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通过选择性激光熔化获得的整体式和薄壁零件的工艺参数及表面处理对结构性能的改性

Modification of Structural Properties Using Process Parameters and Surface Treatment of Monolithic and Thin-Walled Parts Obtained by Selective Laser Melting.

作者信息

Grzelak Krzysztof, Kluczyński Janusz, Szachogłuchowicz Ireneusz, Łuszczek Jakub, Śnieżek Lucjan, Torzewski Janusz

机构信息

Faculty of Mechanical Engineering, Institute of Robots & Machine Design, Military University of Technology, 2 Gen. S. Kaliskiego St., 00-908 Warsaw, Poland.

出版信息

Materials (Basel). 2020 Dec 11;13(24):5662. doi: 10.3390/ma13245662.

Abstract

Additive manufacturing is one of the most popular technological processes and is being considered in many research works, a lot of which are related to thin-walled parts analysis. There are many cases where different part geometries were manufactured using the same process parameters. That kind of approach often causes different porosity and surface roughness values in the geometry of each produced part. In this work, the porosity of thin-walled and monolithic parts was compared. To analyze additively manufactured samples, porosity and microstructural analyses were done. Additionally, to check the influence of process parameter modification on the manufactured parts' properties, hardness and roughness measurements were made. Surface roughness and the influence of surface treatment were also taken into account. Porosity reduction of thin-walled parts with energy density growth was observed. Additionally, a positive influence of slight energy density growth on the surface roughness of produced parts was registered. Comparing two extreme-parameter groups, it was observed that a 56% energy density increase caused an almost 85% decrease in porosity and a 45% increase in surface roughness. Additional surface treatment of the material allowed for a 70-90% roughness reduction.

摘要

增材制造是最流行的技术工艺之一,许多研究工作都在考虑采用该技术,其中很多研究都与薄壁零件分析有关。在很多情况下,不同的零件几何形状是使用相同的工艺参数制造的。这种方法常常会在每个生产零件的几何形状中导致不同的孔隙率和表面粗糙度值。在这项工作中,对薄壁零件和整体零件的孔隙率进行了比较。为了分析增材制造的样品,进行了孔隙率和微观结构分析。此外,为了检查工艺参数修改对制造零件性能的影响,进行了硬度和粗糙度测量。还考虑了表面粗糙度及表面处理的影响。观察到随着能量密度的增加,薄壁零件的孔隙率降低。此外,记录了能量密度的轻微增加对生产零件表面粗糙度的积极影响。比较两个极端参数组时,观察到能量密度增加56%导致孔隙率几乎降低85%,表面粗糙度增加45%。对材料进行额外的表面处理可使粗糙度降低70 - 90%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fec7/7764716/99af94c3fe0f/materials-13-05662-g001.jpg

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