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The effect of reheating layers in Metal Additive Manufacturing on the external surface finish of a printed part

机译:金属增材制造中的加热层对印刷零件的外表面光洁度的影响

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Additive Manufacturing (AM) is expanding out of the Rapid Prototyping space to an end user product manufacturing technology. The commercial interest in industry, has created research opportunities to study how quality assurance can be provided for AM end user part. There are several concerns lacking solutions at this stage, one of which is the surface finish quality on a metal AM part. The unmodified printed part extracted from an AM metal printer, often has a rough finish on the exterior surface. When the support material is removed from the part, a rough texture from the prongs bonding the support layers and part layers often leaves an even rougher texture in associated areas. For this reason, AM parts require further maintenance, often media polishing, to achieve the parts required surface finish. In cases where structural and mechanical quality is required, the surface finish can have a detrimental impact. While there are several beneficial methods employed in Subtractive, Formative and Joining manufacturing processes to improve metal surface finish, the method of interest in this study is laser reheating. More specifically, the scope of this paper studies effect laser reheating has on the surface finish of AM prints. A review of similar processes for other AM metals is studied to determine testing parameters of interest. The experimental work performed focuses on testing specimens printed in a Direct Metal Printer (DMP), applied to Stainless Steel 17-4 PH powdered material. The aim of this experiment is to determine, through stronger bonding and further melting, whether a smoother and more polished surface can be achieved. The results of the experiment performed showed high laser power and scan speed result in a better polish with each repetition, but increased reheating on just one layer caused an inward collapse. Several quality inspection techniques are compared to determine which proves the most fruitful in a studying the surface finish of the samples. Testing methods utilized, include visual inspection techniques (human eye and Scanning Electron Microscopy (SEM)), mechanical tests (compression and micro-hardness testing) and NDE roughness profiling techniques (dye-penetrant, AFM and Surface Profilometer testing).
机译:增材制造(AM)正在从快速原型开发领域扩展到最终用户产品制造技术。商业上的商业兴趣为研究如何为AM最终用户提供质量保证提供了研究机会。在此阶段,有几个问题缺乏解决方案,其中之一是金属AM零件的表面光洁度。从AM金属打印机中提取的未修改的打印部件通常在其外表面上具有粗糙的光洁度。当从零件上移除支撑材料时,来自将支撑层和零件层粘合的叉脚上的粗糙纹理通常会在相关区域留下更粗糙的纹理。因此,AM零件需要进一步维护,通常需要进行介质抛光,以实现零件所需的表面光洁度。在需要结构和机械质量的情况下,表面光洁度可能会产生不利影响。尽管在减法,成形和连接制造工艺中采用了几种有益的方法来改善金属表面光洁度,但本研究中感兴趣的方法是激光再加热。更具体地说,本文的研究范围是研究激光再加热对AM印刷品的表面光洁度的影响。研究了其他AM金属类似工艺的综述,以确定感兴趣的测试参数。进行的实验工作集中在测试直接金属打印机(DMP)上打印的样本,该样本应用于不锈钢17-4 PH粉末材料。该实验的目的是通过更牢固的粘合和进一步熔化来确定是否可以实现更光滑,更抛光的表面。进行的实验结果表明,较高的激光功率和扫描速度可以使每次重复抛光效果更好,但是仅在一层上增加的再加热会导致向内塌陷。比较了几种质量检查技术,以确定在研究样品的表面光洁度方面最有效的方法。使用的测试方法包括视觉检查技术(人眼和扫描电子显微镜(SEM)),机械测试(压缩和显微硬度测试)和NDE粗糙度轮廓分析技术(染料渗透剂,AFM和表面轮廓仪测试)。

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