粉末床熔合铝化钛:特定部位显微组织演化机制的研究
金属增材制造(AM)提高了钛铝化物(tial基合金)的设计灵活性,是一类具有广泛应用前景的新型高温合金。在这项工作中,通过综合计算和实验的努力,研究了钛合金激光粉末床熔化(LPBF)过程中特定部位的热历史和晶粒演化的潜在机制。具体而言,开发了一种将有限元热模型与高效相场方法相结合的多物理场建模框架,用于模拟LPBF加工过程中熔池内不同位置的凝固组织。采用Ti-45Al (at.%)合金进行二元近似,研究了工艺与微观组织的关系,重点关注了特定部位的初生枝晶臂间距(PDAS)和非平衡态微偏析。研究了微观组织对空间变化的敏感性、单个工艺参数以及优选晶向与温度梯度方向之间的错取向角,以彻底了解LPBF过程中的快速凝固。进行了LPBF实验,以验证熔池尺寸和整个熔池特定地点的PDAS的建模结果。在这项工作中获得的知识将有利于AM加工程序的发展,以制造高性能的tial基合金。
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