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A feasibility study on wire electrical discharge machining of carbon fibre reinforced plastic composites

机译:碳纤维增强塑料复合材料线材放电加工的可行性研究

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This paper details preliminary experimental work to investigate the wire electrical discharge machining (WEDM) of unidirectional carbon fibre reinforced plastic (CFRP) composites using a high tensile strength zinc rich coated brass wire (0.25 mm diameter). A fractional factorial L18 Taguchi experimental design was employed to evaluate the influence of varying open gap voltage (120 and 140 V), ignition current (3 – 5 A) as well as pulse on-time (0.8 – 1 μs) and off-time (4 – 8 μs) on material removal rate (MRR), top (Wt) and bottom (Wb) kerf widths as well as workpiece edge damage. The ignition current and pulse off-time were found to be statistically significant factors affecting MRR based on an analysis of variance, with percentage contribution ratios (PCR) of 48.5% and 24.3% respectively. It was observed that MRR, which ranged between 0.43 and 2.41 mm3/min, increased with both ignition current and pulse on-time due to the higher discharge energy generated in the machining gap. No signs of workpiece damage in terms of delamination or surface burning was apparent, despite the higher MRR. Conversely, the larger open gap voltage surprisingly led to reductions in MRR, which was likely due to unstable gap conditions caused by greater levels of residual melted resin within the gap or re-deposition on the workpiece surface. In terms of kerf width, ignition current was revealed as the sole significant factor with respect to the top surface (up to ~ 0.28 mm) having a PCR of 56.6%, while none of the variable parameters had a major effect on the bottom kerf width.
机译:本文详细介绍了初步的实验工作,以研究使用高抗张强度的富锌涂层黄铜丝(直径为0.25 mm)的单向碳纤维增强塑料(CFRP)复合材料的丝放电加工(WEDM)。使用分数阶L18 Taguchi实验设计来评估变化的开间隙电压(120和140 V),点火电流(3 – 5 A)以及脉冲接通时间(0.8 – 1μs)和断开时间的影响(4 – 8μs)的材料去除率(MRR),顶部(Wt)和底部(Wb)切缝宽度以及工件边缘损坏。根据方差分析,发现点火电流和脉冲关闭时间是影响MRR的统计显着因素,百分比贡献率(PCR)分别为48.5%和24.3%。可以看出,由于加工间隙中产生的放电能量较高,MRR随点火电流和脉冲导通时间的增加而在0.43和2.41 mm3 / min之间变化。尽管MRR较高,但在分层或表面烧伤方面没有明显的工件损坏迹象。相反,较大的空隙电压出乎意料地导致MRR降低,这很可能是由于间隙中不稳定的间隙条件所致,该间隙条件是由间隙中残留的熔融树脂含量较高或工件表面上的重新沉积引起的。就切缝宽度而言,点火电流被认为是相对于顶表面(最大〜0.28 mm)具有56.6%PCR的唯一重要因素,而可变参数均未对下切缝宽度产生重大影响。

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