Marwa El-Mahalawy, M. Samuel, N. Fouda, S. El-Bahloul
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引用次数: 1
摘要
线切割加工(WEDM)是一种用于制造异形零件的非传统热加工工艺。介绍了影响电火花线切割加工的几种加工因素对球墨铸铁(ASTM A536)的加工影响。考虑的加工因素是脉冲接通时间(Ton),脉冲关闭(Toff),峰值电流(Ip),电压(V)和线速度(S)。为了优化加工因素,通过使用田口方法的实验设计进行了它们的设置。优化目标是实现最大的材料去除率(MRR)和最小的表面粗糙度(SR)。此外,方差分析(ANOVA)是用来确定最显著的因素。此外,还进行了回归分析,预测MRR和SR依赖于定义的加工因素。根据不同的结果,达到最大MRR的最佳调节因子为Ton = 32 μs, Toff = 8 μs, Ip = 4 A, S = 40 mm/min。V = 70伏。而实现最小SR的最优控制因子为:Ton = 8 μs, Toff = 8 μs, Ip = 2 A, S = 20 mm/min, V= 30伏。假设达到最小SR和最大MRR的控制因子的最佳组合为:Ton = 8 μs, Toff = 8 μs, Ip=5 A, S=50 mm/min。在最佳加工条件下,加工表面的显微组织显示在加工表面的顶部有一个非常窄的重铸层。
Investigating the Effect of Wire Electrical Discharge Machining Factors for Ductile Cast Iron (ASTM A536)
Wire Electrical Discharge Machining (WEDM) is a non-traditional thermal machining process used to manufacture irregularly profiled parts. Machining of ductile cast iron (ASTM A536) under several machining factors, which affect the WEDM process, is presented. The considered machining factors are pulse on time (Ton), pulse off (Toff), peak current (Ip), voltage (V), and wire speed (S). To optimize the machining factors, their setting is performed via an experimental design using the Taguchi method. The optimization objective is to achieve maximum Material Removal Rate (MRR) and minimum Surface Roughness (SR). Additionally, the analysis of variance (ANOVA) is used to identify the most significant factor. Also, a regression analysis is carried out to forecast the MRR and SR dependent on defined machining factors. Depending on consequences, the best regulation factors for reaching the maximum MRR are Ton = 32 μs, Toff = 8 μs, Ip = 4 A, S = 40 mm/min. and V = 70 volt. Whereas, the optimal control factors that achieve the minimum SR is Ton = 8 μs, Toff = 8 μs, Ip = 2 A, S = 20 mm/min, and V= 30 volt. It is hypothesized that the perfect combination of control factors that achieves minimum SR and maximum MRR is Ton = 8 μs, Toff = 8 μs, Ip=5 A, S=50 mm/min. The microstructure of the machined surface in the optimal machining conditions shows a very narrow recast layer at the top of the machined surface.