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Unravelling heterogeneities in sub-grain cellular structure and micromechanical response of additive manufactured Ti-Nb alloys

机译:Unravelling heterogeneities in sub-grain cellular structure and micromechanical response of additive manufactured Ti-Nb alloys

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摘要

Additive manufactured (AM) metallic components often exhibit unique hierarchical and heterogeneous microstructure. Recently, exploiting the heterogeneities in sub-grain cellular structure and associated micromechanical response has been considered as a novel strategy to achieve unprecedented mechanical properties of AM-fabricated parts. In-depth understanding of such heterogeneities is critical for AM process control and optimization. In this work, laser powder bed fusion (LPBF) of a Ti-35Nb alloy is investigated with focus on unravelling and controlling the heterogeneities in site-specific cellular structure and associated micromechanical response. The experimental results reveal significant changes in such heterogeneities across the melt pool as affected by LPBF conditions. For in-depth investigation, a computational framework integrating a finite element thermal model, a phase-field grain growth model and a crystal plasticity micromechanical model is developed. The integrated experimental and computational effort is utilized to investigate the process-microstructure-property relationship at the sub-grain scale. In specific, the effects of process-induced thermal conditions on sub-grain cellular structure, thereby micromechanical response, are investigated. Spatial distribution maps of cell size and microhardness are constructed to demonstrate the heterogeneities within the melt pool. The roles of individual processing parameters on the spatial control of sub-grain cellular structure and micromechanical response are evaluated.
机译:添加剂生产(AM)金属组件经常表现出独特的层次和异构的微观结构。利用sub-grain中的异构性问题细胞结构和相关的微机械响应已被视为一项新策略达到前所未有的力学性能AM-fabricated部分。这种异构性问题对我至关重要的过程控制和优化。粉床融合(LPBF) Ti-35Nb合金关注解体和调查控制特定站点的异构性问题细胞结构和相关的微机械响应。重大变化在这种异构性问题在熔池LPBF影响条件。计算框架集成有限元素热模型、相场晶粒生长模型和晶体塑性微机械模型开发。和计算努力利用调查process-microstructure-property在sub-grain规模之间的关系。process-induced热环境的影响sub-grain细胞结构,从而微机械反应,研究了。细胞的大小和空间分布地图显微硬度是构建演示熔池内的异构性问题。个人的加工参数空间sub-grain细胞结构的控制和微机械响应进行评估。

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