首页> 外文会议>North American Manufacturing Research Conference >A Comparative Study of Dimensional Tolerancing Capabilities and Microstructure Formation between Binder Jet Additively Manufactured Sand Molds and Olivine Green Sand Molds for Metalcasting of A356.0
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A Comparative Study of Dimensional Tolerancing Capabilities and Microstructure Formation between Binder Jet Additively Manufactured Sand Molds and Olivine Green Sand Molds for Metalcasting of A356.0

机译:粘合剂喷射术尺寸公差能力和微观结构形成的比较研究,用于A356.0的金属通用砂模和橄榄石绿砂模具和橄榄石绿砂模具

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The development of additive manufacturing in the 1980s led to a revolution in various metalcasting processes as early as the 1990s, including the use of polymer 3D printing for the manufacture of sand casting patterns. While additive manufacturing has entered many metalcasting processes, including both expendable and permanent mold processes, this paper specifically examines the sand casting process. ExOne's development of binder jetting technology over the last 20 years has allowed designers in the sand casting field to directly 3D print sand molds for metalcasting. Use of binder jet additively manufactured sand molds allows for quicker turnaround time for testing prototypes, new gating designs, and for producing one-off parts. Additive manufacturing of sand molds for metalcasting may implement any of the same foundry sands as green sand processes, but uses a furan binder instead of the traditional mixture of bentonite clay and water. The use of a chemical binder had led to questions about the resulting dimensional capabilities and mechanical properties of the castings produced by the mold. This study investigated the dimensional tolerancing capabilities, surface finish, mechanical properties, microstructure, and defects present in identical castings made from both a traditional olivine green sand molding process and a binder jet additively manufactured silica sand molding process. It was concluded that binder jet additively manufactured sand molds are capable of either equal or better dimensional accuracy and tolerance capabilities than traditional olivine green sand molds. The olivine green sand parts had an average of approximately 1 urn better surface finish than the binder jet sand molds;;however, it is likely that both the addition of sea coal to the green sand and the difference in final part color significantly affected this result. The mean hardness of the binder jet parts was 58.9 HBW with a standard deviation of 5.6 HBW, compared to the mean of the green sand parts of 47.7 HBW with a standard deviation of 7.2 HBW. The hardness findings were confirmed by the presence of a finer microstructure in the binder jet parts than the green sand parts. While both types of molds produced parts with defects, a greater variety of defects was evident in the olivine green sand molds. Porosity tended to move toward the surface of the olivine green sand parts, but was relatively evenly spread through the additively manufactured sand mold parts.
机译:20世纪80年代的添加剂制造的开发导致了20世纪90年代的各种金属通路过程中的革命,包括使用聚合物3D印刷来制造砂铸造图案。虽然添加剂制造已经进入了许多金属通用工艺,但包括消耗性和永久模具过程,而本文具体检查了砂铸过程。 Exone在过去20年中开发了粘合剂喷射技术,使设计人员在砂铸场中直接3D打印砂模具用于金属播种。使用粘合剂喷气式涂料加剧制成的砂模允许测试原型,新门控设计和生产一次性零件的最新周转时间。用于金属播种的砂模的添加剂制造可以在绿色砂过程中实施任何相同的铸造砂,但使用呋喃粘合剂而不是膨润土粘土和水的传统混合物。化学粘合剂的使用导致了由模具产生的铸件的尺寸能力和机械性能的问题。本研究研究了一种尺寸公差能力,表面光洁度,机械性能,微观结构和缺陷,其存在于一种传统的橄榄石绿色砂模制工艺和粘合剂喷射件加上制造的二氧化硅砂成型工艺的相同铸件中。得出结论,粘合剂喷射加涂砂模具的砂模比传统的橄榄石绿砂模具相等或更好的尺寸精度和耐受性。橄榄石的绿色砂件平均大约1瓮的表面漆,比粘合剂喷射砂模更好;但是,可能会向绿色沙子添加海煤和最终部分颜色的差异显着影响了这一结果。粘合剂喷射零件的平均硬度为58.9 HBW,标准偏差为5.6 HBW,与47.7 HBW的绿色砂部分的平均值相比,标准偏差为7.2 HBW。通过在粘合剂喷射零件中存在比绿色砂零件的更细微的微观结构来确认硬度发现。虽然两种类型的模具产生缺陷的零件,但在橄榄石的绿色砂模中可以显而易见。孔隙率倾向于朝向橄榄石绿色砂件的表面移动,但相对均匀地涂抹在含有瘾地制造的砂模部件。

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