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A study of material removal and surface characteristics in micro-electrical discharge machining of carbon fiber-reinforced plastics

机译:碳纤维增强塑料微电路外放电加工材料去除和表面特性研究

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This article presents micro electrical discharge machining (mu EDM) of carbon fiber-reinforced plastics (CFRP) with rotating tool electrode and assisting electrode (AE). The experimental investigation majorly focused on establishing the mechanisms of material removal and surface integrity of the machined blind holes. Taguchi and regression analysis were carried out to assess the material removal rate (MRR). Analysis of variance (ANOVA) was applied to understand the significance of input parameters and their contribution toward achieving maximum MRR. The surface integrity of the machined hole and damage modes of composite constituents were also examined through micrographic images. The experiments were carried out varying the voltage, pulse duration, and tool speed at three levels. The investigations showed that mu EDM process can be applied for fabricating micro holes in CFRP if assisting electrode (AE) is used to initiate the spark. From the analysis of variance (ANOVA), it was observed that the percentage contribution of voltage, pulse duration, and tool rotational speed on MRR are 75.09, 5.20, and 16.09%, respectively. The optimal condition for the highest MRR was found to be V3/T1/S3 (voltage of 170 V, pulse duration of 10 mu s, and tool speed of 800 rpm). The calculated value of MRR (341,264.94 mu m(3)/s) at the optimum level of input parameters was found to be close to the experimental MRR (340,727 mu m(3)/s). The percentage error between the experimental and calculated value of MRR at the optimum level is very low as 0.15%. This indicates that the developed statistical model is quite significant in predicting MRR during mu EDM of CFRP. POLYM. COMPOS., 40:4033-4041, 2019. (c) 2019 Society of Plastics Engineers
机译:本文介绍了具有旋转刀具电极和辅助电极(AE)的微电路纤维增强塑料(CFRP)的微电路放电加工(CFRP)。实验研究主要集中在建立加工盲孔的材料去除和表面完整性机制。进行Taguchi和回归分析以评估材料去除率(MRR)。应用方差分析(ANOVA)以了解输入参数的重要性及其对实现最大MRR的贡献。还通过显微图像检查加工孔的表面完整性和复合成分的损伤模式。进行三个水平的电压,脉冲持续时间和工具速度进行实验。该研究表明,如果使用辅助电极(AE),可以施加MU EDM工艺以在CFRP中制造微孔,如果辅助电极(AE)用于启动火花。从方差分析(ANOVA),观察到MRR上电压,脉冲持续时间和刀具转速的百分比分别为75.09,5.20和16.09%。最高MRR的最佳条件是V3 / T1 / S3(电压为170 V,脉冲持续时间,10μs,刀具速度为800rpm)。发现MRR的计算值(341,264.94 mu m(3)/ s)的最佳输入参数水平接近实验MRR(340,727μm(3)/ s)。 MRR的实验和计算值之间的百分比误差在最佳水平下非常低至0.15%。这表明在CFRP的MU EDM期间预测MRR时,开发的统计模型非常显着。聚合物。 Compos。,40:4033-4041,2019。(c)2019年塑料工程师协会

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