粉末粘结剂喷射大型,金属直接驱动发电机:选择粉末,粘结剂和工艺参数

Austin C. Hayes, G. Whiting
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引用次数: 2

摘要

增材制造使生产复杂的几何形状极其难以创建与传统的减法方法。虽然擅长生产复杂零件,但通过渗透到日常制造市场可以看出它的局限性。产量限制、表面粗糙度差、有限的材料选择和可重复性问题阻碍了增材制造在小批量、高价值市场之外的所有市场的革命。这项工作的特点是将粉末粘结剂喷射与传统铸造技术相结合,以创造大型复杂的金属部件。具体来说,我们将这项技术扩展到风力发电机,并提供了生产复杂的直接驱动发电机转子和定子设计的初步可行性。在此过程中,热敏喷墨打印机头选择性地将粘结剂沉积在水热铸造粉末上。在通过传统方法铸造之前,这种粉末被选择性地固化和烘烤以去除水分。这项工作确定了一种可扩展的制造工艺来打印大型风力涡轮机直接驱动发电机。由于直接驱动发电机比同步发电机大得多,因此印刷过程必须能够扩展到2-5兆瓦2 - 6米的机器上。在这项研究中,对粉末、粘合剂和印刷参数进行了研究,并对可扩展性进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Powder-Binder Jetting Large-Scale, Metal Direct-Drive Generators: Selecting the Powder, Binder, and Process Parameters
Additive manufacturing enables the production of complex geometries extremely difficult to create with conventional subtractive methods. While good at producing complex parts, its limitations can be seen through its penetration into everyday manufacturing markets. Throughput limitations, poor surface roughness, limited material selection, and repeatability concerns hinder additive manufacturing from revolutionizing all but the low-volume, high-value markets. This work characterizes combining powder-binder jetting with traditional casting techniques to create large, complex metal parts. Specifically, we extend this technology to wind turbine generators and provide initial feasibility of producing complex direct-drive generator rotor and stator designs. In this process, thermal inkjet printer heads selectively deposit binder on hydroperm casting powder. This powder is selectively solidified and baked to remove moisture before being cast through traditional methods. This work identifies a scalable manufacturing process to print large-scale wind turbine direct drive generators. As direct-drive generators are substantially larger than their synchronous counterparts, a printing process must be able to be scaled for a 2–5 MW 2–6m machine. For this study, research on the powder, binder, and printing parameters is conducted and evaluated for scalability.
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