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通过实验优化建立低成本熔融沉积成型打印铸铁的选择性打印参数

Establishment of Select Printing Parameters for Low-Cost Fused Deposition Modeling Printed Cast Iron Through Experimental Optimization.

作者信息

Drummond Matthew, Eltaggaz Abdelkrem, Nouzil Ibrahim, Deiab Ibrahim

机构信息

School of Engineering, University of Guelph, Guelph, Ontario, Canada.

出版信息

3D Print Addit Manuf. 2024 Oct 22;11(5):1703-1712. doi: 10.1089/3dp.2023.0114. eCollection 2024 Oct.

DOI:10.1089/3dp.2023.0114
PMID:39741550
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11683428/
Abstract

The fused deposition modeling (FDM) form of additive manufacturing provides a low-cost opportunity to quickly create unique parts with complex geometries using a high degree of precision. This is accomplished through a layer-by-layer extrusion of a metallic infused thermoplastic from a heated nozzle onto a build plate, until the 3D part is achieved. The ability to produce cheaply manufactured FDM printed cast iron parts would allow industries to bypass casting lead times and create custom cast iron parts without a machined mold. However, there has been minimal research into FDM printing of cast iron and the corresponding effects of printing parameters. The current study aims to determine the acceptable printing parameter ranges for FDM printed cast iron. The effects of three printing parameters (flow rate, infill density, and layer height) were studied with regard to the porosity, shrinkage, mass, and volume of the FDM printed cast iron. A flow rate range of 145-185% was determined to provide good-quality print while an infill density in the range of 100-125% for most flow rates provided acceptable print quality. Furthermore, the layer height was determined to have no significant effect on the printed part. Regarding the effect of printing parameters on the shrinkage, mass, and volume of the FDM printed part, the study showed that increasing the flow rate and infill density resulted in reduced shrinkage and a higher relative sintered mass and volume. Additionally, increasing the layer height showed an insignificant change in the sintered mass, volume, and shrinkage. Sintered samples obtained densities ranging between 5.02 and 5.44 g/cc and porosity measurements from 7.14% to 18.85%. This is one of the first studies on the FDM printing of cast iron. The results would enable researchers and hobbyists to successfully print their first cast iron part.

摘要

增材制造中的熔融沉积建模(FDM)形式提供了一个低成本的机会,能够使用高精度快速创建具有复杂几何形状的独特零件。这是通过将金属注入的热塑性塑料从加热的喷嘴逐层挤出到构建板上实现的,直到获得3D零件。能够廉价制造FDM打印的铸铁零件将使行业能够绕过铸造交货时间,并且无需加工模具即可创建定制铸铁零件。然而,关于铸铁的FDM打印以及打印参数的相应影响的研究极少。当前的研究旨在确定FDM打印铸铁的可接受打印参数范围。研究了三个打印参数(流速、填充密度和层高)对FDM打印铸铁的孔隙率、收缩率、质量和体积的影响。确定流速范围为145 - 185%时可提供高质量打印,而对于大多数流速,填充密度在100 - 125%范围内可提供可接受的打印质量。此外,确定层高对打印零件没有显著影响。关于打印参数对FDM打印零件的收缩率、质量和体积的影响,研究表明增加流速和填充密度会导致收缩率降低以及相对烧结质量和体积更高。此外,增加层高在烧结质量、体积和收缩率方面显示出不显著的变化。烧结样品的密度范围在5.02至5.44 g/cc之间,孔隙率测量值在7.14%至18.85%之间。这是关于铸铁FDM打印的首批研究之一。这些结果将使研究人员和爱好者能够成功打印出他们的第一个铸铁零件。