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通过电火花加工的23级钛的表面和亚表面质量

Surface and Subsurface Quality of Titanium Grade 23 Machined by Electro Discharge Machining.

作者信息

Karmiris-Obratański Panagiotis, Papazoglou Emmanouil L, Leszczyńska-Madej Beata, Zagórski Krzysztof, Markopoulos Angelos P

机构信息

Department of Manufacturing Systems, Faculty of Mechanical Engineering and Robotics, AGH University of Science and Technology, 30-059 Cracow, Poland.

Laboratory of Manufacturing Technology, School of Mechanical Engineering, National Technical University of Athens, 15780 Athens, Greece.

出版信息

Materials (Basel). 2021 Dec 27;15(1):164. doi: 10.3390/ma15010164.

Abstract

Electrical Discharge Machining (EDM) is a non-traditional cutting technology that is extensively utilized in contemporary industry, particularly for machining difficult-to-cut materials. EDM may be used to create complicated forms and geometries with great dimensional precision. Titanium alloys are widely used in high-end applications owing to their unique intrinsic characteristics. Nonetheless, they have low machinability. The current paper includes an experimental examination of EDM's Ti-6Al-4V ELI (Extra Low Interstitials through controlled interstitial element levels) process utilizing a graphite electrode. The pulse-on current (I) and pulse-on time (T) were used as control parameters, and machining performance was measured in terms of Material Removal Rate (MRR), Tool Material Removal Rate (TMRR), and Tool Wear Ratio (TWR). The Surface Roughness (SR) was estimated based on the mean roughness (SRa) and maximum peak to valley height (SRz), while, the EDMed surfaces were also examined using optical and SEM microscopy and cross-sections to determine the Average White Layer Thickness (AWLT). Finally, for the indices above, Analysis of Variance (ANOVA) was conducted, whilst semi-empirical correlations for the MRR and TMRR were given using the Response Surface Method (RSM). The results show that the pulse-on time is the most significant parameter of the machining process that may increase the MRR up to 354%. Pulse-on current and pulse-on time are shown to have an impact on the surface integrity of the finished product. Furthermore, statistics, SEM, and EDX images on material removal efficiency and tool wear rate are offered to support the core causes of surface and sub-surface damage. The average microhardness of the White Layer (WL) is 1786 HV.

摘要

电火花加工(EDM)是一种非传统的切削技术,在现代工业中被广泛应用,特别是用于加工难切削材料。电火花加工可用于制造具有高精度尺寸的复杂形状和几何结构。钛合金因其独特的固有特性而广泛应用于高端应用领域。然而,它们的可加工性较低。本文包括一项利用石墨电极对电火花加工Ti-6Al-4V ELI(通过控制间隙元素水平实现超低间隙)工艺进行的实验研究。将脉冲导通电流(I)和脉冲导通时间(T)用作控制参数,并根据材料去除率(MRR)、工具材料去除率(TMRR)和工具磨损率(TWR)来衡量加工性能。基于平均粗糙度(SRa)和最大峰谷高度(SRz)估算表面粗糙度(SR),同时,还使用光学显微镜和扫描电子显微镜以及横截面来检查电火花加工表面,以确定平均白层厚度(AWLT)。最后,针对上述指标进行了方差分析(ANOVA),并使用响应面法(RSM)给出了MRR和TMRR的半经验相关性。结果表明,脉冲导通时间是加工过程中最显著的参数,可使MRR提高高达354%。脉冲导通电流和脉冲导通时间对成品的表面完整性有影响。此外,还提供了关于材料去除效率和工具磨损率的统计数据、扫描电子显微镜和能谱图像,以支持表面和亚表面损伤的核心原因。白层(WL)的平均显微硬度为1786 HV。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c62/8746111/9292662a1734/materials-15-00164-g001.jpg

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