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层厚为100μm的增材制造工具钢1.2709工艺参数的优化

Optimization of Process Parameters for Additively Produced Tool Steel 1.2709 with a Layer Thickness of 100 μm.

作者信息

Andronov Vladislav, Šimota Jan, Beránek Libor, Blažek Jiří, Rušar Filip

机构信息

Department of Machining, Process Planning and Metrology, Faculty of Mechanical Engineering, The Czech Technical University in Prague, 160 00 Prague, Czech Republic.

Additive Technology Department, CARDAM s.r.o., 252 41 Dolní Břežany, Czech Republic.

出版信息

Materials (Basel). 2021 May 26;14(11):2852. doi: 10.3390/ma14112852.

DOI:10.3390/ma14112852
PMID:34073583
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8198822/
Abstract

The purpose of this study was to find and optimize the process parameters of producing tool steel 1.2709 at a layer thickness of 100 μm by DMLS (Direct Metal Laser Sintering). HPDC (High Pressure Die Casting) tools are printed from this material. To date, only layer thicknesses of 20-50 μm are used, and parameters for 100 µm were an undescribed area, according to the state of the art. Increasing the layer thickness could lead to time reduction and higher economic efficiency. The study methodology was divided into several steps. The first step was the research of the single-track 3D printing parameters for the subsequent development of a more accurate description of process parameters. Then, in the second step, volume samples were produced in two campaigns, whose porosity was evaluated by metallographic and CT (computed tomography) analysis. The main requirement for the process parameters was a relative density of the printed material of at least 99.9%, which was achieved and confirmed using the parameters for the production of the samples for the tensile test. Therefore, the results of this article could serve as a methodological procedure for optimizing the parameters to streamline the 3D printing process, and the developed parameters may be used for the productive and quality 3D printing of 1.2709 tool steel.

摘要

本研究的目的是通过直接金属激光烧结(DMLS)工艺,找出并优化在层厚为100μm时生产1.2709工具钢的工艺参数。高压压铸(HPDC)模具就是用这种材料打印而成的。迄今为止,根据现有技术,仅使用20 - 50μm的层厚,而100μm层厚的参数还是一个未被描述的领域。增加层厚可能会减少时间并提高经济效益。研究方法分为几个步骤。第一步是研究单道3D打印参数,以便后续更准确地描述工艺参数。然后,在第二步中,分两次制作了体积样本,并通过金相分析和计算机断层扫描(CT)分析对其孔隙率进行了评估。对工艺参数的主要要求是打印材料的相对密度至少为99.9%,通过拉伸试验样本的生产参数实现并确认了这一要求。因此,本文的结果可作为优化参数以简化3D打印工艺的方法步骤,所开发的参数可用于1.2709工具钢的高效和高质量3D打印。

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本文引用的文献

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Areal Surface Roughness Optimization of Maraging Steel Parts Produced by Hybrid Additive Manufacturing.混合增材制造马氏体时效钢零件的表面粗糙度优化
Materials (Basel). 2020 Jan 16;13(2):418. doi: 10.3390/ma13020418.
3
Process-Structure-Property Relationships of AISI H13 Tool Steel Processed with Selective Laser Melting.选择性激光熔化处理的AISI H13工具钢的工艺-组织-性能关系
用于高压压铸的带有随形冷却的大型三维打印滑块的案例研究
3D Print Addit Manuf. 2023 Aug 1;10(4):587-608. doi: 10.1089/3dp.2022.0225. Epub 2023 Aug 9.
4
Influence of Aging Temperature on Mechanical Properties and Structure of M300 Maraging Steel Produced by Selective Laser Melting.时效温度对选择性激光熔化制备的M300马氏体时效钢力学性能和组织的影响
Materials (Basel). 2023 Jan 20;16(3):977. doi: 10.3390/ma16030977.
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Mechanical and Microstructural Anisotropy of Laser Powder Bed Fusion 316L Stainless Steel.激光粉末床熔融316L不锈钢的力学和微观结构各向异性
Materials (Basel). 2022 Jan 12;15(2):551. doi: 10.3390/ma15020551.
Materials (Basel). 2019 Jul 16;12(14):2284. doi: 10.3390/ma12142284.