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Inconel 718 涡轮盘枞树形榫槽电火花线切割加工的精度

The Accuracy of Finishing WEDM of Inconel 718 Turbine Disc Fir Tree Slots.

作者信息

Burek Jan, Babiarz Robert, Buk Jarosław, Sułkowicz Paweł, Krupa Krzysztof

机构信息

Faculty of Mechanical Engineering and Aeronautics, Department of Manufacturing Techniques and Automation, Rzeszów University of Technology, 35-959 Rzeszów, Poland.

Faculty of Mechanical Engineering and Aeronautics, Department of Materials Science, Rzeszów University of Technology, 35-959 Rzeszów, Poland.

出版信息

Materials (Basel). 2021 Jan 25;14(3):562. doi: 10.3390/ma14030562.

Abstract

Servicing aircraft engines sometimes requires manufacturing only a single piece of a given part. Manufacturing a turbine disc using traditional methods is uneconomical. It is necessary to use a different machining method recommended for small lot production. One of the proposed methods is WEDM (wire electrical discharge machining). The article presents the results of the research on finishing WEDM of Inconel 718 turbine disc fir tree slots. The influence of infeed, mean gap voltage, peak current, pulse off-time, and discharge energy on the shape accuracy, surface roughness, microcracks, and the white layer thickness were determined. Mathematical models were developed based on the DoE (Design of Experiment) analysis. The statistical significance of the models was verified with the ANOVA (Analysis of Variance) test. The machining parameters control methods that allow achieving the required shape accuracy, surface roughness, and surface layer condition were presented. The obtained surface roughness was Ra = 0.84 μm, the shape accuracy of the slot in the normal-to-feed direction was Δ = 0.009 μm, the profile shape accuracy was Δ = 0.033 μm, and the thickness of recast (white) layer was approximately 5 μm.

摘要

维修飞机发动机有时仅需制造给定部件的单件。采用传统方法制造涡轮盘不经济。有必要采用推荐用于小批量生产的不同加工方法。其中一种建议方法是电火花线切割加工(WEDM)。本文介绍了对因科镍合金718涡轮盘枞树形榫槽进行电火花线切割精加工的研究结果。确定了进给量、平均间隙电压、峰值电流、脉冲关断时间和放电能量对形状精度、表面粗糙度、微裂纹和白层厚度的影响。基于实验设计(DoE)分析建立了数学模型。通过方差分析(ANOVA)检验验证了模型的统计显著性。介绍了能够实现所需形状精度、表面粗糙度和表面层状况的加工参数控制方法。获得的表面粗糙度为Ra = 0.84μm,垂直于进给方向的槽形精度为Δ = 0.009μm,轮廓形状精度为Δ = 0.033μm,重铸(白)层厚度约为5μm。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d37/7865376/4104112b72e5/materials-14-00562-g001.jpg

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