利用线切割加工基于气体金属弧的 3D 打印铝镁 5356 合金的可加工性

D. Doreswamy, Vijeesh Vijayan, Krrish Jain, S. K. Bhat
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引用次数: 0

摘要

线弧增材制造(Wire-Arc Additive Manufactured,WAAM)是一种相对较新的金属三维打印方法,它通过气体金属弧加热原材料,并使用计算机数控轴驱动系统逐层沉积熔融金属池。由于 WAAM 需要经过精加工才能达到部件的最终尺寸,因此有必要对 WAAM 制造材料的可加工性进行研究。本研究调查了使用线-电火花加工(Wire-EDM)的 WAAM 工艺制造的 Al-Mg 5356 合金测试样品的可加工性。在不同的线-电火花加工工艺设置(电压、电流、脉冲开启时间(Ton)、脉冲关闭时间(Toff)和线速度(Ws))下,对测试样品进行线-电火花加工,并研究了获得的材料去除率(MRR)、切口宽度(KW)和表面粗糙度(Ra)。统计分析显示,电流对 MRR 有显著影响。Ton 对 KW 和 Ra 有很大影响,而 Toff 则对所有这些反应有相当大的影响。值得注意的是,Ws 对 Ra 有显著影响。不过,从统计学角度看,电压对所有加工响应的影响都可以忽略不计。微结构研究和成分分析为切削表面提供了宝贵的信息。本研究得出的结果有助于预测基于 WAAM 的三维打印 Al-Mg 合金在各种制造业中加工的最佳工艺参数设置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Machinability of gas metal arc based 3D printed Al-Mg 5356 alloy using wire-EDM
Wire-Arc Additive Manufactured (WAAM) is relatively new method of metal 3D printing in which the raw material is heated by the gas metal arc and the molten metal pool is deposited layer-by-layer using a computer numerically controlled axis drive system. Since WAAM needs a finishing process for attaining the final dimensions of the components, there is a need to investigate the machinability aspects of WAAM fabricated materials. This work investigates the machinability of Al-Mg 5356 alloy test samples fabricated by WAAM process using wire-electric discharge machining (Wire-EDM). The test samples were subjected to Wire-EDM and the obtained material removal rate (MRR), kerf width (KW) and surface roughness (Ra) were investigated at different Wire-EDM process settings of voltage, current, pulse-on time (Ton), pulse-off time (Toff) and wire speed (Ws). Statistical analysis revealed that current had a significant influence on MRR. Ton had a strong influence on KW and Ra, whereas Toff exhibited a considerable impact on all these responses. Notably, Ws demonstrated a significant impact on Ra. However, voltage was found to have statistically negligible impact on all the machining responses. Microstructural investigations and compositional analysis were conducted providing valuable information on the cut surfaces. The results derived from the present investigation are useful for predicting the optimum process parameter settings for machining of WAAM-based 3D printed Al-Mg alloy in various manufacturing industries.
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