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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Microstructural evolution and mechanical performances of selective laser melting Inconel 718 from low to high laser power
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Microstructural evolution and mechanical performances of selective laser melting Inconel 718 from low to high laser power

机译:从低至高激光功率的选择性激光熔化熔点718的微观结构演化与机械性能

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In this work, selective laser melting (SLM) technology was used to manufacture the Inconel 718 alloy from low to high power and the effects of laser power on formability, microstructural evolution and tensile performance were studied. It was found that the fully dense forming process window becomes narrower as the laser power increases. Moreover, as the laser power increases from 500 W to 2000 W, the build rate is increased from 6 mm(3)/s to 14.3 mm(3)/s. In comparison, the coarser gamma-dendrite, the more precipitation of Laves phase and the finer columnar grain can be obtained under a higher laser power. Besides, the <001> texture in the Inconel 718 samples can be reduced at a higher laser power. The tensile strength exhibits an obvious decreasing trend as the laser power increases. At the lowest laser power of 500 W, tensile strength reaches the highest values with the ultimate tensile strength of 1122 MPa and yield strength of 828 MPa, because of the higher relative density, the finer gamma-dendrite and the less Laves phase. But the increase of the laser power benefits the improvement of elongation. When the laser power further increases to 1500 W, the elongation reaches its highest value of 33.45% due to the finer columnar grains. (c) 2020 Elsevier B.V. All rights reserved.
机译:在这项工作中,选择性激光熔化(SLM)技术用于制造从低功率到高功率的Inconel 718合金,并研究了激光功率对可成形性,微观结构演化和拉伸性能的影响。发现完全致密的成型过程窗口随着激光功率的增加而变窄。此外,随着激光功率从500W到2000W增加,构建速率从6mm(3)/ s增加到14.3mm(3)/ s。相比之下,在更高的激光动力下,可以获得较粗伽马 - 树突,熔化液相和料柱的沉淀。此外,Inconel 718样品中的<001>可以在更高的激光功率下减小。随着激光功率的增加,拉伸强度表现出明显的降低趋势。在500W的最低激光功率下,拉伸强度达到最高值,最高抗拉强度为1122MPa,屈服强度为828MPa,因为相对密度较高,更细的γ-枝晶和更少的疏浚液相。但激光功率的增加有利于改善伸长率。当激光功率进一步增加到1500W时,由于柱状晶粒更精细地,伸长率达到其最高值33.45%。 (c)2020 Elsevier B.v.保留所有权利。

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