Christopher O’Hara , Marion McAfee , Ramesh Raghavendra , David Tormey
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引用次数: 0
摘要
本研究采用了一种独特的方法,使用增材制造(AM)铜放电加工(EDM)电极对316 L不锈钢增材制造注射模腔进行表面处理。该研究有两个重点:首先,了解使用原子扩散增材制造(ADAM)制造的复杂几何电极的可实现精度和表面精加工能力。其次,通过打印空腔几何网形状来减少用于制造电极和工件的材料体积,从而减少形成所需空腔几何形状和表面光洁度所需的电极数量和电火花加工步骤。研究表明,ADAM电极受到不同的收缩,导致电火花加工后型腔表面光洁度和几何精度的变化。这种方法使平均表面粗糙度(Ra)提高了56.3% %,与印刷粗糙度相比,一些表面的Ra降低了77% %。本研究的平均空腔精度为0.07 mm,标准差为0.204 mm,中位精度为0.081。然而,最大和最小工件精度为+ 0.442 mm /−0.24 mm。这些结果表明,使用净形AM腔和ADAM电极的AM辅助EDM后处理方法可以显着将EDM后处理中的电极数量从10个减少到1个。通过优化ADAM和EDM工艺参数,以更好地控制电极几何形状或为类似的工作流程应用替代增材制造技术,进一步提高本研究中获得的精度。
An additive manufacturing assisted electric discharge machining technique to produce complex, thin-walled, injection mould cavities in 316 L stainless steel
This study takes a unique approach using an additively manufactured (AM) copper electric discharge machining (EDM) electrode to surface finish a 316 L Stainless Steel AM injection mould cavity. The research has a dual focus: first, to comprehend the achievable accuracy and surface finishing capabilities of a complex geometry electrode, manufactured using atomic diffusion additive manufacturing (ADAM). Second, reduce the volume of material used to manufacture electrodes and workpieces by printing the cavity geometry net shape, thereby reducing the number of electrodes and EDM process steps required to form the desired cavity geometry and surface finish. The study reveals that the ADAM electrode was subject to variable shrinkage, leading to varied results on the cavity surface finish and geometric accuracy after the EDM process. This method resulted in an average surface roughness (Ra) improvement of 56.3 %, with some surfaces seeing up to a 77 % reduction in their Ra compared to the as printed roughness. This study achieved a mean cavity accuracy of 0.07 mm, standard deviation 0.204 mm and median accuracy was 0.081. However, the maximum and minimum workpiece accuracy was + 0.442 mm / −0.24 mm. These findings indicate that an AM assisted EDM post-processing method, using a net shape AM cavity and an ADAM EDM electrode, can significantly reduce the number of electrodes in EDM post-processing from 10 to 1. Further opportunity exists to improve the accuracy obtained in this study by optimising the ADAM and EDM process parameters to better control the electrode geometry or apply alternative AM technologies for similar workflows.
期刊介绍:
Additive Manufacturing stands as a peer-reviewed journal dedicated to delivering high-quality research papers and reviews in the field of additive manufacturing, serving both academia and industry leaders. The journal's objective is to recognize the innovative essence of additive manufacturing and its diverse applications, providing a comprehensive overview of current developments and future prospects.
The transformative potential of additive manufacturing technologies in product design and manufacturing is poised to disrupt traditional approaches. In response to this paradigm shift, a distinctive and comprehensive publication outlet was essential. Additive Manufacturing fulfills this need, offering a platform for engineers, materials scientists, and practitioners across academia and various industries to document and share innovations in these evolving technologies.