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Modeling of Processing-Induced Pore Morphology in an Additively-Manufactured Ti-6Al-4V Alloy

机译:增材制造的Ti-6Al-4V合金中加工引起的孔形貌建模

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摘要

A selective laser melting (SLM)-based, additively-manufactured Ti-6Al-4V alloy is prone to the accumulation of undesirable defects during layer-by-layer material build-up. Defects in the form of complex-shaped pores are one of the critical issues that need to be considered during the processing of this alloy. Depending on the process parameters, pores with concave or convex boundaries may occur. To exploit the full potential of additively-manufactured Ti-6Al-4V, the interdependency between the process parameters, pore morphology, and resultant mechanical properties, needs to be understood. By incorporating morphological details into numerical models for micromechanical analyses, an in-depth understanding of how these pores interact with the Ti-6Al-4V microstructure can be gained. However, available models for pore analysis lack a realistic description of both the Ti-6Al-4V grain microstructure, and the pore geometry. To overcome this, we propose a comprehensive approach for modeling and discretizing pores with complex geometry, situated in a polycrystalline microstructure. In this approach, the polycrystalline microstructure is modeled by means of Voronoi tessellations, and the complex pore geometry is approximated by strategically combining overlapping spheres of varied sizes. The proposed approach provides an elegant way to model the microstructure of SLM-processed Ti-6Al-4V containing pores or crack-like voids, and makes it possible to investigate the relationship between process parameters, pore morphology, and resultant mechanical properties in a finite-element-based simulation framework.
机译:基于选择性激光熔融(SLM)的增材制造的Ti-6Al-4V合金在逐层材料积聚过程中易于积聚不良缺陷。复杂形状的孔形式的缺陷是该合金加工过程中需要考虑的关键问题之一。根据工艺参数,可能会出现具有凹形或凸形边界的孔。为了充分发挥增材制造的Ti-6Al-4V的潜力,需要了解工艺参数,孔形态和所得机械性能之间的相互依赖性。通过将形态学细节纳入微机械分析的数值模型中,可以深入了解这些孔如何与Ti-6Al-4V微观结构相互作用。然而,可用的孔隙分析模型缺乏对Ti-6Al-4V晶粒微观结构和孔隙几何形状的真实描述。为了克服这个问题,我们提出了一种用于在多晶微结构中对具有复杂几何形状的孔进行建模和离散化的综合方法。在这种方法中,多晶体的微观结构是通过Voronoi镶嵌建模的,而复杂的孔的几何形状是通过策略性地组合各种尺寸的重叠球来近似的。所提出的方法为建模SLM处理的Ti-6Al-4V包含孔或裂纹状空隙的微观结构提供了一种绝妙的方法,并使得有可能在有限的条件下研究工艺参数,孔形态和所得机械性能之间的关系。基于元素的仿真框架。

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