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激光能量密度和成型方向对激光粉末床熔融制造的成型态Inconel 718合金结构-性能关系的影响

Effects of laser-energy density and build orientation on the structure-property relationships in as-built Inconel 718 manufactured by laser powder bed fusion.

作者信息

Watring Dillon S, Benzing Jake T, Hrabe Nikolas, Spear Ashley D

机构信息

Department of Mechanical Engineering, University of Utah, Salt Lake City, UT, USA.

National Institute of Standards and Technology (NIST), Boulder, CO, USA.

出版信息

Addit Manuf. 2020;36. doi: 10.1016/j.addma.2020.101425.

Abstract

This study investigates the effects of build orientation and laser-energy density on the pore structure, microstructure, and tensile properties of Inconel 718 manufactured by laser powder bed fusion. Three different build conditions were selected for comparison based on previous research (namely, the conditions that resulted in the worst and best fatigue lifetimes): 0° build orientation and 38 J/mm laser-energy density, 0° build orientation and 62 J/mm laser-energy density, and 60° build orientation and 62 J/mm laser-energy density. Differences in porosity were measured between each build condition. In terms of microstructure, all three conditions exhibited a predominantly <001> texture in the build direction, grains elongated in the build direction, and a sub-grain structure oriented with the build direction that consisted of dislocation networks decorated with nano-scale precipitates. Build orientation (0° versus 60° with respect to the build plate) produced a difference in yield strength due to anisotropic grain morphology and effective grain size. The low laser-energy density specimens showed a significant decrease in all mechanical properties compared to the high laser-energy density specimens because the amount (6.91% by volume) and size of the lack-of-fusion porosity (from insufficient melting) sur-passed a level at which microstructure (the grain and sub-grain structure) no longer governs quasi-static mechanical properties. This work provides insight that could enable the tunability of structure-property relationships in as-built Inconel 718 by optimizing laser-energy density and build orientation.

摘要

本研究调查了成型方向和激光能量密度对激光粉末床熔融制造的Inconel 718的孔隙结构、微观结构和拉伸性能的影响。基于先前的研究(即导致最差和最佳疲劳寿命的条件)选择了三种不同的成型条件进行比较:0°成型方向和38 J/mm激光能量密度、0°成型方向和62 J/mm激光能量密度以及60°成型方向和62 J/mm激光能量密度。测量了每种成型条件之间的孔隙率差异。在微观结构方面,所有三种条件在成型方向上均表现出主要为<001>织构,晶粒在成型方向上伸长,并且存在与成型方向取向一致的亚晶粒结构,该结构由装饰有纳米级析出物的位错网络组成。由于各向异性的晶粒形态和有效晶粒尺寸,成型方向(相对于成型板为0°与60°)在屈服强度上产生了差异。与高激光能量密度试样相比,低激光能量密度试样的所有力学性能均显著下降,这是因为未熔合孔隙(由于熔化不足)的数量(体积分数为6.91%)和尺寸超过了微观结构(晶粒和亚晶粒结构)不再主导准静态力学性能的水平。这项工作提供了一些见解,通过优化激光能量密度和成型方向,可以实现增材制造的Inconel 718中结构-性能关系的可调性。

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